Histamine liberator food.
\r\n\tThe fifth topic is “complications and drug side effects in the treatment of pigmentation disorders”. These include drug allergies, hyper- and hypopigmentation, persistent skin depigmentation, scars, skin burns, and the potential for skin cancer and skin lymphoma. The last topic is called “coping and support along with skin pigmentation diseases”. Increase the quality of life, psychotherapy, team therapy, and asking for understanding and support from family members.
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Classical programming and data management will not be able to cope with increased level of complexity. Computing platforms are required to operate at a faster speed to carry out more and more transactions per second. Information integration plays a fundamental role to achieve a more efficient data retrieval and management system. Discovery of information and establishing dependencies among the components of the system is a cumbersome task.
\n\t\t\tAs we progress into the hyper information space realm, automation systems will become more and more involved in the information processing cycles. Automation processes are going to be another node in a global information infrastructure network of resources and, therefore, will need to be more intelligent, highly adaptable, discoverable and information friendly systems.
\n\t\t\tWe envision that in order to fulfill a seamless integration of the distinct levels of the enterprise, we will need to move away from the typical centralized server approach into a more fine-granular domains with software components acting as independent intelligent agents (Wooldridge and Jennings, 1995), (Brooks, 1986)(\n\t\t\t\tShen et al 2001\n\t\t\t\t), (Christensen, 1994), (Mařík et al., 2001).
\n\t\t\tControl system level agent technology is a powerful environment that fosters cooperation of control level applications (agents) to solve a set of complex problems not easily solved with a standard control system programming such as ladder code, function blocks, etc. alone. Rockwell Automation had successfully demonstrated the power and ease of solving complex problems in industrial automation environment using control level agent technology (Maturana et al., 2008), (Gianetti et al., 2006), (Discenzo et al., 2001), (Staron et al., 2004), (Tichý et al., 2002), (Maturana et al., 2004).
\n\t\t\tThe next logical step in the agent technology evolution is to extend the agent technology capability to the enterprise level. There are many benefits in spanning the agent capability beyond the control system level. The control system environment is not a resource rich environment and some complex large scale applications that require a great deal of computing power may not fit in it. The enterprise level agents can take advantage of the virtually unlimited resources at the enterprise level.
\n\t\t\tControl systems are generally designed for the “factory floor” environment and integration of the “factory floor” functionality with the rest of the computing environment had always been a challenging task. Therefore, the creation and deployment of the Enterprise level agents that become full members of the control level agent community is a valuable addition to the agent-based control system technology.
\n\t\t\tGiven this additional autonomy at the equipment level, the physical system effectively becomes more survivable and requires less maintenance. The equipment can operate autonomously independent of the rest of the system if a critical event interrupts communications. This property of continuing operation without central control is a must in industrial and military environments.
\n\t\t\tFor example, the Office of Naval Research (ONR) and the US Navy were looking for a highly survivable robust control environment for the chilled water distribution application, a critical ship system (Maturana et al., 2000). One of the major requirements was that the chilled water system continues to operate even after a major disturbance such as an explosion or a missile strike somewhere on the ship occurs. Several approaches were investigated and a distributed intelligent multi-agent system was selected. The main goal was to have a fully distributed system with no single point of failure.
\n\t\t\tAgents were deployed in the automation controllers. These agents consisted of both reasoning and real-time control and were distributed among 23 controllers which were physically located near the controlled hardware. The reasoning part of the agents inside the controllers negotiated the control actions to accomplish specific missions and configurations.
\n\t\t\t\n\t\t\t\tFigure 1 shows the Navy’s land-based water cooling system testbed that we prepared with controller enclosures to download the agents. The testbed included real plumbing, controls and communications, and electrical components that resembled the real ship systems but in a reduced scale. A typical control plan consisted of water routes to transport cold water from the cooling units into the heat loads (computers, radars, weaponry, etc.) and water routes to move hot water from the loads back to the coolers.
\n\t\t\tOffice of Naval Research chilled water land-based simulator
The agents evaluated a number of conditions that affected the physical device in order to create a feasible water route. Sometimes lines were obstructed to simulate missing capability, but the agents evaluate adapted their decisions to discover feasible alternatives without following prescribed configurations or pre built tables.
\n\t\t\tThe land based simulator helped in understanding how to program intelligent software in embedded control devices. The agent offered a new dimension in adaptable control systems. However, this capability was limited to device level only. To date we confront a different set of requirements that involve a multi tier system architecture in which we are being asked to combine requirements and capabilities from different layer of the enterprise. Our intention is to explore and demonstrate the architecture of the business-to-control layers and how these will be constructed and interfaced to the different tiers of the manufacturing and information sysems, the industrial environment.
\n\t\tAn important objective of the distributed artificial intelligence and cognition research is to provide a foundation to enhance the capabilities of machines and to make machines more useful and intelligent (Nilsson, 1980), (Balasubramanian et al., 2000)(Brennan et al., 2003), (Charniak and Mc Dermott, 1985). Some of the techniques pursued include a suite of Artificial Intelligence (AI) techniques such as expert systems, fuzzy logic, genetic algorithms, reasoning, artificial neural networks, and model-based techniques. Many of the automation successes reported applied biologically inspired architectures (Brooks, 1986), (Christensen, 1994) and techniques to solve well-targeted automation problems such as adaptive control, defect classification, and job scheduling to name a few.
\n\t\t\tThe capabilities which may be provided by intelligent machines may be categorized based on the degree of embedded knowledge with the most capable systems employing real-time goal adjustment, cooperation, pre-emption, and dynamic re-configuration. These capabilities may be effectively integrated in an agent-based system employing intelligent machines in a distributed automation system. This architecture is built on a foundation of a society of locally intelligent cooperating machines. It provides an effective framework for an efficient and very robust automation of complex systems.
\n\t\t\tAn agent-based control solution is built around a set of application rules and behaviors. As shown in Figure 2, an agent solution has a tree-like hierarchal shape in which each branch and sub branch can be made of agent components and attributes. The structure of an agent is made from three main components: (1) Reasoning, (2) Control, and (3) Data Table.
\n\t\t\tAgent architecture
The reasoning part is a software component that conveys the agent’s heuristics. This component defines the behavior of the agent according to the evolution of its internal rules and the interaction with the control level component. There are event-based transactions between the reasoning and the control level components that are defined during the agent programming phase.
\n\t\t\tThe agent initiates reasoning about a particular event based on the arrival of a global message. A global message is an inter-agent communication that conveys requests or just information. The global message is associated with a particular capability of the agent that is specified as part of the agent behavior. Upon arrival of the global message, the agent behavior for an associated capability is fetched for execution. At this point, the options are diverse since the agent behavior can contain multiple steps that require internal actions as well as the initiation of more global messaging that the agent needs to complete its local goals. A goal is a plan that an agent constructs by pulling together local and combined capabilities. The combined capabilities are obtained via negotiation with other agents. Global messages are encoded according to the Foundation for Intelligent Physical Agents (FIPA, 2000) protocols.
\n\t\t\tAnother way to drive the agent behavior is via the planner engine (see Figure 3). The role of the planner is to coordinate the events from the control level with the agent behavior. Again, there are multiple options on how to do this since the control level events can be associated with a variety of steps in the reasoning layer. The extent of these associations is a system designer decision.
\n\t\t\tWe use a distributed control architecture based on automation control devices with extended firmware. The extended firmware allows for the realization of component-level intelligence which converts the device into an intelligent node with negotiation capabilities. The intelligence of the application can now be distributed among multiple controllers as opposed to the traditional control system programming in which the concentration of functionality is more predominant.
\n\t\t\tAgent behavior fetching via the planner
Agents are goal-oriented entities that act autonomously and cooperatively when involved in a problem-solving task. Although an agent is an individualistic entity when pursuing local goals. They organize their individual capabilities around system goals. An agent capability is a description of the type of operations an agent can do. For example, a welding robot agent has a capability to weld specific spots on a structure. On the other hand, a system goal is abstract because there is no explicit declaration of it during the design of the system. A goal can be described as a dynamic social force that pulls agents together to solve a particular task. Thus, a system goal has the following social attributes: (a) System event or need, (b) A first and second level responders, (c) Plan of actions, and (d) Execution.
\n\t\tOne of the key benefits of using agents is their ability to work in a distributed environment. Agents use social skills to overcome challenges of the distributed environment.
\n\t\t\tThe effort to program agents may become a difficult task if there are no well defined boundaries between the functions. However, it is always possible to force an initial partitioning to build a working model. The rule of thumb is to generate agents that encapsulate a physical device such as a valve or water pump; these are well defined devices with clear boundaries. But, as the implementation moves into the reasoning layer, it becomes even more difficult to define the boundaries. For example, the designer has to be prepared to decide the pump agent behavior and the context in which pumps negotiate and what they negotiate for.
\n\t\t\t\tLater we will duscuss the agent wrapper layer. In such a model, control related functions are kept in the control level and encapsulated with a rather simplistic agent. The higher level behaviors can then be modeled in the upper level as business processes that interact with its control counterpart. From a design point of view the latter approach is very appealing since business level processes will count with greater computing resources than the ones provided by the embedded devices. This brings more freedom into the programming of the functions and helps in deciding on performance issues relative to the agent partitioning.
\n\t\t\t\tFrom the agent technology point of view, industrial applications can be designed according to their decision making complexity and size. The decision making complexity of a complex machine has greater magnitude than a simple machine with a reduced number of actuation points and inputs and outputs connections. The other dimension relates to the size of the application which depends on the number of nodes that are needed to model to operations of the manufacturing plant. Thus, it is possible to categorize the control applications according two these axes, i.e., complexity and size. For example, a material handling system such as a distribution hub is made of a large number of conveyor belts. Each conveyor belt is a simple machine but the material handling operation requires a combination of multiple of these simple machines to carry out the transportation of the material. On the opposite side, we find systems with a reduced number of machines but the machines are very sophisticated in terms of configuration setup, inputs, and outputs. Anywhere in the middle we find a variety of applications that fluctuate between the two poles, as shown in Figure 4.
\n\t\t\t\tApplication domain categories are very important in modelling distributed agent control since they frame a better division of functionality. There is a need for establishing rules to design this type of systems. One goal is to highlight one of the most difficult aspects of agent modelling which is the definition of the agent boundaries. Although it is possible to create centralized, monolithic agents to handle all aspects of the manufacturing organization, it is not a recommended option. We will show that in order to bring greater flexibility and effective scalability into the enterprise, it is required to have a separation of the functions into different layers to make the system more distributed.
\n\t\t\t\tApplication domain categories
In the interest of simplicity, we will focus the description of our business-to-control architecture as a two layer interaction. In this description, there is an enterprise level and a control level or enterprise domain and control domain.
\n\t\t\tOne of the properties of the control level agents is the capability to find all the peers and establish communication between them. To accomplish agent discovery social knowledge must be composed and stored in directory services. The directory services organize social knowledge using one of the techniques above to propagate agent information throughout the different layers. The social knowledge information can be propagated in an automated fashion or on demand. But, these directory actions take place naturally as part of the directory service functions.
\n\t\t\tThe Enterprise level agents inherit the directory service information from the control level agents. All agents that register their social information with the control level directory services are also known in the enterprise level via social knowledge propagation policies, as shown in the Figure 5. These directory services contain agent properties such as: capabilities, functions, and input and output parameters, etc. This information is required for an application at the Enterprise level to utilize the agent’s services in the control level. The LDAP server is fed with this agent information from the Enterprise level DS via an LDAP proxy (LDAP Enterprise agent) at the initialization phase.
\n\t\t\tThe LDAP directory server was chosen due to its flexibility and accessibility. Any application on the network can access LDAP server, provided that the user or application, an LDAP client, has the proper credentials. LDAP is a standard protocol so every LDAP client adheres to the same standard that is portable and relatively easy to implement.
\n\t\t\tIn this work, we moved the system integration in the direction of a universal model. We are interested in identifying the software components and terminology for the interfaces and communication between the enterprise level and the manufacturing floor. In our business-to-control architecture, we show an initial set of mechanisms that help in connecting the processes without having to be too specific about the information exchange details.
\n\t\t\tDirectory Service layers
To this end, the agent infrastructure accommodates a proxy environment component that can be dynamically created to bridge the two layers. The proxy environment is a wrapper that knows how to move information across the layers, thereby supporting translation and interpretation of the information.
\n\t\tSection 3 and 4 describe the technical requirements and implementation of the enterprise level agents and how the enterprise and control levels can be integrated. This section will show some practical applications of this integrated framework and specific examples will be provided to illustrate the benefits of the interacting layers. We will introduce a water distribution system as an example describing integration of control and enterprise level agents.
\n\t\t\tIn the water distribution system, the control level agents can solve the problem without the “help” of enterprise level agents. But the introduction of the enterprise level agents can increase efficiency and reduce cost of the control level agent system alone. Since control-level agents have limited information about the system, their decision making scope lacks the desired level of optimality. Then, to compensate for the lack of knowledge, the control level agents have been programmed with cooperation protocols to allow them to explore the universe of discourse. Although the cooperative search for solutions may put the agents closer to a near optimum equilibrium, there is still the problem of partial knowledge and localized observation. Thus, the use of enterprise level agents is justified from the point of view of augmented system-level knowledge. Since an enterprise level agent has access to unlimited resources and, services, and databases, it is a much better location to program more exhaustive search nets to support a more global decision making process which can then be coordinated with local level agents.
\n\t\t\tFurthermore, the enterprise level agents can be launched to report the status of any set of control level agents and all the enterprise level agents can be engaged and controlled from a web browser, so the system status can be remotely obtained at any time from anywhere.
\n\t\t\tAnother benefit of enterprise level agents is the fact that they can be wrapped in web services or other enterprise applications. These web applications can be orchestrated into more complex functions that can run in the background. The orchestrated services then become business level processes that can be coordinated and deployed by a Business Process Execution Language (BPEL) engine (BPEL, 2002). BPEL offers a rich set of features to coordinate business process into an integrated process that oversees the combined activity for all involve processes, as shown in Figure 7. Concurrency is a natural aspect of the BPEL orchestration permitting processes to execute and communicate in parallel. In our architecture, we can bring the BPEL activity into the agent world as another agent capability since we are able to encapsulate the BPEL process as another agent behavior. BPEL orchestration engines can then be brought into the decision making loops and knowledge exploration in parallel to support the high and low-level agents.
\n\t\t\t\tOne of these orchestrated applications can be system status monitoring and fault notification. The process status and fault identification can be displayed in a web browser as well. This reduces the requirements on the number of personnel assigned to the role of monitoring the system’s status. Monitoring can take place anywhere with Internet connectivity and this has a great potential to reduce costly infrastructure and software development.
\n\t\t\t\tBPEL orchestration example
The Enterprise level environment has virtually unlimited resources. Several instances of vital redundant agents can be launched and deployed at the enterprise level on various machines. A failure of a machine hosting an agent environment will not impact the system integrity as a whole. The agent system will automatically reconfigure itself and utilize services of available agents. The BPEL orchestration task can be programmed to carry out launching a new instance of an agent if the original instance does not respond or reports failure. The options are unlimited.
\n\t\t\tThe ability to interconnect the control and the enterprise levels via the business-to-control infrastructure will allow for a consideration of a new breed of control scenarios. We looked over different aspects of the water distribution domain in which we could demonstrate enterprise and control level agents (Giannetti et al., 2005). We found that in the domestic water distribution systems there is a mix of requirements and decision-making scenarios that map well to the two-level interoperability.
\n\t\t\tIn a domestic water distribution system, there are quality and process requirements that cannot be completely contained in the automation controllers (aka, Programmable Logic Controller—PLC) (CIP, 2001)(IEC, 2001). For example, process-level requirements include water availability, chlorination ratios, residual ratios, etc. Higher level requirements include scheduling of water pumping to accommodate low-cost electricity pricing intervals or seasonal conditions, etc. These requirements shape the design of the agent system in terms of system partitioning and distribution of capabilities. Figure 8 shows the type of agents (green bubbles) that are used in a water distribution system model: pump station and pump, tank, utility company, city water. Each of these agents has the knowledge about how to operate a specific piece of equipment but they also depend on business level knowledge to make high value decisions. In our proposed solution, we include enterprise level services to contain the business level knowledge: utility company and city water. These services provide access to system’s historical data (demand, consumption patterns, and electricity pricing policies).
\n\t\t\tAgent-based water system
The combined actions of the two levels allows for a complex decision making system. For example, a water tank agent will see the need for receiving additional water (
Another scenario also takes place between the water system and the utility company services, as shown in Figure 9. After the water tank agents calculate their future demand, they emit a request for pumping water to the pumping station agents. The pumping station agents need to carry out process level calculations to estimate the amount of power that is going to be needed to provide the water. This process-level evaluation takes place in between the pumping station and the pumps since this information gathering requires health assessment information that is known by the pumping devices themselves.
\n\t\t\tThe pump stations then contacts the utility company services with a request for low cost electricity. The utility company services have capacity to do the calculations by contacting the pricing interval calculators and databases and perhaps humans to estimate a final price for the electricity and a valid time interval for the offering. The utility company service needs to interact with seasonal and historical databases to estimate the prices. This example describes a complex interaction among services and agents. In a classical framework without the considerations that have showed in this article, programming the interactions would be expensive and cumbersome.
\n\t\t\tComplex electricity pricing negotiation
The description above illustrates two representative scenarios that may occur in an agent-based water distribution system between the enterprise and the control levels. The role of the BPEL orchestration is very fundamental in the coordination of the different services and the selection of their responses. There will be multiple transactions going back and forth in multiple directions that need to be coordinated and synchronized in order to maintain the stability of the system. For example, the BPEL process that orchestrates the interaction between the city water agent and the utility companies needs to handle one-to-many transactions in one direction (city water to utility companies) and many-to-one transactions in the opposite direction. In the transition between communications, BPEL needs to listen for the responses while applying system-level rules to decide on the most suitable responses to be emitted to the agents. The scenarios can become more sophisticated and complicated. But the intention of this work is to show how to assemble the architecture for realizing the future vision of autonomous control systems.
\n\t\tThe integration of the enterprise level agents and control level agents will make systems more robust and operate at lower cost. However, the right balance needs to be maintained between the control and the enterprise functionalities. Systems designers will have to make sure the loss of enterprise capability will not compromise the fundamental control level ability to carry out control tasks autonomously.
\n\t\tThe interest in making this chapter was to explain the pathology of chronic urticaria as prevalent and its high morbidity.
We often see this problem in our primary care consultations and emergency services, so we consider its important to make a chapter about urticaria.
The current version of the EAACI/GA2LEN/EDF/WAO urticaria guideline from 2018 contains new aspects about diagnosis and treatment.
At the end of the chapter, we show a series of cases treated in our practice (observed in a Juan Ramon Jimenez’s dermatology room in Huelva, Spain), exposing results obtained with the different forms of treatment (Figure 1).
Chronic urticaria.
Urticaria is a common process. Although the true incidence is not known, it is believed that between 15 and 25% of the population may suffer at some point in his life. Acute urticaria has a prevalence of 20% and the chronic form 0.5–1% [1]. Age, race, sex, occupation, geographical region, and the season of the year may be implicated in urticaria and angioedema. The majority of acute episodes are due to adverse reactions to medications or food or, in children, to viral diseases.
Spontaneous chronic urticaria represents about 70% of all chronic hives and may persist for several years. Patients with chronic urticaria often describe a decrease in the quality of life because of itching and may have alterations of sleep, fatigue, social isolation, or emotional disorders (Figures 2–4).
Epidemiology of chronic urticaria in United States.
Epidemiology of chronic urticaria in Australia.
Prevalence of chronic urticaria.
Urticaria is a disease that affects the skin and mucosa, characterized by the presence of hives. It is a localized intracutaneous edema that circled an area of redness (erythema), which is typically itchy. Individual hives can persist from 30 minutes to 36 hours and can measure from only 1 millimeter up to 15–20 cm in diameter, named giant hives [2]. Increased dilation and permeability of blood vessels that characterize the hives are present in the superficial dermis and undertake the venous plexus located there (Figure 5). It is rare and it may occur with concomitant angioedema.
Urticaria. Picture with histological findings.
Another similar entity is angioedema, with a similar mechanism as urticaria [3], but the pathology is located in the deep dermis and subcutaneous tissue, and swelling is the main manifestation. The skin may be normal or erythematous. There is less itching, but it can cause pain or burning sensation. The mouth, lips, eyes, throat, feet, and hands are most commonly affected (Figures 6 and 7). When angioedema affects the throat, it can be life-threatening, because there is interference in breathing. It is caused by an allergic reaction, sometimes by a hereditary condition (hereditary angioedema), but normally we do not know the cause [3].
Angioedema.
Angioedema.
Foods that require a ripening process to achieve a better taste are presumed to have a high histamine content. In the same way as foods that are made during fermentation. These include de following [4] (Table 1).
Yogurt | Soured cream |
---|---|
Buttermilk | Quark |
Cottage cheese | Alcohol |
Hard cheeses, cheddar | Vinegar |
Aged cheeses, brie | Sauerkraut |
Histamine liberator food.
The Spanish society of diamine oxidase (DAO) states on their website that the following food histamine liberators:
Alcohol, citrus fruits, strawberries, pineapple, kiwi, tomato sauce, seafood, chocolate, fish, mushrooms, pig, cereals, and egg white.
Some food additives such as glutamate, benzoate, several colorants (yellow E-102 and E-110, E-124, amaranth E-123), sulfites, and nitrites can release endogenous histamine.
The department for dermatology in Bonn’s paper lists the following foods as being capable of releasing endogenous histamine (Table 2).
Citrus fruit | Chocolate |
---|---|
Papaya | Fish |
Strawberries | Crustaceans |
Pineapple | Pork |
Nuts | Egg white |
Peanuts | Additives |
Tomatoes | Liquorice |
Spinach | Spices |
Foods as being capable of releasing endogenous histamine.
The mast cell is the main effector cell in urticaria and angioedema. Cutaneous mast cells attach to fibronectin and laminin through the integrin beta1 of Very Late Antigen (VLA), VLA-3, VLA-4, and VLA-5 activation and vitronectin through alfa1 and beta3 integrin [5].
Once activated, the mast cell releases granules containing histamine and other mediators of inflammation such as platelet activating factor (PAF) from, TNF alpha, IL-3, IL-4, IL-5, IL-6, IL-8, IL-13, GM-CSF, PGD-2, and leukotrienes (LTC4, LTD4, LTEA). Histamine, TNF alpha, and IL-8 also stimulate endothelial adhesion molecules that favors the migration of eosinophils, monocytes, and neutrophils from the bloodstream to the skin.
Histamine is an amine vasoactive located in granules of mast cells [5], basophils, and platelets. Its effects on the skin are mediated through histamine H1 and H2 receptors. H1 receptors mediate urticaria vasodilation, increased vascular permeability, and sensory nerve stimulation. Sensory nerve stimulation determines the release of neuropeptides such as substance P, peptide vasoactive intestinal (VIP), and somatostatin, which in turn induce the mast cell activation and increase in histamine.
The vascular endothelium expressed a significant number of H2 receptors, so the vascular response in the UC is an immunomodulatory effect, to increase the synthesis of pro-inflammatory cytokines such as IL-1 and IL-6 of monocytes and IL-6 and IL-8 cell endothelial. In addition to histamine, other soluble factors synthesized by mast cells contribute to the increase of vascular dilation and permeability; favor chemotaxis, cell activation of leukocyte, and endothelial cells; and induce stimulation sensory. These are the cytokines, chemokines, and neuropeptides and arachidonic acid metabolites.
The degranulation is attributed to immunological causes (autoimmune, IgE-dependent, immune complexes, complement-dependent), not immune (pseudoallergies, agents release by mast cells) and idiopathic. The path of the synthesis of prostaglandins and leukotrienes, hours later the mast cell activation, occurs in the synthesis of leukotrienes and prostaglandins from arachidonic acid via two-way enzymatic metabolism: the cyclooxygenase path and the lipoxygenase pathways.
Studies have shown that LTB4 has a potent chemotactic activity, which is produced by mast cells in the early and selective recruitment of leukocytes. At chronic urticaria (CU), these mediators appear to be the most important in the chronicity of the disease. There are no immune reactions (pseudoallergics); the mechanisms are not clear but may compromise the metabolism of arachidonic acid, prostaglandins, and leukotrienes [2] (Figure 8).
Physiopathology of urticaria. Note like that the mast cells are the principal cells implicated.
According to the time evolution, urticaria can be divided into:
Acute urticaria: less than 6 weeks.
Chronic urticaria*: lesions appear for more than 6 weeks [6].
Recurrent urticaria: outbreaks recur over time, but its duration is limited. Episodes of hives last less than asymptomatic intervals.
* Chronic urticaria is divided into two:
Spontaneous chronic urticaria: spontaneous emergence of hives, angioedema, or both for longer than 6 weeks, due to a known or unknown cause.
Inducible urticaria: physical urticarial (This hives occur at the site of the stimulation)l, cholinergic, aquagenic and contact urticarias (Figure 9).
Acute and chronic urticaria.
Urticaria typically presents well circumscribed wheals (polimorphyc, serpenginous or round), with intensely pruritic for less than 24 hours of evolution. Wheals can be generalized, including arms, legs, face. Urticaria +/− angioedema (primarily in the face), can be acute (with an evolution of less than 6 weeks), or chronic (greater than 6 weeks [7] (Figures 10–15).
Generalities of urticaria.
Dermatological manifestations of urticaria. Note the typical hives.
Dermatological manifestations of urticaria. Note the erythema.
Linear hives made by compression.
Coalescing urticarial papules.
Urticaria and angioedema.
For diagnosis we have several tools, among which the most useful, simple, and cost-effective is the clinical history, but we can ask for additional tests in the case of diagnostic doubt or suspicion of systemic disease [8].
A detailed clinical history and a good physical examination of the patient are necessary to make the diagnosis.
Thanks to its history, we can classify chronic urticaria as spontaneous or inducible. For this, we must focus on the following aspects:
A family history of atopy or urticaria.
Commonly used drugs and relation with the hives.
A history of allergies, infections, or any other cause that has been able to trigger hives.
Work performed and hobbies.
Induction of urticaria due to exercise or exposure to physical agents.
How the body reacts to insect bites.
If the patient has been on holidays or trip recently.
If it has relationship with the menstrual cycle or stress.
If the quality of life is affected.
Duration of the disease.
Frequency and duration of the hives, size, shape, and distribution.
If associated symptoms are subjective such as pain, burning, etc.
If the patient has nocturnal or diurnal variation.
How the response was to the treatments used.
Complementary tests serve as support to the diagnosis, to detect associated systemic diseases or for differential diagnosis.
Basic laboratory tests, as blood count and biochemical reaction (determination of C-reactive protein, glomerular sedimentation rate), can help us rule out there is a systemic disease. The baseline of tryptase, antithyroid antibodies, and thyroid profile and study of complement and specific IgE where allergy is suspected, could also be useful. If an infection cause is suspected, hepatitis B and C virus or Helicobacter Pylori could be detected.
New guidelines recommend not to perform additional exploration in a systematic way in acute urticaria and just a complete blood count with ESR and a suspension of nonsteroidal anti-inflammatory drugs (NSAIDs) in the CU (Figure 16).
Diagnosis algorithm.
Different ways are approached for the treatment of urticaria: eliminating histaminergic food such as seafoods, canned goods, tomatoes, strawberries, bananas, pineapple, or apples and avoiding nonsteroidal anti-inflammatory drugs (NSAIDs) [9], nonsedative H1-antihistamines, and in severe cases systemic corticosteroids [10].
The treatment of choice are antihistamines, from a daily tablet up to four tablets as maximum dose.
Corticosteroids are excluded for exacerbations and must be prescribed in short guideline (maximum 10 days) without progressive decrease.
Avoid taking NSAIDs.
Nonsedative H1-antihistamines to full dose (four tablets in a day) [11].
Systemic corticoids, preferably in short treatment (10-day short guideline).
Forms resistant to treatment: biological agents (omalizumab*).
Avoid taking NSAIDs (Figure 17).
Nonsedative antihistamines.
*Omalizumab is a recombinant humanized monoclonal antibody, which blocks the high-affinity Fc receptor of IgE (Figure 18). It has been approved for treatment in cases of moderate-to-severe asthma, but it has promising results in the management also of chronic urticaria [12]. The dose is 150 or 300 mg by subcutaneous injection every 4 weeks. Dosing is not dependent on body weight or serum IgE level. The appropriate duration for CIU has not been evaluated yet. It’s necessary to periodically reassess the need for continued therapy with omalizumab [13].
Monoclonal antibody that binds to the Cε3 domain of circulating IgE, which prevents IgE from binding to and activating receptors in mast cells (
Recommended treatment algorithm for chronic urticaria.
The European Academy of Allergy and Clinical Immunology (EAACI)/Global Allergy and Asthma European Network (GA2LEN)/European Dermatology Forum (EDF)/World Allergy Organization (WAO) and the American Academy of Allergy, Asthma, and Immunology (AAAAI) have some differences in their recommendations for urticaria treatment, but the core recommendations remain similar.
A brief summary of
As first-line treatment, second-generation nonsedating H1 antihistamines.
Remain in the treatment algorithm first-generation H 1 antihistamines (differs from EAACI/GA 2LEN/EDF/WAO guidelines).
Second-line options to consider: adding other second-generation H 1 antihistamines, up-dosing second-generation H 1 antihistamines, leukotriene receptor antagonists, adding H 2 antagonists or first-generation H 1 antihistamines at bedtime.
Omalizumab as third-line treatment.
Corticosteroids considered only for short treatment.
Cyclosporine A* is used in refractory chronic urticaria not responsive to other treatments.
A brief summary of
First-line treatment, second-generation H 1 antihistamines.
Up-dosing second-generation H1 antihistamines are the second-line therapy.
Omalizumab is the third-line treatment, which is recommended because it is less toxic than cyclosporine A.
Not included in algorithm H2 antihistamines (used only on an individual case).
Avoid first-generation H1 antihistamines based on benefit to risk ratio.
Corticosteroids may be considered only for the short-term intervention.
Cyclosporine A for refractory chronic urticaria not responsive to other treatments.
*Cyclosporin A is an immunosuppressive agent, widely used in organ transplantation to prevent rejection.
The current version of the
When chronic inducible urticaria is suspected, differential diagnoses should be ruled out. The diagnosis should be confirmed by provocation test disease. The activity should be measured by determining the trigger threshold disease burden and control should be measured.
Second-generation H1 antihistamines remain the treatment of first choice.
If continuous treatment for 2–4 weeks does not lead to adequate control of symptoms, the guidelines recommend up-dosing (up to four times the standard dose).
If there is no improvement with high-dose antihistamines, it is recommended to add omalizumab to the regimen in patients with chronic spontaneous urticaria.
If there is no success after 6 months of omalizumab therapy, off-label treatment with cyclosporine is recommended.
Assessment scales serve to evaluate the treatment, as well as this pathological entity affects the quality of life of the patient. We have the urticarial activity score (UAS) [15] or angioedema activity score (AAS) [16], chronic urticaria quality-of-life questionnaire, and urticaria control test (UCT).
The current guideline endorses the urticaria activity score and/or the angioedema activity score to assess the disease activity in CSU patients [17] (Figure 20).
UAS.
The urticaria control test should be used in all CSU patients. The UCT is a retrospective tool used to rapidly and reliably assess disease control with four simple questions (Figure 21). Patients answer each of the four UCT questions, and the corresponding points (0–4 per answer) are added up to yield a total score of 0–16. The cutoff for controlled urticaria is 12 points. A score of 11 or less indicates insufficient disease control, whereas a score of 12 or more suggests adequate disease control [18].
Urticaria control test.
None.
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This pollutant is introduced into the environment from both natural and anthropogenic sources. Various physicochemical and biological treatments were developed for the cleanup of contaminated environments. However, bioremediation is based on the metabolic capabilities of microorganisms, and it is considered as the most basic and reliable way to eliminate contaminants, particularly petroleum and its recalcitrant compounds. It is more effective alternative comparing to classical remediation techniques. A high diversity of potential hydrocarbon degrader’s microorganisms was reported, and bacteria constitute the most abundant group, which has been well studied for hydrocarbon degradation. Several bioremediation approaches through bioaugmentation or/and biostimulation have been successfully applied. The interest on the optimizing of different parameters to achieve successful bioremediation technologies has been increased. In this chapter, we summarize the diversity and the hydrocarbon degradation potential of microorganism involved in the remediation of contaminated environments. We also present an overview of the efficient bioremediation strategies used for the decontamination of polluted marine environments.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Mouna Mahjoubi, Simone Cappello, Yasmine Souissi, Atef Jaouani\nand Ameur Cherif",authors:[{id:"107040",title:"Dr.",name:"Simone",middleName:null,surname:"Cappello",slug:"simone-cappello",fullName:"Simone Cappello"},{id:"219462",title:"Dr.",name:"Mouna",middleName:null,surname:"Mahjoubi",slug:"mouna-mahjoubi",fullName:"Mouna Mahjoubi"},{id:"223935",title:"Dr.",name:"Yasmine",middleName:null,surname:"Souissi",slug:"yasmine-souissi",fullName:"Yasmine Souissi"},{id:"223936",title:"Dr.",name:"Ameur",middleName:null,surname:"Cherif",slug:"ameur-cherif",fullName:"Ameur Cherif"}]},{id:"57237",doi:"10.5772/intechopen.71163",title:"Analytical Methods for Polycyclic Aromatic Hydrocarbons and their Global Trend of Distribution in Water and Sediment: A Review",slug:"analytical-methods-for-polycyclic-aromatic-hydrocarbons-and-their-global-trend-of-distribution-in-wa",totalDownloads:4516,totalCrossrefCites:23,totalDimensionsCites:37,abstract:"Polycyclic aromatic hydrocarbons (PAHs) are major organic pollutants in the environment, which are toxic to humans and biota, given their carcinogenic, mutagenic and teratogenic nature. In this chapter, we carried out an overview of the sources and toxicity of PAHs, their common analytical methods of determination in the water and sediment samples, and also their global trend of distribution, with a view to provide baseline guidance for relevant control authorities. The choice methods for determining these contaminants are high-performance liquid chromatography (HPLC) with UV/fluorescence detectors and GC/MS. Mass spectrometer coupled with GC is preferred because it offers robust identification of the analyte compounds both by retention time and mass spectrum, with additional structural information. Results collated revealed an extensive distribution of PAHs with total mean concentrations ranging from 0.0003 to 42,350 μg/L in water and 0 to 1.266 × 109 μg/kg (dw) in the sediment. PAHs in the two environmental matrices were much higher in the regions with intense oil exploration, shipping and industrial activities. It is therefore necessary to regularly monitor their levels in the aquatic environment, so as to provide mitigation options that will prevent risk to humans and aquatic animals.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Abiodun Olagoke Adeniji, Omobola Oluranti Okoh and Anthony\nIfeanyi Okoh",authors:[{id:"219919",title:"Dr.",name:"Abiodun",middleName:"Olagoke",surname:"Adeniji",slug:"abiodun-adeniji",fullName:"Abiodun Adeniji"},{id:"219920",title:"Prof.",name:"Omobola",middleName:null,surname:"Okoh",slug:"omobola-okoh",fullName:"Omobola Okoh"},{id:"219921",title:"Prof.",name:"Anthony",middleName:null,surname:"Okoh",slug:"anthony-okoh",fullName:"Anthony Okoh"}]},{id:"56472",doi:"10.5772/intechopen.70093",title:"Drilling Fluids for Deepwater Fields: An Overview",slug:"drilling-fluids-for-deepwater-fields-an-overview",totalDownloads:2731,totalCrossrefCites:12,totalDimensionsCites:16,abstract:"The increasing oil demand around the world along with the depletion of onshore and shallow water oil reserves have forced the oil companies moving into the development of deepwater subsea hydrocarbon reservoirs. Drilling fluids play a key role in all drilling operations, but they get a greater relevance in deepwater environments where the technological challenges of drilling at these extreme conditions generate significant operational risks as well as very high costs during the development of this kind of fields. The operational issues and concerns related to the drilling fluid design and application for deepwater fields are generally well known: narrow pore/fracture pressure gradient margins, wellbore stability, clay swelling, gas hydrates formation, formation damage, salt formations, lost circulation, stuck pipe, cuttings transport and environmental and safety aspects. Therefore, the present chapter aims to give an overview on the main challenges and research related to drilling fluid design and application for deepwater fields through the revision of the state of the art of the current and innovative technological solutions reported in literature.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Luis Alberto Alcázar-Vara and Ignacio Ramón Cortés-Monroy",authors:[{id:"149837",title:"Dr.",name:"Luis A.",middleName:null,surname:"Alcazar-Vara",slug:"luis-a.-alcazar-vara",fullName:"Luis A. Alcazar-Vara"},{id:"202407",title:"MSc.",name:"Ignacio R.",middleName:null,surname:"Cortés-Monroy",slug:"ignacio-r.-cortes-monroy",fullName:"Ignacio R. Cortés-Monroy"}]},{id:"68009",doi:"10.5772/intechopen.88056",title:"Hybrid EOR Methods Utilizing Low-Salinity Water",slug:"hybrid-eor-methods-utilizing-low-salinity-water",totalDownloads:1295,totalCrossrefCites:6,totalDimensionsCites:15,abstract:"Low-salinity water (LSW) flooding has been applied in sandstone and carbonate formations to improve oil recovery. Wettability alteration by LSW has been identified as the dominant driving mechanism for the incremental oil recoveries. LSW flooding has been combined with other EOR methods to develop new hybrid approaches to improve crude/brine/rock (CBR) interactions with the objective of overcoming some of the LSW flooding downsides, which include oil trapping and fine migration. Hybrid methods can provide higher oil recovery than each stand-alone technique. For instance, changes in gas solubility during LSW injection positively affect the performance of LSW/gas hybrid injection. LSW/surfactant flooding can contribute to incremental recovery by simultaneously lowering interfacial tension (IFT) and wettability alteration. The synergistic effect of fluid redistribution by LSW and enhanced water mobility by polymer flooding improves oil detachment and displacement in porous media through the application of the hybrid approach LSW/polymer flooding. Nanoparticles (NPs), mainly SiO2, can alter wettability toward more water wetness in combination with LSW, and hot LSW can improve heavy oil production by reducing viscosity. Hence, the synergistic effect of hybrid EOR methods based on LSW flooding is considered a novel EOR approach to improve oil recovery.",book:{id:"7609",slug:"enhanced-oil-recovery-processes-new-technologies",title:"Enhanced Oil Recovery Processes",fullTitle:"Enhanced Oil Recovery Processes - New Technologies"},signatures:"Peyman Pourafshary and Nikoo Moradpour",authors:null},{id:"56887",doi:"10.5772/intechopen.70092",title:"Petroleum Source Rocks Characterization and Hydrocarbon Generation",slug:"petroleum-source-rocks-characterization-and-hydrocarbon-generation",totalDownloads:8190,totalCrossrefCites:7,totalDimensionsCites:15,abstract:"This chapter is proposed to give the principal learning on the application of the formation of petroleum source rocks and hydrocarbon generation to exploration activities. The evaluation of petroleum source rocks and hydrocarbon generation is a very important skill for explorationists to define the location and type of petroleum prospects in a region. In this chapter, subsurface samples from case study (Sayun-Masilah basin) were used to determine the source rock characteristics and petroleum generative potentials of prospective source rocks. Qualitative and quantitative evaluation of the source rock in this basin was done by means of geochemical and geophysical approaches for four rock units. It is clear that Madbi Formation is considered the main source, in which the organic carbon content reached up to more than 5.2 wt%. The types of organic matter from rock-eval pyrolysis data indicated that type I kerogen is the main type, in association with type II, and a mixture of types II and III kerogens. The study of the different maturation parameters obtained from rock-eval pyrolysis, such as Tmax and vitrinite reflectance, reflects that the considered rock units are occurred in different maturation stages, ranging from immature to mature sources. One-dimensional basin modeling was performed to analyze the hydrocarbon generation and expulsion history of the source rocks in the study area based on the reconstruction of the burial and thermal maturity histories in order to improve our understanding of the hydrocarbon generation potential. Calibration of the model with measured vitrinite reflectance (%Ro) and borehole temperature (BHT) data indicates that the paleo-heat flow was high at Late Jurassic. The models also indicate that the early hydrocarbon generation in the Madbi source rock occurred during late Cretaceous and the main hydrocarbon generation has been reached approximately at Early Eocene. Therefore, the Madbi source rock can be considered as generative potentials of prospective source rock horizons in the Sayun-Masilah basin.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Nabil Mohammed Al-Areeq",authors:[{id:"198686",title:"Dr.",name:"Nabil",middleName:"Mohammed",surname:"Al-Areeq",slug:"nabil-al-areeq",fullName:"Nabil Al-Areeq"}]}],mostDownloadedChaptersLast30Days:[{id:"56887",title:"Petroleum Source Rocks Characterization and Hydrocarbon Generation",slug:"petroleum-source-rocks-characterization-and-hydrocarbon-generation",totalDownloads:8190,totalCrossrefCites:7,totalDimensionsCites:15,abstract:"This chapter is proposed to give the principal learning on the application of the formation of petroleum source rocks and hydrocarbon generation to exploration activities. The evaluation of petroleum source rocks and hydrocarbon generation is a very important skill for explorationists to define the location and type of petroleum prospects in a region. In this chapter, subsurface samples from case study (Sayun-Masilah basin) were used to determine the source rock characteristics and petroleum generative potentials of prospective source rocks. Qualitative and quantitative evaluation of the source rock in this basin was done by means of geochemical and geophysical approaches for four rock units. It is clear that Madbi Formation is considered the main source, in which the organic carbon content reached up to more than 5.2 wt%. The types of organic matter from rock-eval pyrolysis data indicated that type I kerogen is the main type, in association with type II, and a mixture of types II and III kerogens. The study of the different maturation parameters obtained from rock-eval pyrolysis, such as Tmax and vitrinite reflectance, reflects that the considered rock units are occurred in different maturation stages, ranging from immature to mature sources. One-dimensional basin modeling was performed to analyze the hydrocarbon generation and expulsion history of the source rocks in the study area based on the reconstruction of the burial and thermal maturity histories in order to improve our understanding of the hydrocarbon generation potential. Calibration of the model with measured vitrinite reflectance (%Ro) and borehole temperature (BHT) data indicates that the paleo-heat flow was high at Late Jurassic. The models also indicate that the early hydrocarbon generation in the Madbi source rock occurred during late Cretaceous and the main hydrocarbon generation has been reached approximately at Early Eocene. Therefore, the Madbi source rock can be considered as generative potentials of prospective source rock horizons in the Sayun-Masilah basin.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Nabil Mohammed Al-Areeq",authors:[{id:"198686",title:"Dr.",name:"Nabil",middleName:"Mohammed",surname:"Al-Areeq",slug:"nabil-al-areeq",fullName:"Nabil Al-Areeq"}]},{id:"56405",title:"Characterization of Crude Oils and the Precipitated Asphaltenes Fraction using UV Spectroscopy, Dynamic Light Scattering and Microscopy",slug:"characterization-of-crude-oils-and-the-precipitated-asphaltenes-fraction-using-uv-spectroscopy-dynam",totalDownloads:3354,totalCrossrefCites:2,totalDimensionsCites:5,abstract:"Analysis of crude oil composition provides important information that impacts on the recovery, handling, and transportation of hydrocarbons. Crude characterization also provides data in the analysis of geochemistry of the source of origin. Crude oil characterization by optical methods is usually difficult because of its dark color; however, those characterizations are crucial because they give information that can affect some analysis procedures. Ultraviolet-visible (UV-vis) spectroscopy is a simple and practical technique that allows the characterization of crude oil through dilution in solvents. A comparative study of crude oil solutions contrasted with their asphaltene fractions was performed. Each solution was analyzed in triplicate, on a UV-vis spectrophotometer. Calibration curves for both raw solutions showed no significant variations, indicating stability. Additionally, the results of dispersion and migration phenomena indicated stability only for crude oil solutions. The aggregate size dispersion was different for each type of crude and varied with respect to time. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) showed the type of morphology present for each type of asphaltene.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Ernestina Elizabeth Banda Cruz, Nohra Violeta Gallardo Rivas, Ulises\nPáramo García, Ana Maria Mendoza Martinez and José Aarón Melo\nBanda",authors:[{id:"174756",title:"Dr.",name:"Ernestina Elizabeth",middleName:null,surname:"Banda Cruz",slug:"ernestina-elizabeth-banda-cruz",fullName:"Ernestina Elizabeth Banda Cruz"},{id:"175028",title:"Dr.",name:"Ana María",middleName:null,surname:"Mendoza-Martínez",slug:"ana-maria-mendoza-martinez",fullName:"Ana María Mendoza-Martínez"},{id:"186469",title:"Dr.",name:"Ulises",middleName:null,surname:"Paramo-Garcia",slug:"ulises-paramo-garcia",fullName:"Ulises Paramo-Garcia"},{id:"198863",title:"Dr.",name:"Nohra",middleName:"Violeta",surname:"Gallardo Rivas",slug:"nohra-gallardo-rivas",fullName:"Nohra Gallardo Rivas"},{id:"198864",title:"Dr.",name:"José Aarón",middleName:null,surname:"Melo Banda",slug:"jose-aaron-melo-banda",fullName:"José Aarón Melo Banda"}]},{id:"58250",title:"Microbial Bioremediation of Petroleum Hydrocarbon– Contaminated Marine Environments",slug:"microbial-bioremediation-of-petroleum-hydrocarbon-contaminated-marine-environments",totalDownloads:5189,totalCrossrefCites:20,totalDimensionsCites:39,abstract:"Petroleum pollution has become a serious environmental problem, which can cause harmful damage to the environment and human health. This pollutant is introduced into the environment from both natural and anthropogenic sources. Various physicochemical and biological treatments were developed for the cleanup of contaminated environments. However, bioremediation is based on the metabolic capabilities of microorganisms, and it is considered as the most basic and reliable way to eliminate contaminants, particularly petroleum and its recalcitrant compounds. It is more effective alternative comparing to classical remediation techniques. A high diversity of potential hydrocarbon degrader’s microorganisms was reported, and bacteria constitute the most abundant group, which has been well studied for hydrocarbon degradation. Several bioremediation approaches through bioaugmentation or/and biostimulation have been successfully applied. The interest on the optimizing of different parameters to achieve successful bioremediation technologies has been increased. In this chapter, we summarize the diversity and the hydrocarbon degradation potential of microorganism involved in the remediation of contaminated environments. We also present an overview of the efficient bioremediation strategies used for the decontamination of polluted marine environments.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Mouna Mahjoubi, Simone Cappello, Yasmine Souissi, Atef Jaouani\nand Ameur Cherif",authors:[{id:"107040",title:"Dr.",name:"Simone",middleName:null,surname:"Cappello",slug:"simone-cappello",fullName:"Simone Cappello"},{id:"219462",title:"Dr.",name:"Mouna",middleName:null,surname:"Mahjoubi",slug:"mouna-mahjoubi",fullName:"Mouna Mahjoubi"},{id:"223935",title:"Dr.",name:"Yasmine",middleName:null,surname:"Souissi",slug:"yasmine-souissi",fullName:"Yasmine Souissi"},{id:"223936",title:"Dr.",name:"Ameur",middleName:null,surname:"Cherif",slug:"ameur-cherif",fullName:"Ameur Cherif"}]},{id:"68009",title:"Hybrid EOR Methods Utilizing Low-Salinity Water",slug:"hybrid-eor-methods-utilizing-low-salinity-water",totalDownloads:1295,totalCrossrefCites:6,totalDimensionsCites:15,abstract:"Low-salinity water (LSW) flooding has been applied in sandstone and carbonate formations to improve oil recovery. Wettability alteration by LSW has been identified as the dominant driving mechanism for the incremental oil recoveries. LSW flooding has been combined with other EOR methods to develop new hybrid approaches to improve crude/brine/rock (CBR) interactions with the objective of overcoming some of the LSW flooding downsides, which include oil trapping and fine migration. Hybrid methods can provide higher oil recovery than each stand-alone technique. For instance, changes in gas solubility during LSW injection positively affect the performance of LSW/gas hybrid injection. LSW/surfactant flooding can contribute to incremental recovery by simultaneously lowering interfacial tension (IFT) and wettability alteration. The synergistic effect of fluid redistribution by LSW and enhanced water mobility by polymer flooding improves oil detachment and displacement in porous media through the application of the hybrid approach LSW/polymer flooding. Nanoparticles (NPs), mainly SiO2, can alter wettability toward more water wetness in combination with LSW, and hot LSW can improve heavy oil production by reducing viscosity. Hence, the synergistic effect of hybrid EOR methods based on LSW flooding is considered a novel EOR approach to improve oil recovery.",book:{id:"7609",slug:"enhanced-oil-recovery-processes-new-technologies",title:"Enhanced Oil Recovery Processes",fullTitle:"Enhanced Oil Recovery Processes - New Technologies"},signatures:"Peyman Pourafshary and Nikoo Moradpour",authors:null},{id:"58096",title:"Organic Contaminants in Refinery Wastewater: Characterization and Novel Approaches for Biotreatment",slug:"organic-contaminants-in-refinery-wastewater-characterization-and-novel-approaches-for-biotreatment",totalDownloads:1839,totalCrossrefCites:7,totalDimensionsCites:10,abstract:"Addressing major environmental issues, such as water pollution, is essential nowadays in realizing sustainable development. The ever-increasing world population and industrial development have led to the introduction of different types of chemicals to the environment, leading to considerable deterioration in environmental quality. A major class of these chemicals is phenolic compounds, which are hazardous pollutants and highly toxic even at low concentrations. In recent years, researchers have realized the importance of extracting new bacterial strains that are effective in treating different types of highly contaminated wastewaters at different severe conditions. They also focused considerable amount of research on developing new types of reactors that would provide efficient mixing and reduce mass transfer limitations. The aim is to develop and evaluate effective reactor systems and biocatalysts for the biodegradation of major contaminants in petroleum refinery wastewater. This chapter examines the different available options for the treatment of refinery wastewater with more focus on novel biotreatment options.",book:{id:"5811",slug:"recent-insights-in-petroleum-science-and-engineering",title:"Recent Insights in Petroleum Science and Engineering",fullTitle:"Recent Insights in Petroleum Science and Engineering"},signatures:"Taghreed Al-Khalid and Muftah H. El-Naas",authors:[{id:"219926",title:"Prof.",name:"Muftah",middleName:null,surname:"El-Naas",slug:"muftah-el-naas",fullName:"Muftah El-Naas"},{id:"222785",title:"Dr.",name:"Taghreed",middleName:null,surname:"Al-Khalid",slug:"taghreed-al-khalid",fullName:"Taghreed Al-Khalid"}]}],onlineFirstChaptersFilter:{topicId:"768",limit:6,offset:0},onlineFirstChaptersCollection:[],onlineFirstChaptersTotal:0},preDownload:{success:null,errors:{}},subscriptionForm:{success:null,errors:{}},aboutIntechopen:{},privacyPolicy:{},peerReviewing:{},howOpenAccessPublishingWithIntechopenWorks:{},sponsorshipBooks:{sponsorshipBooks:[],offset:8,limit:8,total:0},allSeries:{pteSeriesList:[{id:"14",title:"Artificial Intelligence",numberOfPublishedBooks:9,numberOfPublishedChapters:90,numberOfOpenTopics:6,numberOfUpcomingTopics:0,issn:"2633-1403",doi:"10.5772/intechopen.79920",isOpenForSubmission:!0},{id:"7",title:"Biomedical Engineering",numberOfPublishedBooks:12,numberOfPublishedChapters:108,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2631-5343",doi:"10.5772/intechopen.71985",isOpenForSubmission:!0}],lsSeriesList:[{id:"11",title:"Biochemistry",numberOfPublishedBooks:33,numberOfPublishedChapters:330,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2632-0983",doi:"10.5772/intechopen.72877",isOpenForSubmission:!0},{id:"25",title:"Environmental Sciences",numberOfPublishedBooks:1,numberOfPublishedChapters:19,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2754-6713",doi:"10.5772/intechopen.100362",isOpenForSubmission:!0},{id:"10",title:"Physiology",numberOfPublishedBooks:14,numberOfPublishedChapters:145,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-8261",doi:"10.5772/intechopen.72796",isOpenForSubmission:!0}],hsSeriesList:[{id:"3",title:"Dentistry",numberOfPublishedBooks:9,numberOfPublishedChapters:141,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!0},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:123,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:11,numberOfPublishedChapters:112,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2632-0517",doi:"10.5772/intechopen.73681",isOpenForSubmission:!0}],sshSeriesList:[{id:"22",title:"Business, Management and Economics",numberOfPublishedBooks:1,numberOfPublishedChapters:22,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2753-894X",doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:11,numberOfOpenTopics:1,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100360",isOpenForSubmission:!0},{id:"24",title:"Sustainable Development",numberOfPublishedBooks:1,numberOfPublishedChapters:19,numberOfOpenTopics:5,numberOfUpcomingTopics:0,issn:"2753-6580",doi:"10.5772/intechopen.100361",isOpenForSubmission:!0}],testimonialsList:[{id:"13",text:"The collaboration with and support of the technical staff of IntechOpen is fantastic. The whole process of submitting an article and editing of the submitted article goes extremely smooth and fast, the number of reads and downloads of chapters is high, and the contributions are also frequently cited.",author:{id:"55578",name:"Antonio",surname:"Jurado-Navas",institutionString:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRisIQAS/Profile_Picture_1626166543950",slug:"antonio-jurado-navas",institution:{id:"720",name:"University of Malaga",country:{id:null,name:"Spain"}}}},{id:"6",text:"It is great to work with the IntechOpen to produce a worthwhile collection of research that also becomes a great educational resource and guide for future research endeavors.",author:{id:"259298",name:"Edward",surname:"Narayan",institutionString:null,profilePictureURL:"https://mts.intechopen.com/storage/users/259298/images/system/259298.jpeg",slug:"edward-narayan",institution:{id:"3",name:"University of Queensland",country:{id:null,name:"Australia"}}}}]},series:{item:{id:"7",title:"Biomedical Engineering",doi:"10.5772/intechopen.71985",issn:"2631-5343",scope:"Biomedical Engineering is one of the fastest-growing interdisciplinary branches of science and industry. The combination of electronics and computer science with biology and medicine has improved patient diagnosis, reduced rehabilitation time, and helped to facilitate a better quality of life. Nowadays, all medical imaging devices, medical instruments, or new laboratory techniques result from the cooperation of specialists in various fields. The series of Biomedical Engineering books covers such areas of knowledge as chemistry, physics, electronics, medicine, and biology. 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Dr. Koprowski has authored more than a hundred research papers with dozens in impact factor (IF) journals and has authored or co-authored six books. Additionally, he is the author of several national and international patents in the field of biomedical devices and imaging. Since 2011, he has been a reviewer of grants and projects (including EU projects) in biomedical engineering.",institutionString:null,institution:{name:"University of Silesia",institutionURL:null,country:{name:"Poland"}}},editorTwo:null,editorThree:null},subseries:{paginationCount:3,paginationItems:[{id:"7",title:"Bioinformatics and Medical Informatics",coverUrl:"https://cdn.intechopen.com/series_topics/covers/7.jpg",isOpenForSubmission:!0,editor:{id:"351533",title:"Dr.",name:"Slawomir",middleName:null,surname:"Wilczynski",slug:"slawomir-wilczynski",fullName:"Slawomir Wilczynski",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y000035U1loQAC/Profile_Picture_1630074514792",biography:"Professor Sławomir Wilczyński, Head of the Chair of Department of Basic Biomedical Sciences, Faculty of Pharmaceutical Sciences, Medical University of Silesia in Katowice, Poland. His research interests are focused on modern imaging methods used in medicine and pharmacy, including in particular hyperspectral imaging, dynamic thermovision analysis, high-resolution ultrasound, as well as other techniques such as EPR, NMR and hemispheric directional reflectance. Author of over 100 scientific works, patents and industrial designs. Expert of the Polish National Center for Research and Development, Member of the Investment Committee in the Bridge Alfa NCBiR program, expert of the Polish Ministry of Funds and Regional Policy, Polish Medical Research Agency. Editor-in-chief of the journal in the field of aesthetic medicine and dermatology - Aesthetica.",institutionString:null,institution:{name:"Medical University of Silesia",institutionURL:null,country:{name:"Poland"}}},editorTwo:null,editorThree:null},{id:"8",title:"Bioinspired Technology and Biomechanics",coverUrl:"https://cdn.intechopen.com/series_topics/covers/8.jpg",isOpenForSubmission:!0,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},{id:"9",title:"Biotechnology - Biosensors, Biomaterials and Tissue Engineering",coverUrl:"https://cdn.intechopen.com/series_topics/covers/9.jpg",isOpenForSubmission:!0,editor:{id:"126286",title:"Dr.",name:"Luis",middleName:"Jesús",surname:"Villarreal-Gómez",slug:"luis-villarreal-gomez",fullName:"Luis Villarreal-Gómez",profilePictureURL:"https://mts.intechopen.com/storage/users/126286/images/system/126286.jpg",biography:"Dr. Luis Villarreal is a research professor from the Facultad de Ciencias de la Ingeniería y Tecnología, Universidad Autónoma de Baja California, Tijuana, Baja California, México. Dr. Villarreal is the editor in chief and founder of the Revista de Ciencias Tecnológicas (RECIT) (https://recit.uabc.mx/) and is a member of several editorial and reviewer boards for numerous international journals. He has published more than thirty international papers and reviewed more than ninety-two manuscripts. His research interests include biomaterials, nanomaterials, bioengineering, biosensors, drug delivery systems, and tissue engineering.",institutionString:null,institution:{name:"Autonomous University of Baja California",institutionURL:null,country:{name:"Mexico"}}},editorTwo:null,editorThree:null}]},overviewPageOFChapters:{paginationCount:27,paginationItems:[{id:"83092",title:"Novel Composites for Bone Tissue Engineering",doi:"10.5772/intechopen.106255",signatures:"Pugalanthipandian Sankaralingam, Poornimadevi Sakthivel and Vijayakumar Chinnaswamy Thangavel",slug:"novel-composites-for-bone-tissue-engineering",totalDownloads:0,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Biomimetics - Bridging the Gap",coverURL:"https://cdn.intechopen.com/books/images_new/11453.jpg",subseries:{id:"8",title:"Bioinspired Technology and Biomechanics"}}},{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:8,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:27,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"}}}]},overviewPagePublishedBooks:{paginationCount:12,paginationItems:[{type:"book",id:"6692",title:"Medical and Biological Image Analysis",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/6692.jpg",slug:"medical-and-biological-image-analysis",publishedDate:"July 4th 2018",editedByType:"Edited by",bookSignature:"Robert Koprowski",hash:"e75f234a0fc1988d9816a94e4c724deb",volumeInSeries:1,fullTitle:"Medical and Biological Image Analysis",editors:[{id:"50150",title:"Prof.",name:"Robert",middleName:null,surname:"Koprowski",slug:"robert-koprowski",fullName:"Robert Koprowski",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYTYNQA4/Profile_Picture_1630478535317",biography:"Robert Koprowski, MD (1997), PhD (2003), Habilitation (2015), is an employee of the University of Silesia, Poland, Institute of Computer Science, Department of Biomedical Computer Systems. For 20 years, he has studied the analysis and processing of biomedical images, emphasizing the full automation of measurement for a large inter-individual variability of patients. Dr. Koprowski has authored more than a hundred research papers with dozens in impact factor (IF) journals and has authored or co-authored six books. Additionally, he is the author of several national and international patents in the field of biomedical devices and imaging. Since 2011, he has been a reviewer of grants and projects (including EU projects) in biomedical engineering.",institutionString:null,institution:{name:"University of Silesia",institutionURL:null,country:{name:"Poland"}}}]},{type:"book",id:"7218",title:"OCT",subtitle:"Applications in Ophthalmology",coverURL:"https://cdn.intechopen.com/books/images_new/7218.jpg",slug:"oct-applications-in-ophthalmology",publishedDate:"September 19th 2018",editedByType:"Edited by",bookSignature:"Michele Lanza",hash:"e3a3430cdfd6999caccac933e4613885",volumeInSeries:2,fullTitle:"OCT - Applications in Ophthalmology",editors:[{id:"240088",title:"Prof.",name:"Michele",middleName:null,surname:"Lanza",slug:"michele-lanza",fullName:"Michele Lanza",profilePictureURL:"https://mts.intechopen.com/storage/users/240088/images/system/240088.png",biography:"Michele Lanza is Associate Professor of Ophthalmology at Università della Campania, Luigi Vanvitelli, Napoli, Italy. His fields of interest are anterior segment disease, keratoconus, glaucoma, corneal dystrophies, and cataracts. His research topics include\nintraocular lens power calculation, eye modification induced by refractive surgery, glaucoma progression, and validation of new diagnostic devices in ophthalmology. \nHe has published more than 100 papers in international and Italian scientific journals, more than 60 in journals with impact factors, and chapters in international and Italian books. 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