Incidence of postoperative hemorrhage in gynecological surgery.*
\r\n\tEwing's sarcoma (ES) is a highly malignant tumor of children and young adults. The specific and accurate diagnosis of the Ewing sarcoma is challenging with routine hematoxylin-eosin sections. The age of the patient, the site involved, the radiologic findings, and the histological features are all individually invaluable for determining the diagnosis. However, immunohistochemistry, FISH , RT-PCR technologies and immunophenotyping, contribute to the objectivity in the correct diagnosis and prognosis. Clinical, histopathological and molecular diagnoses are addressed, and tumor histopathology is employed as the basis of treatment recommendations including surgery, radiation therapy, systemic therapy and novel therapeutics. Modern therapy for Ewing's sarcoma combines high-dose chemotherapy for systemic control of disease, with advanced surgical and/or radiation therapeutic approaches for local control. The identification of new targets for innovative therapeutic approaches is, therefore, strongly needed for its treatment. Many new pharmaceutical agents will be discussed in early phases of clinical trials in ES patients who have recurrent disease. Discussion of the agents led to partial response or stable disease, the percentages of drugs eliciting responses or causing an overall effect will take place. Some of the topics addressed are advances in future therapy, new target therapies, cytokine therapies and natural killer cells.
",isbn:null,printIsbn:"979-953-307-X-X",pdfIsbn:null,doi:null,price:0,priceEur:null,priceUsd:null,slug:null,numberOfPages:0,isOpenForSubmission:!1,isSalesforceBook:!1,isNomenclature:!1,hash:"66703c47842d55d528eebd0a8601c5d9",bookSignature:"Prof. Gamal Abdul Hamid",publishedDate:null,coverURL:"https://cdn.intechopen.com/books/images_new/8320.jpg",keywords:"Ewing Sarcoma Epidemiology, Ewing Sarcoma Pathogenesis, Ewing Sarcoma Pathology, Ewing Sarcoma Histopathology, ES Diagnostic Strategies, Ewing Sarcoma Therapy, Cancer Stem Cell, Ewing Sarcoma Radiotherapy, Ewing Sarcoma Surgery, Local Control, Tumor Burden, Target Therapy",numberOfDownloads:null,numberOfWosCitations:0,numberOfCrossrefCitations:0,numberOfDimensionsCitations:null,numberOfTotalCitations:null,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"October 16th 2018",dateEndSecondStepPublish:"November 6th 2018",dateEndThirdStepPublish:"January 5th 2019",dateEndFourthStepPublish:"March 26th 2019",dateEndFifthStepPublish:"May 25th 2019",dateConfirmationOfParticipation:null,remainingDaysToSecondStep:"4 years",secondStepPassed:!0,areRegistrationsClosed:!0,currentStepOfPublishingProcess:5,editedByType:null,kuFlag:!1,biosketch:null,coeditorOneBiosketch:null,coeditorTwoBiosketch:null,coeditorThreeBiosketch:null,coeditorFourBiosketch:null,coeditorFiveBiosketch:null,editors:[{id:"36487",title:"Prof.",name:"Gamal",middleName:null,surname:"Abdul Hamid",slug:"gamal-abdul-hamid",fullName:"Gamal Abdul Hamid",profilePictureURL:"https://mts.intechopen.com/storage/users/36487/images/system/36487.jfif",biography:"Prof Dr med Gamal Abdul Hamid received his German board in internal medicine and PhD in Hematology-oncology from Faculty of Medicine (Caral Gustav Carus), University of Dresden, during the period of 1987- 1993. Currently, he is working as director of Aden Oncology Center and Head of Hematology and Clinical laboratory in Faculty of Medicine, University of Aden, and as a director of National Program of Cancer Control in Yemen. He has successfully completed his administrative responsibilities as general secretary of Yemen Cancer Society and is founder of Aden Cancer Registry. He is serving as an editorial member of several journals like Aden Hematology Oncology journal, Alsadaka Hospital newsletter, Journal of Pathobiology and Toxicology, and Drug Developing Journal. He has authored or co-authored many articles in a great variety of journals and has delivered lectures at many conferences and institutions in Yemen and internationally, and acts as a referee for national and international journals. He is a member of ESMO, ASCO, INCTR and Panarab Oncology.",institutionString:"University of Aden",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"5",totalChapterViews:"0",totalEditedBooks:"1",institution:{name:"University of Aden",institutionURL:null,country:{name:"Yemen"}}}],coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"16",title:"Medicine",slug:"medicine"}],chapters:null,productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},personalPublishingAssistant:{id:"270941",firstName:"Sandra",lastName:"Maljavac",middleName:null,title:"Ms.",imageUrl:"https://mts.intechopen.com/storage/users/270941/images/7824_n.jpg",email:"sandra.m@intechopen.com",biography:"As an Author Service Manager my responsibilities include monitoring and facilitating all publishing activities for authors and editors. From chapter submission and review, to approval and revision, copyediting and design, until final publication, I work closely with authors and editors to ensure a simple and easy publishing process. I maintain constant and effective communication with authors, editors and reviewers, which allows for a level of personal support that enables contributors to fully commit and concentrate on the chapters they are writing, editing, or reviewing. I assist authors in the preparation of their full chapter submissions and track important deadlines and ensure they are met. I help to coordinate internal processes such as linguistic review, and monitor the technical aspects of the process. As an ASM I am also involved in the acquisition of editors. 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In practice, hydraulic structures are installed in open channels or rivers with a free water level to estimate discharge based on the measured upstream water level [2]. The main critical factors in constructing hydraulic structures across an open channel throughout the world are need for the reliable source of water supply, flood control, irrigation schemes, recreation activities and hydropower generation [3]. Technological interventions are needed for harnessing, conserving and proper management of water resources. Application of hydraulics structures in measuring streamflows in open channels is very important. Flumes and weirs are used in measuring streamflow in natural and artificial channels. Streamflow is manually or automatically measured.
Flumes and weirs are designed and constructed to change flow regime from one state to another. The parameters of flow measured in laboratory experiment of flume and models of weirs or spillways can be applied to an open channel prototype in real-life situation by manipulating the various scale models in the laboratory experiment [4].
Spillways are designed to safely convey flood to water course downstream from the dams and to prevent overtopping of the dams. The selection, design and construction of a particular type of spillway is carried on specific purpose of the project, hydrology of the area, topography, geologic conditions, dam safety and project economy. Provisions of hydraulically efficient and structurally strong spillway are vital for dam safety. In the olden days, many dams were operated with little hydrological information. Significant improvements made in meteorology and hydrology have updated control of flooding. The impact of this backwardness made many dams to have inadequate spillway capacities [5].
The approach adopted in this work was reviewing and examining various hydraulic structures used in measuring streamflow in open channel structures and suggesting the most efficient one.
Measurement of streamflow is essential in river basin planning, management and pollution mitigation. Several methods have been used for measuring streamflow. One of the methods used is the velocity area method which involves division of river into a number of segments. Flow in each segment is determined with the product of the area of the segment and the average velocity of stream at that location. The total discharge is then estimated by addition of the outcome for each segment of the river. The average velocity is measured using appropriate equipment such as water current metre. The corresponding area is computed through measurement of distances from a reference point on the riverbank.
Alternatively, streamflow is determined using hydraulic structures constructed across the river flow, and it requires establishing a good association between the head and the flow using empirical means as carried out in the laboratory. The two methods have certain limitations and are not applicable in all the circumstances. For example, velocity area method requires condition, which produces a stable depth discharge relationship, and the use of flume and weir is restricted to small rivers where there the provision for sufficient head and constriction in the river is acceptable.
Determination of flow in an experimental open channel was done by [6] using mean velocity equation. It was discovered that the proposed method was more accurate in estimating discharge, when compared with the conventional formulae.
Direct measurement of flow is achieved through several approaches; however, the use of any of such methods is based on some factors like size of the stream and the availability of equipment and expertise [7]. Generally, the section at which the discharge will be measured would be carefully selected so that the river reach is straight and is free of large obstacles that can impede the streamflow. Also, areas around or immediately downstream of existing hydraulic structures should be avoided so that the changes in flow conditions around these areas will not affect the streamflow measurement.
Volumetric method is applied to measure small quantity of streamflow in ditches. In this method, the time taken to fill a containing vessel of known volume is measured, and the most accurate method of discharge measurement is to simply measure the time required to fill a container of known volume. This measurement can be taken repeatedly and the average streamflow can be estimated from the data [8].
In this method, a concentrated tracer solution like salt or dye of specific concentration is added to the river. This is followed by chemical analysis to determine its dilution after it has mixed completely with the stream and produced a uniform final output in the stream. The selection of the tracer to be used is based on meeting certain criteria. It should be easily detected and measured accurately. It should also be conservative. Salt and dye have exhibited these properties and have been in use for many years ago. Irrespective of the tracer selected, it is necessary to get required permission from relevant agency of government before addition of such tracer to body of water used for municipal water supply [8]. The expression used to determine the discharge using the dilution method is presented in Eq. (1):
where Q is the stream discharge (m3/s), q is the tracer injection rate, C1 is the tracer concentration in injection, C2 is the final concentration of tracer in the stream and Co is the background tracer concentration in the stream.
These methods involve using various empirical formulae when it is impossible to measure discharge. Empirical formulae such as Chezy, Manning, and Strickler formulae are commonly used.
One of the earlier formulas to evaluate the flow of water in river is Chezy equation. The formula was proposed in 1768 by a French engineer when designing a water supply canal in Paris [8]. Chezy coefficient depends on Reynolds number and boundary roughness. The Chezy expression for determining discharge in an open channel is given in Eq. (2):
where Q is the stream discharge (m3/s), A is the channel cross-sectional area (m2), C is the Chezy coefficient (dimensionless), R is the hydraulic radius (m) and So is the channel bed slope (dimensionless).
The formula is named after an Irish engineer, Robert Manning, in 1889. The Manning equation is commonly used for the design of ditches carrying water. The Manning expression for calculating stream discharge in an open channel is presented in Eq. (3):
where Q is the stream discharge (m3/s), A is the cross-sectional area of the channel (m2), R is the hydraulic radius (m), So is the slope of the channel bed and n is the Manning roughness coefficient of the channel.
Flow measurement using hydraulic structures involves the placement of a selected hydraulic structure such as weirs or flumes across a river channel. This is to generate flow properties that can be used to develop relationships between flow rate and water levels at certain section along the stream. This method uses a hydraulic structure constructed across a channel to produce flow properties that are characterized by relationships between the water level measurement at some location and the flow rate of the stream. The streamflow is estimated by taking measurement of the water surface level in or near the restriction of the hydraulic structure.
Weirs are hydraulic structures which water flows over. They have advantage of being relatively lower in cost and relatively simple to construct. Weirs can be easily installed in open channels and a level of accuracy can be achieved when used appropriately. However, it is normally operated with a significant head loss, and its degree of accuracy can be affected by variation in approach velocity of water in flow channel [4]. A weir must be periodically cleaned to prevent sediment deposits at the upstream side of the weir, which will have adverse effect on the weir accuracy. Errors resulting from the approximations of discharge are corrected by means of a coefficient of discharge. Through experiment, the coefficient of discharge of a weir has been found to vary with the approach head; the results of the extensive tests with a V-notch weir produce results, which showed the variations [7].
Broad-crested weir is also known as long base weir. It is made up of an obstruction in the form of a raised portion of the bed, and it spans the full width of the channel with a crest sufficiently broad in the direction of flow for the surface of the liquid to become parallel to the crest of the weir [8, 9]. Broad-crested weirs are very robust structures and are generally constructed using reinforced concrete. The flow upstream is tranquil and conditions downstream allow a free fall over the weir. The flow characteristics of rectangular broad-crested weirs with sloped upstream face were studied by [10]. The results showed that decreasing upstream slopes from 90 to 10° resulted in increasing discharge coefficient values and dissipation of the separation zone. Flow was simulated over broad-crested weirs using 2D and 3D computational fluid dynamic models. Results revealed that the 3D required more computation period than 2D [11].
Investigation on the effects of surface roughness sizes on the discharge coefficient for broad-crested weirs was carried out by [12]. Results showed that the logical negative effect of roughness increased with discharge for different lengths of the weir. The flow over a broad-crested weir in subcritical flow conditions was studied [13]. It was found that the discharge coefficient of a rectangular broad-crested weir was related to upstream total head above the crest, length of weir and channel breadth. Also, [14] studied the discharge relations for rectangular broad-crested weirs. Results showed that a discontinuity occurred in head-discharge ratings because the section width experienced a break in slope when the flow entered the outer section. Values of coefficient of discharge (Cd) obtained from the experiments on compound broad-crested weirs are lower than those of a broad-crested weir with a rectangular cross section. Figure 1 illustrates flow pattern over a broad-crested weir. In broad-crested weir, the flow over the crest of the weir is critical so the discharge equation is not the same as that of the sharp-crested weir. The modified equation of the broad-crested weir is presented in Eq. (4). Rectangular broad-crested weirs are commonly employed to measure discharge in irrigation canals especially in developing countries [15]:
Flow pattern over a broad-crested weir.
where Q is the discharge over the weir (m3/s), B is the width of the weir (m), C is the discharge coefficient (dimensionless), H is the head of water over the weir model, upstream (m) and g is the acceleration of gravity = 9.81 m/s2.
Sharp-crested weir is regarded as the simplest form of flow measuring device over spillway in the measurement of flow in open channel. The characteristic of flow over the sharp-crested weir was recognised early in hydraulics engineering as the basis for design of round-crested overflow spillway. The shape of flow (nappe) over the sharp-crested weir can be represented by the principle of projectile. A sharp-crested weir is simple to instal and frequently used as a flow measuring device in an open channel. The determination of the discharge coefficient over sharp-crested weir was conducted by [16]. The results revealed that on the average, the coefficient of discharge was 0.7. Also, [17] determined the discharge coefficient in an inclined rectangular sharp-crested weir using experimental and numerical simulation. Results revealed that the discharge coefficient of the weir increases with the increase in inclination of the weir plane. The discharge coefficient for a sharp-crested weir was investigated to vary between 0.61 and 0.73 [18].
A commonly used sharp-crested weir structure for measuring streamflow in irrigation and drainage channels is rectangular in shape [19]. In the sharp-crested experiment, the relationship between water level over the weir crest and discharge can be established; also the coefficient of the discharge for the weir can be determined. At the upstream of the sharp-crested weir, the velocity of all moving water elements is nearly uniform and parallel to the channel bed [19]. Figure 2 shows flow pattern over a sharp-crested weir. The nappe usually traps a certain amount of air between the lowest nappe surface and the downstream side of the weir. When the downstream water level rises over the weir, the weir is said to be submerged. Eq. (5) is used for estimating the specific energy of water over the sharp-crested weir:
Flow pattern over a sharp crested weir, where a is the height of the weir crest above the flume channel bed (m); L is the length of the weir (m); V is the velocity of moving water (m/s); y is the depth of water before the critical stage (m); yc is the critical depth (m); Vc is the critical velocity (m/s); H is the head of water above the weir (m); and h is the head of water above the weir at upstream of weir section (m).
where g is the acceleration of gravity = 9.81 m/s2, a is the height of the weir above the channel bed (m), H is the height of the water surface above the weir crest (m), V is the upstream flow velocity (m/s) and E is the specific energy (m).
Considering a streamline from a point in the upstream flow to a point in the plane of weir on the assumption of uniform velocity in the upstream of flow, the relationship between discharge and water level over sharp-crested weir is presented in Eq. (6):
where Q is the flow discharge (m3/s), Cd is the discharge coefficient, B is the width of weir and h is the head over the weir (m).
V-notch sharp-crested weir is an upright tinning structure placed perpendicular to the base of a horizontal channel. The weir is a common discharge measuring device applicable to a various degree of streamflow. Globally, the weir is also known as Thompson weir. The flow regimes that are observed in the weir are:
Partially contracted weir in which the contraction at the sides of the weir is partly noticed because of closeness to the walls and bed of the channel.
Fully contracted weir is a channel whose bed and sides are at far distance from the edges of the weir to give enough approach velocity parallel to surface of the weir. Expression to determine discharge over the weir is presented in Eq. (7):
where Q is the flow discharge (m3/s), g is the acceleration of gravity = 9.81 m/s2, h is the water head above the weir vertex (m) and θ is the vertex angle (°).
Modification of fully contracted sharp-crested weir with a trapezoidal control section is known as Cipoletti weir. The weir crest slopes outward with 1:4 horizontal to vertical inclination. Cipoletti in 1886 observed that an increase in side contraction with corresponding increase in head results in reduction of discharge over the weir. The discharge reduction would be taken over by the control section. This will permit the use of head-discharge equation of a full-width rectangular weir. The equation for the determination of discharge over Cipoletti weir is shown in Eq. (8):
where Q is the discharge (m3/s), Cd is the discharge coefficient, L is the effective length (m) and H is the depth of flow of water over the weir base (m).
Short-crested weirs have characteristics similar to broad-crested and sharp-crested weirs. Streamlines above the crest of short-crested weirs are curved. Some typical examples of the weirs are weir sill with rectangular control section, V-notch weir sill, triangular profile weir (Crump weir), the flat V-weir, cylindrical-crested weir, streamlined triangular profile weirs and flap gates.
In 1952, Crump published details of a weir with a triangular profile which had been developed at the Hydraulic Research Station. This was claimed to give a wide modular range and also to give a more predictable performance under submerged conditions than other long-based weirs [7].
Crump proposed upstream and downstream slopes of 1:2 and 1:5, respectively, which were based on sound principle. The upstream slope was designed so that sediment build-up would not reach the crest. The downstream slope was shallow enough to permit a hydraulic jump to form on the weir under modular flow condition, thus providing an integral energy dissipater; also under submerged conditions, losses are not too high and the afflux is minimized. The equation for the determination of discharge over Crump weir is shown in Eq. (9):
where Q is the flow discharge (m3/s), Cd is the coefficient of discharge, B is the width of weir (m), g is the acceleration of gravity (m/s2) and h is the head above the weir (m).
This is a special type of weir, generally used as a spillway of a dam [20]. The crest of an Ogee weir rises up to a height of 0.115 H and falls in a parabolic form. The shape of water over an Ogee weir is similar to the shape of the lower of a sharp-crested weir. The expression for determining discharge over an Ogee weir is presented in Eq. (10). An Ogee spillway with a fixed-width curvature can pass more flow. Hence, under low hydraulic heads, it is considered as an economical viable structure [21]:
where Q is the discharge (m3/s), Cd is the discharge coefficient, L is the length of the weir (m) and H is the depth of flow of water above the weir crest on the upstream side (m).
Flume is a hydraulic device that can be used to constrict flow scenarios in an open channel for the purpose of measurement. In a broad meaning, a flume can be described as an artificial prismatic open channel in the laboratory. It can be used to simulate various hydraulic parameters in an open channel flow such as: depth and corresponding discharge [4]. Flumes can be generally described as hydraulic structure which water flows through. They can be tailored to a greater range of flows and require less head loss.
The traditional flume is used to measure discharge in agricultural systems. Flumes are designed in order to produce a critical depth in the flume throat and thereby creating a direct relationship between water depth and flow rate. In practice, test data or derivation of empirical relationship based on field research is usually employed in determining the relationship between the water depth and the flow rate.
Flumes are self-cleaning due to the fact that the velocity of flow through a flume is usually high and also the absence of no obstruction across the channel. It is also possible to operate with a very smaller head loss which cannot be achieved with a similar weir structure, and this makes flume to be adopted in many areas where the available head is limited. Traditionally, flume is used in measuring flow in agricultural systems and it requires low maintenance cost [22]. It has capacity to measure higher flow rates than a comparably sized weir.
In terms of accuracy, it is possible to obtain an accuracy within ±2–5% (for the flume itself) with overall system accuracy for a typical installation being ±10% when all factors are considered [22].
Flumes are generally classified into two major categories. These are long-throated and short-throated flumes. Examples of long-throated flumes are rectangular (Venturi), trapezoidal and U-shaped flume. Examples of short-throated flumes are Parshall flumes and H-flumes, throatless flume with rounded transition and throatless flume with broken plane transition (cutthroat flumes). When compared with weirs, long-throated flumes are similar to broad-crested weirs (parallel streamlines), while short-throated flumes behave like short-crested weirs (curved streamlines).
Flumes are specially configured open channel structures which control the velocity, resulting in flow changes and in water level. The streamflow through a flume is estimated by measuring depth of water in the flume at a specified location, based on the flume configuration. Generally, flumes are employed to determine discharge where weirs are not useful. They are commonly useful in measuring field runoff when streamflows during storms can be channelled and conveyed across the device. Flumes are very suitable in measuring streamflows containing sediment because the increased velocity through the flume tends to make itself cleaning [7]. The discharge over a flume is determined using Eq. (11):
where Q is the flow rate (m3/s), k is the flume discharge constant (varies according to flume size), Ha is the depth at the site of measurement (m) and n is the discharge exponent (depends on flume size).
Orifice is a small opening provided at the side or bottom of a tank through which liquid flows out. It is used to measure the flow of a fluid from a tank or reservoir. The cross section of the opening may be square, rectangular, triangular or circular. The stream or liquid coming out of an orifice is called a jet. The difference between orifice and notch is size; orifice is smaller than the notch. The quantity of flow measures by orifice is smaller than the notch [22]. Orifices are classified based on size, shape, discharge conditions and shape of the upstream edge. The expression for estimating the amount of flow through an orifice is shown in Eq. (12):
where Q is the discharge (m3/s), Cd is the discharge coefficient, A is the area of orifice (m), h is the depth of flow of water over an orifice (m) and g is the gravitational acceleration = 9.81 m/s2.
A notch is an opening in the side of a tank or a vessel in such a way that the liquid surface is below the top edge of the opening. It is a device used to measure the rate of flow of liquid through a tank or a small channel. Notch is a thin structure, usually made of a metallic plate [20]. Flow pattern over a rectangular notch is similar to flow over rectangular and Ogee weirs. The expression for calculating flow through a rectangular notch is presented in Eq. (13):
where Q is the discharge (m3/s), Cd is the discharge coefficient, L is the length of the weir (m) and H is the depth of flow of water in the notch (m).
Selecting the most appropriate hydraulic structure and the optimal design of its dimension is very critical to the accuracy and quality of streamflow measurement. Therefore, it is incumbent on the designer to balance its choice based on the characteristics of the structures, field constraints and human factors as dictated by the water management in the area. The characteristics of different hydraulic structures for streamflow measurement are embedded in a number of properties such as:
Range of measurement is determined by the shape and width of the crest.
Head loss required by hydraulic structures with a high discharge capacity usually has a high coefficient of discharge and vice versa.
Accuracy of measurement is determined by reliability of the calibration. Sharp-crested weir (V-notch) has the highest accuracy (
Possibilities of regulating discharge over hydraulic devices have been developed to perform more than one function such as streamflow measurement and flood regulation. Other structures such as flumes are designed exclusively to have a fixed crest.
Considered the second most commonly performed operation after cesarean section worldwide, hysterectomy may be classified as abdominal (laparotomy, laparoscopy, or robotic assistance) and vaginal (via an incision through the superior part of the vagina).
The most common indications for hysterectomy are benign conditions such as uterine fibroids, endometriosis, genital prolapse, pelvic pain, heavy menstrual bleeding, but the technique is also used for gynecological malignancy (usually ovarian, uterine, or cervical) and risk-reducing surgery (in cases of BRCA 1 or 2 mutations or Lynch syndrome) [1, 2, 3, 4].
Actually, there are three types of hysterectomy—total hysterectomy (the uterus and cervix are removed), subtotal or partial hysterectomy (the uterus is removed, but the cervix is left in place), and total hysterectomy with bilateral salpingo-oophorectomy (uterus, fallopian tubes, ovaries, and cervix are removed) [1, 2, 3, 4]. The term radical hysterectomy (removal of the uterus, cervix, parametrium, vaginal cuff, and fallopian tubes) is used to describe a wide range of procedures universally applicable to cervical cancer. However, the degree of radicality clearly depends on preoperative estimation of tumor location, surgical margins and the risk of occult lymphatic spread. Moreover, the ovaries may or may not be removed according to the patient age [1, 2, 3, 4]. In addition, supracervical hysterectomy is sometimes preferred to diminish the intraoperative complications and surgical times, as well as to limit the possibility of lower urinary tract issues and maintain normal sexual function [1, 2, 3, 4].
The best route for hysterectomy is multifactorial, depending not only on the surgeon’s skills and patient safety (minimally invasive procedures as vaginal, laparoscopic, laparoscopic-assisted, and robotic-assisted hysterectomies) but also on economic reasons [1, 2, 3, 4].
Hemorrhage after hysterectomy is recognized as an occasional life-threatening complication in modern gynecological surgery, assuming appropriate medical and surgical management [2, 3, 4, 5, 6, 7, 8, 9].
Classified as “reactionary” (postoperative bleeding within the first 24 hours following surgery) and secondary (bleeding occurring in the interval 3–22 days after surgery), unexpected hemorrhage may arise regardless of the route or subtype of hysterectomy [5, 6, 9]. Early recognition and prompt intervention (reoperation or arterial embolization) to arrest bleeding are essential strategies for the suitable outcome of the patient [2, 3, 4, 5, 6, 7, 8, 9, 10].
While the role of risk factors for “reactionary” hemorrhage is emerging and critical for a correct assessment of the patient, operative laparoscopy is still ideal to treat hemorrhage after vaginal hysterectomy, laparoscopic hysterectomy, laparoscopic-assisted vaginal hysterectomy, and laparotomy being necessary only in selected cases [2, 3, 4, 6, 9].
Secondary hemorrhage presents with varying degrees of severity and tends to be more common after laparoscopic hysterectomy, especially total laparoscopic hysterectomy than after the other hysterectomy approaches [5, 9]. Factors potentially responsible are vaginal vault infection, vault hematoma, a poor surgical technique including excessive thermal injury by electrocoagulation, and early resumption of physical activity, large uterus size, excessive use of an energy source for the uterine artery, and culdotomy [2, 3, 4, 5, 7, 9, 10].
Ultimately, the management of secondary hemorrhage is challenging and involves diverse approaches based on the exact cause of bleeding, comprising vaginal packing with or without vault suturing, laparoscopic coagulation of the uterine artery if the source of bleeding could not be identified vaginally or arterial embolization [6, 9, 10].
Because of elective gynecologic surgery, we encourage selective patients to donate their own blood before surgery [6, 11]. Several definitions are actually used:
autologous blood transfusion, when is done with the patient’s own blood; blood is stored and can be transfused during surgery;
homologous transfusion or transfusion from another woman;
parachute pack or umbrella pack is a useful tool for pelvic bleeding after pelvic exenteration;
peanut dissector; this tool is indicated for blunt pressure dissection of small places;
total blood volume; estimated blood volume of total body weight is 8% or 4.5–5.0 liters in the average women. When intraoperative blood loss exceeds 15% of the blood volume, blood transfusion must be taken into consideration in combating hypovolemic shock. About 15% of an adult blood volume can be calculated by amplification a patient’s weight in kg 10 times. The usual method of performing abdominal hysterectomy involved the use of clamps or forceps on vessels.
The present chapter will give an overview on different aspects of bleeding after hysterectomy such as incidence rate, risk factors, mechanisms, and management techniques aiming to expand our knowledge and skills in recognizing and treating this unexpected potentially serious complication. Furthermore, we intend to offer a guide toward standardizing treatment practice across bleeding issues following hysterectomy considering clear recommendations and algorithms.
Postoperative hemorrhage represents a significant potential complication of contemporary gynecological surgery. Despite normal hemostasis, appropriate/suitable surgical technique and close monitoring, postoperative bleeding may occur, leading to the different clinical and operative scenarios and challenging even the most experienced operative team [2, 3, 4, 9, 11, 12].
Based on their timing to surgery, two main subtypes of postoperative hemorrhage are actually recognized [5, 6, 7, 8, 9]:
Although the incidence of postoperative hemorrhage basically varies according to surgery, the difference between abdominal, laparoscopic, and vaginal hysterectomy remains statistically insignificant [5, 6, 7]. Indeed, some authors postulate that postoperative bleeding occurs more frequently after abdominal and laparoscopic than after vaginal hysterectomy, but overall, the incidence of hemorrhagic events after a hysterectomy varies from 0.2 to 3.1%, irrespective of surgical route [5, 6, 7, 8, 10, 13, 14].
On the other hand, the true frequency of delayed bleeding complications is still unknown, although the consequences can be particularly significant in women undergoing outpatient surgery [5, 6, 7, 8, 10, 13, 14]. Paul et al. reported an overall cumulative incidence of secondary hemorrhage after a total laparoscopic hysterectomy of 1.3% [5]. Although secondary hemorrhage is rare, it is more often reported after total laparoscopic hysterectomy than after other hysterectomy approaches [5, 6, 7, 8, 10, 13, 14].
Table 1 summarizes data on the incidence of postoperative hemorrhage reported by several authors.
Authors | Type of study, no of cases | Incidence postoperative hemorrhage |
---|---|---|
Makinen et al. [15] |
|
|
Wilke et al. [13] |
|
|
Holub and Jabor [7] |
|
|
Erian et al. [6] | 719 patients between November 1990 and March 2007: 476 VH, 243 LH |
|
Paul et al. [5] |
|
|
Incidence of postoperative hemorrhage in gynecological surgery.*
AH, abdominal hysterectomy; LH, laparoscopic hysterectomy; VH, vaginal hysterectomy; L-AVH, laparoscopic-assisted vaginal hysterectomy.
Hemorrhage is responsible for about half of the postoperative complications following gynecological surgery, ranging from persistent venous oozing to massive blood loss from injury to retroperitoneal vessels [5, 6, 7, 12, 13].
Main bleeding sites comprise the anterior abdominal wall (both the suprapubic and the umbilical incision), the vaginal cuff (after laparoscopic hysterectomy and laparoscopic-assisted vaginal hysterectomy), and intraabdominal bleeding. Abdominal wall vessel injury occurs with increasing frequency, as the practice of laparoscopic surgery becomes wider and trocars become sharper [2, 3, 4, 7, 9].
The source of bleeding in secondary hemorrhage can be the uterine vessels or descending cervical/vaginal vessels; occasionally, uterine artery pseudoaneurysm can cause delayed heavy vaginal bleeding after laparoscopic hysterectomy [2, 3, 4, 7, 9]; additionally, the technique of vaginal vault closure may also contribute to the occurrence of secondary hemorrhage [5, 9].
Postoperative hemorrhage can result from failure to control vascular injury during surgery. Accurate clamp placement, gentle handling of tissues, and the accuracy of dissection are all important and contribute to maximum efficiency with minimum blood loss and minimum tissue damage when abdominal hysterectomy is performed [9].
The electrosurgical instrument can be used for a precise incision of the abdominal wall with minimal tissue injury. By holding the electrode close to the tissue or touching the metal clamp and pressing the coagulation button, superficial coagulation can be achieved [2, 3, 4, 9].
Intra- and post-operative bleeding generally develops in younger women or those with a more vascular pelvis who underwent a hysterectomy, especially laparoscopic hysterectomy in the presence of fibroids [6, 16].
Possible rationales for secondary hemorrhage comprise a bleeding vessel missed at the end of the procedure, effects of pneumoperitoneum, Trendelenburg position, low intraoperative pressure, wearing off the effect of vasopressin, subacute infection, postoperative analgesia, as well as bleeding disorders [2, 3, 4, 5, 7, 9].
Other potential factors accounting for delayed postsurgical bleeding are vaginal vault infection, vault hematoma, poor surgical technique with excessive thermal injury by electrocoagulation, and early resumption of physical activity [5, 7, 9]. A large-sized uterus, high vascularity, large-sized vessels, excessive use of an energy source for the uterine artery, and culdotomy also play a role in this hemorrhagic event [5, 7, 9].
Most of the complications during or after hysterectomy are preventable or treatable. Other complications may exist as medical conditions before hysterectomy but are worsened during surgery, especially if not managed as part of holistic woman’s care.
Complications after surgery include [2, 3, 4, 9, 12]:
In Romania, the mortality rate following a hysterectomy is very low.
Contemporary management of surgical interventions includes postoperative bleeding and the possibility of blood transfusion with risks of HIV transmission (in 1.9 million cases), the transmission of hepatitis B (one in every 180.000 cases), or a febrile reaction to transfusion (1% cases) [2]. Most experts recommend acute normovolemic hemodilution and cell salvage in women undergoing hysterectomy section who will not accept blood products.
Hypovolemic shock can occur after major bleeding as a direct result of uncontrolled hemorrhage. Depending on the total blood volume lost, hypovolemic shock may be divided into four classes: I (< 75 mL or 15%), II (750–1500 mL, or 15–30%), III (1500–2000 mL or 30–40%) and IV (>2000 mL or > 40%) [6].
The clinical manifestations of class I hypovolemia are not measurable and compensatory mechanisms restore plasma volume within a day. In class II hypovolemia, tachycardia is the most frequent clinical finding as a result of inadequate circulatory volume. The distinction between class I and II hypovolemic shock is made by recording blood pressure and pulse in the standing, sitting, or reclining position. Postural hypotension is observed as result of cardiac failure. Compensatory mechanisms begin to fail with the class III hypovolemic shock. This results in an increase in the arterial and venous oxygen difference with classic signs including worked tachycardia, tachypnea, oliguria, and cold skin. With the class IV hypovolemic shock, a patient’s survival depends on rapid transfusion of blood and immediate surgical intervention before cardiovascular collapse and death or organ system failure.
After initial resuscitative measures are instituted, it is highly recommended for patients to be carried out in a critical care unit. Use of sympathomimetic agents after sufficient hydration and vasodilator is normally preferred in the management of patients with hemorrhagic shock who have arterial pressure higher than 70 mm Hg.
Once restoration of the intravascular volume has been completed, it is important to reassess the patient’s response to blood transfusion when managing women with severe blood loss, especially in those patients who have pulmonary edema, myocardial infarction, or congestive heart failure [12].
Transfusion for patients with hemoglobin of 8–10 mg/dL is no longer recommended.
When major surgery is anticipated and transfusion is massive, platelets in addition to packed cell transfusion are required. It is recommended that cryoprecipitate be reserved for patients with deficiencies in von Willebrand factor, factor VIII, and fibrinogen factor XIII.
Recognized as an uncommon complication of hysterectomy, postoperative hemorrhage represents a true challenge in routine practice [8]; irrespective of the procedure, a close follow-up of the patient in a high-dependency unit is indicated in order to exclude recurrence of bleeding [6, 7].
The key to successful management is timely intervention meaning prompt diagnosis, urgent resuscitation if necessary and rapid decision for either arterial embolization or reoperation according to the severity of bleeding and the hemodynamic stability of the patient. Both techniques are highly effective to control bleeding; nevertheless, if the patient is hemodynamically unstable or of the interval since surgery is under 24 hours suggesting rapid hemorrhage, the emergency return to the operating theater to arrest the bleeding is preferred [6, 7, 9].
Current options for managing hemorrhage include [6, 7, 9]:
every patient should be carefully monitored postoperatively for signs of bleeding (hypotension, tachycardia, tachypnea, abdominal distension);
ultrasound can confirm intraperitoneal bleeding; more ways to determine intraabdominal hemorrhage include abdominal and pelvic CT scan; a routine coagulation profile should be done immediately for the patient with a rapid pulse, low blood pressure, and/or low urine output. The surgeon must take charge of the problem and execute the technical steps necessary to treat hemorrhagic shock in the operating room. Intraperitoneal bleeding can be hidden by incisional pain and analgesic medications. Despite adequate dissection, a small vessel may bleed or the suture may cut through tissue. Skeletonized vessels and small sutures should be used for significantly reducing the incidence of postoperative hemorrhage. Venous bleeding can be more life-threatening than arterial hemorrhage which can be clearly seen and controlled with fast small sutures or clamps.
the presence of unexpected drop in hematocrit or hemoglobin postoperatively.
A simplified algorithm to describe steps after gynecological surgery and potential post-surgery bleeding is provided in Figure 1.
A simplified algorithm of post-surgery bleeding approach.
A closer look at the holistic management of postoperative blood should also underpin the following [9]:
to assess blood value and coagulation mechanisms;
to identify changes in the coagulation components, and to initiate replacement therapy in order to achieve adequate hemostasis. In assessing the patient’s coagulation status, it is very important to avoid such a situation known as the trauma triad of death consisting of—hypothermia, metabolic acidosis, and coagulopathy. In some patients with benign disease, blood transfusion is rarely indicated. Experience has shown that blood transfusion may be significant in women with malignant disease;
to establish the therapeutic strategy by measuring the level of prothrombin time < 14 sec, activated partial thromboplastin time (aptt) < 40 sec, fibrinogen >100 mg/dL, platelets >80 × 103 mL.
In hemodynamically unstable women (rapid pulse, falling blood pressure, with or without renal impairment) or if the bleeding occurs shortly in post-surgery (the so-called reactionary hemorrhage), it is desirable to return to the operating room [5, 6, 7, 8, 9].
A preoperative abdominal and pelvic ultrasound or CT scan is routinely required to visualize the source of bleeding as being intra- or retro-peritoneal, as well as adequate local examination without or under anesthesia. Moreover, the operative procedure should be mentally revised to identify any potential bleeding issue [9].
Surgical revision for postoperative bleeding may be performed transvaginally, laparoscopically, or both [5, 6, 7, 8, 9, 13, 14].
Postoperative hemorrhage from the vaginal vault recurrently originates from the vaginal artery in the lateral vaginal fornix or from one of its branches, since the lateral vaginal angle which includes the vaginal artery may not be accurately protected or turn into disligated [9, 13, 14]. Excessive vaginal bleeding needs to be objectively measured; since the vagina is a distensible organ, clots obstructing the vaginal introitus may lead to a large amount of blood accumulating and distending the vagina, subsequently covering the true significance of hemorrhage [9, 13, 14]. Vaginal bleeding can be controlled by clamping and ligating the bleeding point as well as by delayed-absorbable transfixion suturing of the vaginal mucosa and paravaginal tissue [9, 13, 14]. If such techniques are not enough or bleeding vessels have retracted, other tactics should be intended [8].
When no noticeable vaginal source, bleeding after abdominal or vaginal hysterectomy is traditionally treated by laparotomy or laparoscopy [7, 9]. While laparotomy is recommended in cases of intraperitoneal bleeding or unsuccessful conservative transvaginal treatment, operative laparoscopy is clearly indicated if the source of bleeding cannot be identified by the means of vaginal examination and/or if an intraabdominal bleeding source is suspected [7, 9, 13].
Post-surgery bleeding requires laparotomy in two situations.
Firstly, if the surgical hemostasis cannot be achieved transvaginally, laparotomy may be necessary [9].
Secondly, if the patient underwent an abdominal hysterectomy, the incision should be reopened, succeeding the following steps (i) clots and blood evacuation from the abdomen and pelvic area; (ii) searching of the potential bleeding sites, commencing with the most expected places; (iii) ligating, suturing, or clipping of the identified bleeding sites; (iv) verifying the ureteral integrity as high risk of ureteral damage during reoperation; and (v) closing second time after a completely dry abdomen and pelvis [9].
The laparoscopic approach to postoperative bleeding following laparoscopic hysterectomy, vaginal hysterectomy, or laparoscopic-assisted vaginal hysterectomy is an attractive alternative to the abdominal surgical approach in the majority of patients [6, 7, 9, 13]. The procedure can be used to adequately evaluate the pelvis and the abdominal wall, which is occasionally the source of hemorrhage after laparoscopic hysterectomy. Moreover, whether the bleeding is from the abdominal wall, the surgical pedicles, or the vaginal cuff, it can be managed laparoscopically [8, 9]. Evidently, hemostasis can be more easily obtained in laparoscopic surgery because of magnification, close inspection, routine use of suction irrigation, and bipolar coagulation [7, 9]. Besides, bipolar coagulation, a Foley catheter introduced in the port-site bleeding, or a collagen-fibrin agent can be used to achieve local hemostasis during laparoscopy [7, 9].
Following laparoscopic irrigation/suction using Ringer’s solution to clear the operative field, a combination of laparoscopic suturing using absorbable suture material and laparoscopic bipolar coagulation is commonly recommended [6, 8, 9]. Also, electrosurgery is effective in controlling bleeding during laparoscopic surgery. Furthermore, different forms of fibrin adhesive are tested in gynecologic open surgery in order to stop oozing hemorrhages after primary hemostatic treatment with a high efficacy rate (98%) [6]. Holub and Kliment reported successful treatment of hemorrhage from damaged tissue near important pelvic structures using the laparoscope to apply collagen fleece combined with fibrin glue [7, 17].
To avoid further risk of injury to the abdominal wall and to improve the recovery time from surgery,
Conversely, if the patient is reasonably stable and there is not abrupt early bleeding (based on the volume of blood in the abdomen or retroperitoneal space as estimated by ultrasound and the time from surgery), it seems realistic to try to identify the bleeding artery and embolize it by transcatheter interventional radiological techniques [2, 3, 4, 9, 10].
Arterial embolization remains an important minimally invasive option for the management of delayed postoperative hemorrhage [2, 3, 4, 8, 9, 18]. Transcatheter arterial embolization has been shown to be an effective tool for the management of postoperative hemorrhage after gynecologic laparoscopy, but also after abdominal and vaginal hysterectomy [8, 9]. Selective angiographic arterial embolization is a quite simple and safe procedure with a clinical success rate up to 90% in routine practice and usually a low complication rate less than 10%, including a mild postembolization syndrome with pain, fever, high leucocyte count related to vascular thrombosis and tissue necrosis [8, 9]. Bladder necrosis, vesicovaginal fistula, neuropathies as well as renal toxicity are uncommon, isolated side effects [9].
Arterial embolization technique comprises the following main steps—(i) identification of the site of bleeding by angiofluoroscopy if more than 2–3 mL/min bleeding rate; (ii) percutaneous catheterization of the femoral artery or, uncommonly, brachial artery under local anesthesia with retrograde direct access to the hypogastric artery; (iii) canulation of the hypogastric artery or specific collateral vessel if appropriate; (iv) injection of the embolization material under angiographic observation (metal coins, autologous clot, small pieces of gelfoam, small silastic spheres, subcutaneous tissue, or other hemostatic materials; (v) repeat angiography to demonstrate the occlusion of the bleeding vessel; (vi) remove of the catheter followed by careful monitoring for further bleeding [8, 9, 10].
Although second surgery is often the initial choice for postoperative hemorrhage, for a patient who is hemodynamically stable but is experiencing postoperative hemorrhage, transcatheter arterial embolization is a welcome alternative to a second surgery [8, 9]. However, if rapid access to interventional radiology is not available or if transcatheter arterial embolization is unsuccessful, laparoscopy can still be considered [8, 9]. Besides, a potential advantage of surgical management of postoperative hemorrhage over transcatheter arterial embolization is the ability to evacuate the hemoperitoneum, which may decrease postoperative pain, the risk of infection, and the risk of ileus [8, 9].
It is typical to expect some bleeding after hysterectomy in the 6–8 weeks following the procedure; the discharge may be red, brown, or pink. Bleeding should steadily decrease in the days and weeks following the surgery and should never be excessive at any point of recovery [18]. The exception is menstruation in women who have undergone a subtotal hysterectomy [18, 19]. In case of bleeding after hysterectomy, it is more likely to be of some pathologic cause instead of menstruation which needs to be ruled out [19].
However, a sudden and significant increase in bleeding during recovery should be considered abnormal. Points of concern comprise but are not limited to—bright red vaginal bleeding (indicating active bleed), temperature over 100.4°F, severe nausea or vomiting, increasing pelvic pain, a local complication such as redness, swelling, or drainage at the incision site as well as difficulty in urinating or pain with urination suggesting either an infection or a neurogenic bladder [18].
Delayed vaginal hemorrhage after laparoscopic supracervical hysterectomy usually requires emergent reoperation. Several studies have described continued cyclical bleeding from the cervical stump after supracervical hysterectomy in 0–25% of cases [20].
Effective interventions addressing hemorrhage after hysterectomy are needed to reduce women’s mortality worldwide.
Prior to hysterectomy, these women should be offered specific counseling and have a prospective plan for the management of their disease, developed by gynecologists of how their condition and hysterectomy interact. Prehysterectomy counseling services starting for all women planning this surgical intervention are a key part of hospital services and should be an integral part of the local health services network. They could be provided by general practitioners or specialist clinicians or surgeons, all of whom should be suitably trained or may require different management or specialized services before hysterectomy. There are special circumstances as congenital or acquired coagulation disorders that should be considered to evaluate by a thorough history and lab tests.
Professional interpretation services for women who do not speak English.
It is not clear how much the specific medical terminology is conveyed to the patient. Healthcare providers have to invest in technology, security, specialists, and translators to ensure healthcare becomes world-class. Medical tourism is growing each year. Romania provides the highest quality healthcare at the lowest price. Also, the cost of hysterectomy in Romania is lower than the same treatment in UK or UE. In developed countries as the USA, UE countries or Canada patients have to wait a long time for major surgeries. The cost involved in treating a patient depends upon factors like—type of hysterectomy needed, hospital and physician selected for it, and duration of staying.
Communication and referrals among professionals.
Good communication among professionals is essential. Referral between specialties involved should be rapid. They can use a variety of communication methods including—mobile phone, email, fax, Whatsapp, Instagram, Tik Tok, Facebook, etc. In many cases, junior trainees in the front line did not have proper support and need to have clear guidelines about when to seek senior help.
Women with serious medical conditions
They require immediate and appropriate multidisciplinary specialist care; women will require referral to tertiary or specialist medical centers for their preexisting medical or mental conditions before hysterectomy. Conditions that require prehysterectomy counseling and advice include—epilepsy, diabetes, asthma, congenital or known acquired cardiac disease, autoimmune disorders, renal and liver disease, obesity (BMI > 30), severe mental illness, or psychiatric conditions that require a change of medication, HIV infection. Women with potential serious underlying preexisting medical on mental health conditions should be immediately referred to appropriate specialist centers of expertise as soon as their symptoms develop.
Clinical training
All clinical staff must undertake regular training for the identification and management of serious disease conditions or potential emergencies or signs and symptoms of potentially life-threatening conditions, circulatory failure, severe hypertension or major hemorrhage, pyrexia >38°C, tachycardia >100 bpm, breathlessness. The local clinicians may be excellent at the management of severely ill women but must also accept written, documented, and audited courses. There should be a well-trained team of doctors for recording and charting investigations performed, obtaining quick results, ensuring that abnormal results are followed up promptly and have resulted in a better outcome.
Identifying and managing very sick women with critical illness before, during or after hysterectomy
In very acute situations, a team approach can be very healthful. The management of patients with an acute severe illness with circulatory failure, arterial hypertension, and major hemorrhage requires a team approach and help from the anesthetic and critical care services. There are some healthcare professionals who failed to manage crisis situations outside their immediate area of expertise; therefore, it is crucial to recognize their limitations and to know when and whom to call for another opinion once the patient was admitted to the hospital.
Coagulation factors, hematocrit, serum calcium, glucose, and electrolytes could be assessed every 120 minutes or after 10 U of transfusion; these lab tests are very helpful for the diagnosis of postoperative bleeding.
RCOG guidelines of the responsibilities of the consultant on call should be followed.
Bilateral hypogastric artery ligation can reduce blood loss to a minimum during hysterectomy [9].
Hypotensive anesthesia is also a safe and effective technique in reducing the circulation to the operative field [9].
Serious incident and women death reporting
Health professionals, senior or junior, must recognize an act on the signs and symptoms of potentially life-threatening conditions.
The evaluation of such a report must include clinicians from relevant disciplines (including anesthetics) who were not involved with the deaths. This report is recommended to be a requirement in the future.
The identification and act on women’s death should be reviewed as a serious incident and disseminated to all health professionals, junior or senior. Women’s deaths are generally underreported because of incorrect classification of cause.
Fatal hemorrhage can result from laceration of the external iliac vein or the hypogastric vein where they join together which are at risk of injury when the surgeon dissects between the distal common iliac artery, the psoas muscle, and the area of lumbosacral nerve trunks [9]. These vessels cannot be clamped and ligated with clips or sutures [9].
Dissection around the aorta and vena cava done with inadequate exposure performed in order to remove lymph nodes around them can result in serious hemorrhage. Bleeding usually can be avoided by placing a finger over the laceration and a vascular needle is used to close the laceration from side to side. The same technique may be used for common and external iliac veins [9].
Also, bleeding can occur by dissecting pararectal space and presacral space as well as obturator fossa [9].
Pathology
Patient death autopsy must be improved and require more expertise.
In Romania, the number of women death after hysterectomy (death rate) is very small and many of the autopsies reviewed were considered adequate. When an autopsy is needed, the body can be taken to another area for more expert examination. Despite evaluation by many examiners in the different specialties, the final diagnosis could not be resolved because of inadequate clinical data, poor autopsy quality, or the unmanageable nature of some death.
The lack of routine observation in the postoperative period or a failure to appreciate blood loss or recognition of abnormal vital signs such as oxygen saturation and respiratory rate can lead to death after hysterectomy. The patient should be evaluated before hysterectomy for risk factors and the medical conditions of the women should be diagnosed by a careful history and lab tests in order to decrease the possibility of hemorrhage.
The risks of blood transfusion, the transmission of HIV or hepatitis B should be discussed before surgical procedure.
The peace of surgical intervention should be governed by good exposure of the tissue, accuracy of dissection, and clamping or suturing the vessels in a precise manner. The skills and experiences of the surgeon without wasting time with unnecessary hesitation or indecision will reduce the risk of uncontrolled hemorrhage after a hysterectomy.
The surgeon should control the life-threatening hemorrhage by judgment, knowledge, and technical skills. The patient’s medical history for vital signs, blood loss volume, and levels of coagulation factors will determine how quickly blood transfusion is initiated. Careful postoperative clinical evaluation of the patient by the surgeon and surgical team with abdominal or pelvic ultrasound or CT scanning will help to prevent or minimize significant blood loss after hysterectomy and localize the site of bleeding.
No funding was received for this chapter.
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\n\nWe have adopted the Protocol to increase the number of readers of our publications. All our Works are more widely accessible, with resulting benefits for scholars, researchers, students, libraries, universities and other academic institutions. Through this method of exposing metadata, IntechOpen enables citation indexes, scientific search engines, scholarly databases, and scientific literature collections to gather metadata from our repository and make our publications available to a broader academic audience.
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The preliminary objectives of the study are to understand and develop the evidence-based tools and interventions for the control and prevention of malaria in different sites of the INDIA. Alongside, with the help of next-generation genomics study, the team has studied the antimalarial drug resistance in India. Further, he has extended his research in the development of Humanized mice for the study of liver-stage malaria and identification of molecular marker(s) for the Artemisinin resistance. At present, his research focuses on understanding the role of B cells in the activation of CD8+ T cells in malaria. 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She is currently an Adjunct Professor at Feevale University in Medicine and Biomedicine courses and a permanent professor of the Academic Master\\'s Degree in Virology. She has experience in the field of Microbiology, with an emphasis on Bacteriology, working mainly on the following topics: bacteriophages, bacterial resistance, clinical microbiology and food microbiology.",institutionString:null,institution:{name:"Universidade Feevale",country:{name:"Brazil"}}},{id:"229220",title:"Dr.",name:"Amjad",middleName:"Islam",surname:"Aqib",slug:"amjad-aqib",fullName:"Amjad Aqib",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/229220/images/system/229220.png",biography:"Dr. Amjad Islam Aqib obtained a DVM and MSc (Hons) from University of Agriculture Faisalabad (UAF), Pakistan, and a PhD from the University of Veterinary and Animal Sciences Lahore, Pakistan. Dr. Aqib joined the Department of Clinical Medicine and Surgery at UAF for one year as an assistant professor where he developed a research laboratory designated for pathogenic bacteria. Since 2018, he has been Assistant Professor/Officer in-charge, Department of Medicine, Manager Research Operations and Development-ORIC, and President One Health Club at Cholistan University of Veterinary and Animal Sciences, Bahawalpur, Pakistan. He has nearly 100 publications to his credit. His research interests include epidemiological patterns and molecular analysis of antimicrobial resistance and modulation and vaccine development against animal pathogens of public health concern.",institutionString:"Cholistan University of Veterinary and Animal Sciences",institution:{name:"University of Agriculture Faisalabad",country:{name:"Pakistan"}}},{id:"333753",title:"Dr.",name:"Rais",middleName:null,surname:"Ahmed",slug:"rais-ahmed",fullName:"Rais Ahmed",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/333753/images/20168_n.jpg",biography:null,institutionString:null,institution:{name:"University of Agriculture Faisalabad",country:{name:"Pakistan"}}},{id:"62900",title:"Prof.",name:"Fethi",middleName:null,surname:"Derbel",slug:"fethi-derbel",fullName:"Fethi Derbel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/62900/images/system/62900.jpeg",biography:"Professor Fethi Derbel was born in 1960 in Tunisia. He received his medical degree from the Sousse Faculty of Medicine at Sousse, University of Sousse, Tunisia. He completed his surgical residency in General Surgery at the University Hospital Farhat Hached of Sousse and was a member of the Unit of Liver Transplantation in the University of Rennes, France. He then worked in the Department of Surgery at the Sahloul University Hospital in Sousse. Professor Derbel is presently working at the Clinique les Oliviers, Sousse, Tunisia. His hospital activities are mostly concerned with laparoscopic, colorectal, pancreatic, hepatobiliary, and gastric surgery. He is also very interested in hernia surgery and performs ventral hernia repairs and inguinal hernia repairs. He has been a member of the GREPA and Tunisian Hernia Society (THS). During his residency, he managed patients suffering from diabetic foot, and he was very interested in this pathology. For this reason, he decided to coordinate a book project dealing with the diabetic foot. Professor Derbel has published many articles in journals and collaborates intensively with IntechOpen Access Publisher as an editor.",institutionString:"Clinique les Oliviers",institution:null},{id:"300144",title:"Dr.",name:"Meriem",middleName:null,surname:"Braiki",slug:"meriem-braiki",fullName:"Meriem Braiki",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/300144/images/system/300144.jpg",biography:"Dr. Meriem Braiki is a specialist in pediatric surgeon from Tunisia. She was born in 1985. She received her medical degree from the University of Medicine at Sousse, Tunisia. She achieved her surgical residency training periods in Pediatric Surgery departments at University Hospitals in Monastir, Tunis and France.\r\nShe is currently working at the Pediatric surgery department, Sidi Bouzid Hospital, Tunisia. Her hospital activities are mostly concerned with laparoscopic, parietal, urological and digestive surgery. She has published several articles in diffrent journals.",institutionString:"Sidi Bouzid Regional Hospital",institution:null},{id:"229481",title:"Dr.",name:"Erika M.",middleName:"Martins",surname:"de Carvalho",slug:"erika-m.-de-carvalho",fullName:"Erika M. de Carvalho",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/229481/images/6397_n.jpg",biography:null,institutionString:null,institution:{name:"Oswaldo Cruz Foundation",country:{name:"Brazil"}}},{id:"186537",title:"Prof.",name:"Tonay",middleName:null,surname:"Inceboz",slug:"tonay-inceboz",fullName:"Tonay Inceboz",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/186537/images/system/186537.jfif",biography:"I was graduated from Ege University of Medical Faculty (Turkey) in 1988 and completed his Med. PhD degree in Medical Parasitology at the same university. I became an Associate Professor in 2008 and Professor in 2014. I am currently working as a Professor at the Department of Medical Parasitology at Dokuz Eylul University, Izmir, Turkey.\n\nI have given many lectures, presentations in different academic meetings. I have more than 60 articles in peer-reviewed journals, 18 book chapters, 1 book editorship.\n\nMy research interests are Echinococcus granulosus, Echinococcus multilocularis (diagnosis, life cycle, in vitro and in vivo cultivation), and Trichomonas vaginalis (diagnosis, PCR, and in vitro cultivation).",institutionString:"Dokuz Eylül University",institution:{name:"Dokuz Eylül University",country:{name:"Turkey"}}},{id:"71812",title:"Prof.",name:"Hanem Fathy",middleName:"Fathy",surname:"Khater",slug:"hanem-fathy-khater",fullName:"Hanem Fathy Khater",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/71812/images/1167_n.jpg",biography:"Prof. Khater is a Professor of Parasitology at Benha University, Egypt. She studied for her doctoral degree, at the Department of Entomology, College of Agriculture, Food and Natural Resources, University of Missouri, Columbia, USA. She has completed her Ph.D. degrees in Parasitology in Egypt, from where she got the award for “the best scientific Ph.D. dissertation”. She worked at the School of Biological Sciences, Bristol, England, the UK in controlling insects of medical and veterinary importance as a grant from Newton Mosharafa, the British Council. Her research is focused on searching of pesticides against mosquitoes, house flies, lice, green bottle fly, camel nasal botfly, soft and hard ticks, mites, and the diamondback moth as well as control of several parasites using safe and natural materials to avoid drug resistances and environmental contamination.",institutionString:null,institution:{name:"Banha University",country:{name:"Egypt"}}},{id:"99780",title:"Prof.",name:"Omolade",middleName:"Olayinka",surname:"Okwa",slug:"omolade-okwa",fullName:"Omolade Okwa",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/99780/images/system/99780.jpg",biography:"Omolade Olayinka Okwa is presently a Professor of Parasitology at Lagos State University, Nigeria. She has a PhD in Parasitology (1997), an MSc in Cellular Parasitology (1992), and a BSc (Hons) Zoology (1990) all from the University of Ibadan, Nigeria. She teaches parasitology at the undergraduate and postgraduate levels. She was a recipient of a Commonwealth fellowship supported by British Council tenable at the Centre for Entomology and Parasitology (CAEP), Keele University, United Kingdom between 2004 and 2005. She was awarded an Honorary Visiting Research Fellow at the same university from 2005 to 2007. \nShe has been an external examiner to the Department of Veterinary Microbiology and Parasitology, University of Ibadan, MSc programme between 2010 and 2012. She is a member of the Nigerian Society of Experimental Biology (NISEB), Parasitology and Public Health Society of Nigeria (PPSN), Science Association of Nigeria (SAN), Zoological Society of Nigeria (ZSN), and is Vice Chairperson of the Organisation of Women in Science (OWSG), LASU chapter. She served as Head of Department of Zoology and Environmental Biology, Lagos State University from 2007 to 2010 and 2014 to 2016. She is a reviewer for several local and international journals such as Unilag Journal of Science, Libyan Journal of Medicine, Journal of Medicine and Medical Sciences, and Annual Research and Review in Science. \nShe has authored 45 scientific research publications in local and international journals, 8 scientific reviews, 4 books, and 3 book chapters, which includes the books “Malaria Parasites” and “Malaria” which are IntechOpen access publications.",institutionString:"Lagos State University",institution:{name:"Lagos State University",country:{name:"Nigeria"}}},{id:"273100",title:"Dr.",name:"Vijay",middleName:null,surname:"Gayam",slug:"vijay-gayam",fullName:"Vijay Gayam",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/273100/images/system/273100.jpeg",biography:"Dr. Vijay Bhaskar Reddy Gayam is currently practicing as an internist at Interfaith Medical Center in Brooklyn, New York, USA. He is also a Clinical Assistant Professor at the SUNY Downstate University Hospital and Adjunct Professor of Medicine at the American University of Antigua. He is a holder of an M.B.B.S. degree bestowed to him by Osmania Medical College and received his M.D. at Interfaith Medical Center. His career goals thus far have heavily focused on direct patient care, medical education, and clinical research. He currently serves in two leadership capacities; Assistant Program Director of Medicine at Interfaith Medical Center and as a Councilor for the American\r\nFederation for Medical Research. As a true academician and researcher, he has more than 50 papers indexed in international peer-reviewed journals. He has also presented numerous papers in multiple national and international scientific conferences. His areas of research interest include general internal medicine, gastroenterology and hepatology. He serves as an editor, editorial board member and reviewer for multiple international journals. His research on Hepatitis C has been very successful and has led to multiple research awards, including the 'Equity in Prevention and Treatment Award” from the New York Department of Health Viral Hepatitis Symposium (2018) and the 'Presidential Poster Award” awarded to him by the American College of Gastroenterology (2018). He was also awarded 'Outstanding Clinician in General Medicine” by Venus International Foundation for his extensive research expertise and services, perform over and above the standard expected in the advancement of healthcare, patient safety and quality of care.",institutionString:"Interfaith Medical Center",institution:{name:"Interfaith Medical Center",country:{name:"United States of America"}}},{id:"93517",title:"Dr.",name:"Clement",middleName:"Adebajo",surname:"Meseko",slug:"clement-meseko",fullName:"Clement Meseko",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/93517/images/system/93517.jpg",biography:"Dr. Clement Meseko obtained DVM and PhD degree in Veterinary Medicine and Virology respectively. He has worked for over 20 years in both private and public sectors including the academia, contributing to knowledge and control of infectious disease. Through the application of epidemiological skill, classical and molecular virological skills, he investigates viruses of economic and public health importance for the mitigation of the negative impact on people, animal and the environment in the context of Onehealth. \r\nDr. Meseko’s field experience on animal and zoonotic diseases and pathogen dynamics at the human-animal interface over the years shaped his carrier in research and scientific inquiries. He has been part of the investigation of Highly Pathogenic Avian Influenza incursions in sub Saharan Africa and monitors swine Influenza (Pandemic influenza Virus) agro-ecology and potential for interspecies transmission. He has authored and reviewed a number of journal articles and book chapters.",institutionString:"National Veterinary Research Institute",institution:{name:"National Veterinary Research Institute",country:{name:"Nigeria"}}},{id:"158026",title:"Prof.",name:"Shailendra K.",middleName:null,surname:"Saxena",slug:"shailendra-k.-saxena",fullName:"Shailendra K. Saxena",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRET3QAO/Profile_Picture_2022-05-10T10:10:26.jpeg",biography:"Professor Dr. Shailendra K. Saxena is a vice dean and professor at King George's Medical University, Lucknow, India. His research interests involve understanding the molecular mechanisms of host defense during human viral infections and developing new predictive, preventive, and therapeutic strategies for them using Japanese encephalitis virus (JEV), HIV, and emerging viruses as a model via stem cell and cell culture technologies. His research work has been published in various high-impact factor journals (Science, PNAS, Nature Medicine) with a high number of citations. He has received many awards and honors in India and abroad including various Young Scientist Awards, BBSRC India Partnering Award, and Dr. JC Bose National Award of Department of Biotechnology, Min. of Science and Technology, Govt. of India. Dr. Saxena is a fellow of various international societies/academies including the Royal College of Pathologists, United Kingdom; Royal Society of Medicine, London; Royal Society of Biology, United Kingdom; Royal Society of Chemistry, London; and Academy of Translational Medicine Professionals, Austria. He was named a Global Leader in Science by The Scientist. He is also an international opinion leader/expert in vaccination for Japanese encephalitis by IPIC (UK).",institutionString:"King George's Medical University",institution:{name:"King George's Medical University",country:{name:"India"}}},{id:"94928",title:"Dr.",name:"Takuo",middleName:null,surname:"Mizukami",slug:"takuo-mizukami",fullName:"Takuo Mizukami",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/94928/images/6402_n.jpg",biography:null,institutionString:null,institution:{name:"National Institute of Infectious Diseases",country:{name:"Japan"}}},{id:"233433",title:"Dr.",name:"Yulia",middleName:null,surname:"Desheva",slug:"yulia-desheva",fullName:"Yulia Desheva",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/233433/images/system/233433.png",biography:"Dr. Yulia Desheva is a leading researcher at the Institute of Experimental Medicine, St. Petersburg, Russia. She is a professor in the Stomatology Faculty, St. Petersburg State University. She has expertise in the development and evaluation of a wide range of live mucosal vaccines against influenza and bacterial complications. Her research interests include immunity against influenza and COVID-19 and the development of immunization schemes for high-risk individuals.",institutionString:'Federal State Budgetary Scientific Institution "Institute of Experimental Medicine"',institution:null},{id:"238958",title:"Mr.",name:"Atamjit",middleName:null,surname:"Singh",slug:"atamjit-singh",fullName:"Atamjit Singh",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/238958/images/6575_n.jpg",biography:null,institutionString:null,institution:null},{id:"252058",title:"M.Sc.",name:"Juan",middleName:null,surname:"Sulca",slug:"juan-sulca",fullName:"Juan Sulca",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/252058/images/12834_n.jpg",biography:null,institutionString:null,institution:null},{id:"191392",title:"Dr.",name:"Marimuthu",middleName:null,surname:"Govindarajan",slug:"marimuthu-govindarajan",fullName:"Marimuthu Govindarajan",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/191392/images/5828_n.jpg",biography:"Dr. M. Govindarajan completed his BSc degree in Zoology at Government Arts College (Autonomous), Kumbakonam, and MSc, MPhil, and PhD degrees at Annamalai University, Annamalai Nagar, Tamil Nadu, India. He is serving as an assistant professor at the Department of Zoology, Annamalai University. His research interests include isolation, identification, and characterization of biologically active molecules from plants and microbes. He has identified more than 20 pure compounds with high mosquitocidal activity and also conducted high-quality research on photochemistry and nanosynthesis. He has published more than 150 studies in journals with impact factor and 2 books in Lambert Academic Publishing, Germany. He serves as an editorial board member in various national and international scientific journals.",institutionString:null,institution:null},{id:"274660",title:"Dr.",name:"Damodar",middleName:null,surname:"Paudel",slug:"damodar-paudel",fullName:"Damodar Paudel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/274660/images/8176_n.jpg",biography:"I am DrDamodar Paudel,currently working as consultant Physician in Nepal police Hospital.",institutionString:null,institution:null},{id:"241562",title:"Dr.",name:"Melvin",middleName:null,surname:"Sanicas",slug:"melvin-sanicas",fullName:"Melvin Sanicas",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/241562/images/6699_n.jpg",biography:null,institutionString:null,institution:null},{id:"117248",title:"Dr.",name:"Andrew",middleName:null,surname:"Macnab",slug:"andrew-macnab",fullName:"Andrew Macnab",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"University of British Columbia",country:{name:"Canada"}}},{id:"322007",title:"Dr.",name:"Maria Elizbeth",middleName:null,surname:"Alvarez-Sánchez",slug:"maria-elizbeth-alvarez-sanchez",fullName:"Maria Elizbeth Alvarez-Sánchez",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"Universidad Autónoma de la Ciudad de México",country:{name:"Mexico"}}},{id:"337443",title:"Dr.",name:"Juan",middleName:null,surname:"A. Gonzalez-Sanchez",slug:"juan-a.-gonzalez-sanchez",fullName:"Juan A. Gonzalez-Sanchez",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"University of Puerto Rico System",country:{name:"United States of America"}}},{id:"337446",title:"Dr.",name:"Maria",middleName:null,surname:"Zavala-Colon",slug:"maria-zavala-colon",fullName:"Maria Zavala-Colon",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"University of Puerto Rico, Medical Sciences Campus",country:{name:"United States of America"}}}]}},subseries:{item:{id:"8",type:"subseries",title:"Bioinspired Technology and Biomechanics",keywords:"Bioinspired Systems, Biomechanics, Assistive Technology, Rehabilitation",scope:'Bioinspired technologies take advantage of understanding the actual biological system to provide solutions to problems in several areas. Recently, bioinspired systems have been successfully employing biomechanics to develop and improve assistive technology and rehabilitation devices. The research topic "Bioinspired Technology and Biomechanics" welcomes studies reporting recent advances in bioinspired technologies that contribute to individuals\' health, inclusion, and rehabilitation. Possible contributions can address (but are not limited to) the following research topics: Bioinspired design and control of exoskeletons, orthoses, and prostheses; Experimental evaluation of the effect of assistive devices (e.g., influence on gait, balance, and neuromuscular system); Bioinspired technologies for rehabilitation, including clinical studies reporting evaluations; Application of neuromuscular and biomechanical models to the development of bioinspired technology.',coverUrl:"https://cdn.intechopen.com/series_topics/covers/8.jpg",hasOnlineFirst:!0,hasPublishedBooks:!0,annualVolume:11404,editor:{id:"144937",title:"Prof.",name:"Adriano",middleName:"De Oliveira",surname:"Andrade",slug:"adriano-andrade",fullName:"Adriano Andrade",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRC8QQAW/Profile_Picture_1625219101815",biography:"Dr. Adriano de Oliveira Andrade graduated in Electrical Engineering at the Federal University of Goiás (Brazil) in 1997. He received his MSc and PhD in Biomedical Engineering respectively from the Federal University of Uberlândia (UFU, Brazil) in 2000 and from the University of Reading (UK) in 2005. He completed a one-year Post-Doctoral Fellowship awarded by the DFAIT (Foreign Affairs and International Trade Canada) at the Institute of Biomedical Engineering of the University of New Brunswick (Canada) in 2010. Currently, he is Professor in the Faculty of Electrical Engineering (UFU). He has authored and co-authored more than 200 peer-reviewed publications in Biomedical Engineering. He has been a researcher of The National Council for Scientific and Technological Development (CNPq-Brazil) since 2009. He has served as an ad-hoc consultant for CNPq, CAPES (Coordination for the Improvement of Higher Education Personnel), FINEP (Brazilian Innovation Agency), and other funding bodies on several occasions. He was the Secretary of the Brazilian Society of Biomedical Engineering (SBEB) from 2015 to 2016, President of SBEB (2017-2018) and Vice-President of SBEB (2019-2020). He was the head of the undergraduate program in Biomedical Engineering of the Federal University of Uberlândia (2015 - June/2019) and the head of the Centre for Innovation and Technology Assessment in Health (NIATS/UFU) since 2010. He is the head of the Postgraduate Program in Biomedical Engineering (UFU, July/2019 - to date). He was the secretary of the Parkinson's Disease Association of Uberlândia (2018-2019). Dr. Andrade's primary area of research is focused towards getting information from the neuromuscular system to understand its strategies of organization, adaptation and controlling in the context of motor neuron diseases. His research interests include Biomedical Signal Processing and Modelling, Assistive Technology, Rehabilitation Engineering, Neuroengineering and Parkinson's Disease.",institutionString:null,institution:{name:"Federal University of Uberlândia",institutionURL:null,country:{name:"Brazil"}}},editorTwo:null,editorThree:null,series:{id:"7",title:"Biomedical Engineering",doi:"10.5772/intechopen.71985",issn:"2631-5343"},editorialBoard:[{id:"49517",title:"Prof.",name:"Hitoshi",middleName:null,surname:"Tsunashima",slug:"hitoshi-tsunashima",fullName:"Hitoshi Tsunashima",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYTP4QAO/Profile_Picture_1625819726528",institutionString:null,institution:{name:"Nihon University",institutionURL:null,country:{name:"Japan"}}},{id:"425354",title:"Dr.",name:"Marcus",middleName:"Fraga",surname:"Vieira",slug:"marcus-vieira",fullName:"Marcus Vieira",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y00003BJSgIQAX/Profile_Picture_1627904687309",institutionString:null,institution:{name:"Universidade Federal de Goiás",institutionURL:null,country:{name:"Brazil"}}},{id:"196746",title:"Dr.",name:"Ramana",middleName:null,surname:"Vinjamuri",slug:"ramana-vinjamuri",fullName:"Ramana Vinjamuri",profilePictureURL:"https://mts.intechopen.com/storage/users/196746/images/system/196746.jpeg",institutionString:"University of Maryland, Baltimore County",institution:{name:"University of Maryland, Baltimore County",institutionURL:null,country:{name:"United States of America"}}}]},onlineFirstChapters:{paginationCount:20,paginationItems:[{id:"82800",title:"Repurposing Drugs as Potential Therapeutics for the SARS-Cov-2 Viral Infection: Automatizing a Blind Molecular Docking High-throughput Pipeline",doi:"10.5772/intechopen.105792",signatures:"Aldo Herrera-Rodulfo, Mariana Andrade-Medina and Mauricio Carrillo-Tripp",slug:"repurposing-drugs-as-potential-therapeutics-for-the-sars-cov-2-viral-infection-automatizing-a-blind-",totalDownloads:10,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Molecular Docking - Recent Advances",coverURL:"https://cdn.intechopen.com/books/images_new/11451.jpg",subseries:{id:"7",title:"Bioinformatics and Medical Informatics"}}},{id:"82582",title:"Protecting Bioelectric Signals from Electromagnetic Interference in a Wireless World",doi:"10.5772/intechopen.105951",signatures:"David Marcarian",slug:"protecting-bioelectric-signals-from-electromagnetic-interference-in-a-wireless-world",totalDownloads:4,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Biosignal Processing",coverURL:"https://cdn.intechopen.com/books/images_new/11153.jpg",subseries:{id:"7",title:"Bioinformatics and Medical Informatics"}}},{id:"82586",title:"Fundamentals of Molecular Docking and Comparative Analysis of Protein–Small-Molecule Docking Approaches",doi:"10.5772/intechopen.105815",signatures:"Maden Sefika Feyza, Sezer Selin and Acuner Saliha Ece",slug:"fundamentals-of-molecular-docking-and-comparative-analysis-of-protein-small-molecule-docking-approac",totalDownloads:29,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Molecular Docking - Recent Advances",coverURL:"https://cdn.intechopen.com/books/images_new/11451.jpg",subseries:{id:"7",title:"Bioinformatics and Medical Informatics"}}},{id:"82184",title:"Biological Sensing Using Infrared SPR Devices Based on ZnO",doi:"10.5772/intechopen.104562",signatures:"Hiroaki Matsui",slug:"biological-sensing-using-infrared-spr-devices-based-on-zno",totalDownloads:10,totalCrossrefCites:0,totalDimensionsCites:0,authors:[{name:"Hiroaki",surname:"Matsui"}],book:{title:"Biosignal Processing",coverURL:"https://cdn.intechopen.com/books/images_new/11153.jpg",subseries:{id:"7",title:"Bioinformatics and Medical Informatics"}}},{id:"82122",title:"Recent Advances in Biosensing in Tissue Engineering and Regenerative Medicine",doi:"10.5772/intechopen.104922",signatures:"Alma T. 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