Immunology

activation

Activation of cells of the immune system variably induces proliferation, differentiation, production, and maturation. Some activated cells of the immune system are involved in activation (costimulation) of other cell types. Likewise, some activated cells express molecules involved in activation.

activating agents : B cell activation : costimulatory agents : costimulatory cells : complement activation pathways : dendritic cell activation : granulocyte activation : lymphocyte activation : macrophage alternative : macrophage classical : markers : mediators : monocyte-macrophage : pDC : phagocyte activation : precursor dendritic cells : signaling/receptors : T cell activation : Tc activation : Th activation

Activating agents
_antigen
___pathogens
___pathogen-associated molecular patterns (PAMP)
___danger-associated molecular patterns (DAMP)

Markers
___major histocompatibility complex (MHC) molecules

Costimulatory agents
___CD28
___ ● SLAM (signaling lymphocytic activation molecule), a 70-kDa costimulatory molecule belonging to the Ig superfamily
___ ● ICOS (inducible costimulator) molecules
___ ● TNFR: CD40, CD30, CD27, OX-40, 4-1BB
___ ● negative regulators of costimulation: CTLA-4, PD-1

Costimulatory cells
helper T cells (Th) for activation of B cells, and APCs for activation of T cells
_Antigen presenting cells display epitope proteins – exogenous antigen or fragmented angtigen from phagocytosed cells – on their surfaces. APCs include:
___phagocytic cells – dendritic cells, macrophages
___B cells (B lymphocytes)

Signaling / receptors
_pattern recognition receptors
_____complement receptors (table)
_____Fc receptors (table)
_____scavenger receptors (table)
_____Toll-like receptors (table)
_TNFR
_B cell receptors (BCR)
___immunoglobulin - antibodies (table)
_T cell receptors (TCR)
_____clusters of differentiation
_____major histocompatibility complex (MHC) molecules

Mediators
_immune cytokines (table)

Phagocytes

Dendritic cells
Dendritic cells and their immature counterparts, Langerhans cells (LC), are highly specialized, professional antigen-presenting cells (APC). Immature dendritic cells are called 'veiled cells' because they display large cytoplasmic 'veils' rather than the long dendritic projections of mature cells. As key regulators of immune responses, dendritic cells (DC) stimulate lymphocytes to perform cell-mediated and humoral immune responses against pathogens and tumor cells.

Immature, precursor dendritic cells (pDC) circulate throughout the body, migrating to lymphocyte rich tissues (such as spleen and lymph nodes) upon stimulating encounter with antigen. The dendritic cells internalize the antigen then externalize (fragmented) antigen that they present to lymphocytes in MHC-peptide complexes, expressing markers that stimulate lymphocyte activation.

Monocytemacrophage activation
Production of the macrophage lineage from progenitors in the bone marrow is typically controlled by M-CSF, which is constitutively expressed by many cell types. Serum levels of M-CSF and GM-CSF increase in response to invasive stimuli and inflammation, and monocyte numbers increase dramatically. M-CSF-derived macrophages are larger, and have a higher phagocytic capacity, while GM-CSF-derived macrophages are more cytotoxic against TNF-α-resistant tumour targets, express more MHC class II antigen, and constitutively secrete more PGE-2.

Classically activated macrophages are associated with chronic inflammation and tissue injury wherein classically activated macrophages exhibit a Th1-like phenotype, promoting inflammation, destruction of the extracellular matrix (ECM), and apoptosis. Classical macrophage activation proceeds in two stages.
1. IFN-γ-primed stage in which macrophages exhibit enhanced MHC class II expression, antigen presentation, but reduced proliferative capacity. (IFN-α, IFN-β, IL-3, M-CSF, GM-CSF and TNF-α can also prime macrophages for selected functions.)
2. Secondary stimuli operated to fully activate primed macrophages. Diverse agents provide secondary signals (including LPS (CD14), bacteria, yeast glucans, GM-CSF and phorbol esters). Macrophages stimulated for tumoricidal activity secrete IL-1, display decreased MHC class II gene transcription, and are generally poor antigen presenters of antigen.[r]

Alternatively activated macrophages typically resolve inflammation and facilitate wound healing wherein they display a Th2-like phenotype, promoting construction of ECM, cell proliferation, and angiogenesis. Alternative macrophage activation does not require a priming stage and IL-42 and/or IL-1326 can act as sufficient stimuli.[r2]

Granulocyte activation
The hematopoietic cytokines, granulocyte colony-stimulating factor (G-CSF) and granulocyte-macrophage colony-stimulating factor (GM-CSF) have pleiotropic activating effects on mature leukocytes, which can improve leukocyte function, facilitating eradication of microbial infections. G-CSF activates neutrophils, while GM-CSF activates neutrophils, eosinophils, and monocyte/macrophages.

Lymphocytes
B cell activation: naïve B cellsplasma cells
Activation of naïve B cells occurs when a BCR (antibody) encounters and ligates its cognate antigen. B cells are coated in immunoglobulin receptors and are able to recognize intact antigen, which they engulf, digest, and subsequently present in complex with surface MHC class II molecules. The MHC-peptide complex binds CD4 + helper T cells (Th), inducing secretion of cytokines that stimulate B cell proliferation and their differentiation into plasma cells, which secrete specific antibodies that bind with the cognate antigen. These antigen-antibody complexes are subsequently cleared by liver and spleen cells and the classical complement cascade.

T cell activation:
Activation of T cells requires a first signal of TCR engagement, which ensures antigen specificity and MHC restriction of the response. The second signal comprises synergistic costimulatory signaling by professional antigen presenting cells. The costimulatory second signal is necessary to sustain and integrate TCR signaling to stimulate optimal T cell proliferation and differentiation. The level of activation of T cells is closely related to their state of differentiation.

Activation of the resting Tc cell involves two steps: 1) TCR on the CD8+ cell interacts with antigen-class I MHC complex on the surface of a target cell. 2) CD8+ Tc cell is stimulated by cytokines, particularly IL-2, which have been secreted predominantly by activated Th cells. Resting Tc do not express IL-2 receptors until antigen stimulation increases the expression of Tc IL-2 receptors, ensuring that activation is confined to Tc cells that ligate cognate antigen. Activated Tc cells become CTLs.

The first signal for helper T cell (Th) activation is interaction of the TcR-CD3 complex with antigen-MHC class II molecules on the surface of an antigen presenting cell. Stimulation is aided by the CD4 molecule on Th cells, with or without assistance from other accessory molecules, such as CD45, CD28 and CD2. Increased IL-2 secretion by the T cell and an increase in IL-2 receptors on the T cell surface trigger a cascade of biochemical events.



Three pathways are involved in complement activation:
classical pathway (binding of an antibody to its cognate antigen)
alternative pathway (relies upon spontaneous conversion of C3 to C3b)
mannose-binding lectin pathway (MBL -MAPS) (homologous to the classical pathway, but utilizes opsonin, mannan-binding lectin (MBL) and ficolins rather than C1q)

▲ф A activating agents § adaptor protein ~ adhesion molecules ф affinity maturationAID ф anergy ф antibodies ф antigen ф APCsapoptosis ф autoimmunity B : B cell activation ф B cellsbloodbone marrow C סּ caspases ф CDcell-cycle controlcellular fate ф cellular responsecellular signal transductionchemotaxis ф class-switch recombination ф clonal selection ф complement system : complement activation pathways : costimulatory agents : costimulatory cells ~ cytokines ~ cytokine receptors D סּ death receptor : dendritic cell activation ф dendritic cellsdifferentiation E סּ ECM F ♦ Fyn G ф gene conversiongerminal centers : granulocyte activation ф granulocytes H ф helper T cell ф hematopoiesis ф humoral immunity I ф immune cytokines ф immune response ф immune tolerance ~ immunoglobulins § immunoglobulin isotypes ф inflammatory response ф interferons ф isotype switching L ф leukocytes ф leukocyte adhesion cascade : lymphocyte activation ф lymphocyteslymphoid system ф lymphokines ф lymphoid system M : macrophage alternative : macrophage classical ф macrophages ф MHC ф migration ¤ mitogens ф monocytes : markers : mediators : monocyte-macrophage N § NF-κB P ф pathogens ф pattern-recognition receptors : pDC : phagocyte activation ф phagocyte ф plasma cells : precursor dendritic cells ¤ proliferation R ф receptors S ф secondary antibody diversification ф signaling ¤ signaling molecules : signaling/receptorssignal transduction ф somatic hypermutation, somatic mutation ф surface receptors T : T cell activation ф T cells : Tc activation : Th activation ф thymusthymus ф (tolerance) ▲ф


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cellular response

Cellular responses to invading pathogens utilize phagocytic and cytotoxic cells of the innate and adaptive immune responses.

The immune system is intimately connected with the hematologic system since white blood cells (leukocytes, including B- and T-lymphocytes) are key players in the lymphoid system.
Cellular participants in the immune and inflammatory responses include :
phagocytic cells (dendritic cells, monocytes and macrophages, and granulocytes)
antigen presenting cells (dendritic cells, macrophages, B lymphocytes, helper T cells, γδ T cells)
antibody producing cells (plasma cells)
cytotoxic cells (CTL, NK)
● regulatory cells (APCs, helper T cells, regulatory T cells)
● cells-in-waiting (memory B cells, monocytes)
● chemical releasing cells (basophils, eosinophils, neutrophils; mast cells - histamine, cytokines; hepatocytes - complement proteins)

Innate responses solely comprise cellular immune responses employ phagocytic cells that are circulating or tissue emplaced – granulocytes, monocytes, dendritic cells, macrophages, natural killer T cells, and B lymphocytes. The innate response induces (triggers) the adaptive system, the cellular component of which relies upon activated macrophages, T-lymphocytescytotoxic T lymphocytes (killer T cells).

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cytotoxicity

Cytotoxic agents are toxic to cells:
● Cytotoxic physical agents
___ ● thermal (excessive heat or cold)
___irradiation

● Cytotoxic drugs and chemicals have cytolytic, carcinogenic, mutagenic and/or teratogenic potential. Direct contact may cause tissue irritation, ulceration, and necrosis.
___ ● antineoplastic and immunosuppressive therapeutic agents
___ ● free radicals
___ ● strong acids and alkalis
___ ● secreted digestive enzymes and antimicrobials – lysozyme, phospholipase, defensins
___ ● secreted cytolytic molecules • FasL, granzymes, granulysin, perforin
___phagocytosis-promoting opsoninsC3b of complement cascade, pulmonary surfactants

● Cytotoxic cellular immune responses
_ ● Antibody-dependent cell-mediated cytotoxicity (ADCC) is mediated by antibody-marking
_ ● Complement-dependent cytotoxicity (CDC) is mediated by the complement system (opsonin-induced phagocytosis performed by macrophages and neutrophils, anaphylatoxin induced histamine release by basophils and mast cells).
_ ● Lymphocyte-mediated cytotoxicity ('LMC') requires is independent of antibody-marking and the complement system

__killer cells
___ ● non-specific 'attack' cells – eosinophils (IgE, CD67), macrophages (IgG, CD14), K cells (IgG), LAK cells (IL-2 activated cytolysis cells, lymphokine-activated killer cells), NK cells (CD16, CD56)
___ ● natural killers cells (NK) of innate immune system – have activating receptors and killer inhibitory receptors (KIR) – secrete cytolytic granzymes and perforin ('LMC')
___ ● natural killer T cells (NKT) – have αβ TCR plus some of the cell-surface molecules of NK cells – respond to glycolipid antigens presented by the cell-surface molecule CD1d (ADCC) – secrete IFN-γ (Th1 cytokine) plus IL-4 and IL-13 (Th2 cytokines)
___ ● cytotoxic T cells • (CD8 +) Tc matures into CTL (killer T cells) following activation (ADCC)
___phagocytic cells engulf pathogens, often after pathogen coating by opsonins (CDC)

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inflammatory response

Inflammation is a signal-mediated response to cellular insult by infectious agents, toxins, and physical stresses. While acute inflammation is important to the immune response, chronic inappropriate inflammation can cause tissue destruction (autoimmunity, neurodegenerative, cardiovascular disease).

acute phase : agents : cytokines : events : pro-inflammatory cytokines : sequence : signs/symptoms

Symptoms & Signs: Inflammation is variably accompanied by fever (pyrogenesis), redness (rubor), swelling (turgor), pain (dolor), and tissue/organ dysfunction (functio laesa).

The sequence of inflammatory events is:
● insult by trauma or pathogenacute phase reaction
_ ● platelet adhesion, vasoconstriction of efferent vessels
_cytokine induced afferent vascular dilatation (vasodilation causing increased blood flow (redness, local heat) to infected/damaged area
_ ● activation of complement system, clotting system, fibrinolytic system, and kinin system
__leukocyte adhesion cascade
__ ● endothelial gaps increase vascular permeability and allow extravasation of serum proteins (exudate) and leukocytes (→ neutrophilsmacrophageslymphocytes) with resultant tissue swelling
___phagocytosis of foreign material with pus formation

The inflammatory response is part of the innate immune response, and employs cellular and plasma-derived agents (pathway):
complement system
interferons (IFN)
cytokines, lymphokines, monokines
prostaglandins and leukotrienes – arachidonic acid derivatives
● platelet activating factor (PAF)
● histamine
kinins (bradykininpain)

Pain-evoking mediators include proinflammatory cytokines, chemokines, protons, nerve growth factor, and prostaglandins, which are produced by invading leukocytes or by local cells.

Acute phase proteins fluctuate in response to tissue injury and infections. They are synthesized (by hepatocytes) in response to pro-inflammatory cytokines and include:
C-reactive protein (CRP),
mannose-binding protein,
complement factors,
alpha-1 acid glycoprotein,
alpha 1-antitrypsin,
alpha 1-antichymotrypsin,
alpha 2-macroglobulin,
serum amyloid P component (SAP, amyloid),
haptoglobins (alpha-2-globulins),
ceruloplasmin,
complement components C3, C4 ,
coagulation factors (fibrinogen, prothrombin, factor VIII, von Willebrand factor, plasminogen)● ferritin

Pro-inflammatory cytokines include IL-1, IL-6, IL-8, TNF-α (tumor necrosis factor alpha), and TNF-β (lymphotoxin α, LT).

In response to infection, macrophages secrete IL-1 and TNFs, which are broad-spectrum cytokines that stimulate inflammatory responses of neutrophils, fibroblasts, and endothelial cells. The fibroblasts and endothelial cells respond to IL-1 and TNF by recruiting more immune cells to the site of inflammation.

Pain:
When tissue is destroyed or invaded by leukocytes in inflammation, numerous mediators are delivered by the circulation and/or liberated from resident and immigrated cells at the site. Proalgesic mediators include proinflammatory cytokines, chemokines, protons, nerve growth factor, and prostaglandins, which are produced by invading leukocytes or by resident cells. Less well known is that analgesic mediators, which counteract pain, are also produced in inflamed tissues. These include anti-inflammatory cytokines and opioid peptides. Interactions between leukocyte-derived opioid peptides and opioid receptors can lead to potent, clinically relevant inhibition of pain (analgesia). Opioid receptors are present on peripheral endings of sensory neurons. Opioid peptides are synthesized in circulating leukocytes, which migrate to inflamed tissues directed by chemokines and adhesion molecules. Under stressful conditions or in response to releasing agents (e.g., corticotropin-releasing factor, cytokines, noradrenaline), leukocytes can secrete opioids. They activate peripheral opioid receptors and produce analgesia by inhibiting the excitability of sensory nerves and/or the release of excitatory neuropeptides. This review presents discoveries that led to the concepts of pain generation by mediators secreted from leukocytes and of analgesia by immune-derived opioids.
Leukocytes in the regulation of pain and analgesia. Rittner HL, Machelska H, Stein C. J Leukoc Biol. 2005 Dec;78(6):1215-22. Epub 2005 Oct 4. [Free Full Text Article]

[] inflammatory initiation - skin Џ animation of leukocyte adhesion Џ

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▲ф agents : cytokines : events : pro-inflammatory cytokines : sequence : signs/symptoms ▲ф

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macrophages

Macrophages (and dendritic cells) are distributed in peripheral tissues where they eliminate invading foreign substances and are therefore responsible for innate immunity.

▼: acquired immunity : alveolar macrophages : APC : exudate macrophages : free and fixed macrophages : histiocytes : IL-1 : inflammatory macrophages : Kupffer's cells : Langerhans's cells : leukocyte immigration : life-span : mononuclear phagocyte system : MPS : normal macrophages : peritoneal, pleural macrophages : phagocytes : RES : reticulo-endothelial system : tissue renewal :▼

Macrophages are mature, tissue-differentiated monocytes of the reticulo-endothelial system (RES) or mononuclear phagocyte system (MPS). Since macrophages are derived exclusively from monocytes they exhibit similar properties. The term exudate macrophages designates the developmental stage and not the functional state. Inflammatory macrophages are found in exudates, where they may be characterized specific markers, such as peroxidase activity. Normal macrophages include macrophages located in tissues that include:
● connective tissue –histiocytes
● liver sinusoids – Kupffer's cells
● lung – alveolar macrophages
● lymph nodes – free and fixed macrophages
● spleen – free and fixed macrophages
● bone marrow – fixed macrophages
● serous fluids –pleural and peritoneal macrophages
● skin – histiocytes, Langerhans's cell

Macrophages trigger acquired immunity by capturing foreign (exogenous) antigens, which they ingest in cellular lysosomes. [im] Post-hydrolysis, the fragmented antigens are displayed on the cell surface together with macrophage proteins (APC). A number of C-type lectins are specifically expressed on macrophages and dendritic cells.

Coated with fragments of foreign antigens, macrophages migrate to secondary lymphoid organs, where they present the antigens to T lymphocytes. This process sensitizes the T cells to recognize antigens.

Macrophages are ubiquitously distributed mononuclear phagocytes responsible for numerous homeostatic, immunological, and inflammatory processes. Their wide tissue distribution enables them to provide an immediate defence against foreign elements prior to leukocyte immigration. Macrophages participate in both specific immunity via antigen presentation and in IL-1 production and nonspecific immunity against bacterial, viral, fungal, and neoplastic pathogens, so macrophages display a range of functional and morphological phenotypes. The life-span of macrophages ranges from 6 to 16 days. Under normal, steady-state conditions, tissue macrophages are renewed by local proliferation of progenitor cells rather than by monocyte influx into tissue, though invagination of monocytes does occur.

▲: acquired immunity : alveolar macrophages ф antibodies ф antigen : APC ф APCs ф B cells ф blood ф dendritic cells : exudate macrophages : free and fixed macrophages ф granulocytes ф hematopoiesis : histiocytes : IL-1 : inflammatory macrophages ф inflammatory response ф immune cytokines ф immune response : Kupffer's cells : Langerhans's cells : leukocyte immigration ф leukocytes : life-span ф leukocytes ф lymphocytes ф lymphokines ф lymphoid system ф migration ф monocytes : mononuclear phagocyte system : MPS : normal macrophages : peritoneal, pleural macrophages : phagocytes ф phagocyte ф receptors : RES : reticulo-endothelial system ф T cells : tissue renewal :▲

[] Macrophage in the process of surrounding tumor cell, artist's impression - cellular_macrophage [] sem Macrophage [] sem "walking macrophage" [] sem activated macrophage phagocytosing bacteria [] sem alveolar macrophage attacking E. coli [] tem macrophage-eosinophil [] micrograph macrophage surrounded by normal plasma cells [] micrograph macrophage & plasma cells [] micrograph erythroid island central macrophage [] micrograph foamy alveolar macrophage [] immunofluorescence tubulin in macrophage [] micrograph lymph node [] micrograph lymphoid follicle with germinal center H&E [] micrograph normal spleen [] micrograph macrophage & neutrophils in spleen [] thymus micrograph gallery [] macrophage attacking bacterium [] phagocytic embrace [] cartoon macrophage attacks []

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animations Џ Neutrophil Џ Platelet Response Џ Atopic Dermatitis Џ beautiful Flash 8 animation - inner life of the cell and Interpretation: Inner Life of the Cell Џ


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neutrophils

Neutrophils, or polymorphoonuclear cells (PMNs), or heterophils are the commonest granulocytes and leukocytes, and are packed with granules that stain neutral (pink with H&E).

Neutrophils are phagocytic cells that normally circulate in the bloodstream. However, 'polys' quickly migrate into sites of infection or acute inflammation → after chemotaxis to reach the active sites, PMNs marginate along the vessel's endothelium, experience selectin-dependent capture and integrin-dependent adhesion, then extravasate into tissues, where they persist for 1-2 days. Neutrophils spend all their energy reserves in a self-and-pathogen-destructive respiratory burst, utilizing a NADPH oxidase complex that is assembled upon neutrophil activation.

Neutrophils contain specific, azurophilic, and tertiary granules:
specific granules
_ ● α-defensins – small cysteine rich, cationic proteins found in both invertebrates and vertebrates
_alkaline phosphatase
_ ● becteriocidal lactoferrin
_NADPH oxidase
azurophilic granules
_lysozyme
_bactericidal/permeability increasing protein (BPI)
_myeloperoxidase
_serine proteasesneutrophil elastase and cathepsin G
tertiary granules
_cathepsin proteases
_gelatinase

● neutrophils can also extrude neutrophil extracellular traps (NETs), a web of chromatin and serine protease fibers that trap and kill microbes extracellularly and independent of phagocytic activity

azurophilic granules are primarily lysozymes that are found in all three types of granulocyte

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phagocyte

Phagocytosis involves the sporadic engulfment of large extracellular particles by wrapping cytoskeletally supported pseudopodia around the particle and internalizing it into vacuoles called phagosomes. The phagosome then fuses with a lysosome, and the phagocytosed particle is digested in an oxidative burst (respiratory burst) by lysosomal enzymes. The respiratory burst produces toxic mediators of inflammation – nitric oxide, peroxides, and oxygen radicals.

In the case of complete destruction of phagocytosed matter, the hydrolyzed products are absorbed into the cytoplasm through the vacuolar wall, and the waste products are excreted from the cell. However, partial hydrolysis is a feature of phagocytosis/endocytosis performed by antigen presenting cells, which display epitope proteins – exogenous antigen or fragmented antigen from phagocytosed cells – on their surfaces.

Inflammatory response battles between phagocytes and pathogens produces pus.
Phagocytic cells include:
dendritic cells
macrophages
polymorphonuclear lymphocytes (neutrophils, granulocytes)

Receptor-mediated endocytosis is a specialized form of phagocytosis that creates receptosomes. Cells invaginate proteins and other types of ligands that have attached to specific receptors on the plasma membrane.
1. First, the protein or ligand binds to a specific receptor, forming a coated pit ("coated pit endocytosis"). The coated pit is a specialized membranous region coated with clathrin, which provides stability and aids the transport process.
2. Next, the coated pit next forms a coated vesicle and, shedding its clathrin coat, joins with other coated pits to form a receptosome.

Pinocytosis is a continuous process in most cells. Pinocytosis is called "cellular drinking" and involves encysting small quantities of extracellular fluid (ESF). View animation - pinocytosis :

Circulating monocytes possess migratory, chemotactic, pinocytic, and phagocytic capabilities, and tissue macrophages trigger acquired immunity by capturing foreign (exogenous) antigens, which they ingest in cellular lysosomes and present to T lymphocytes, sensitizing the T cells to recognize the antigen.

In some instances, phagocytosis does not result in the destruction of phagocytozed bacteria – this mechanism is considered responsible for serial endosymbiosis. Endosymbiotic bacteria have been experimentally observed to undergo endosymbiotic gene transfer.

[] image_Paramecium feeding on hematococcus [] phagocytic embrace [] macrophage attacking bacterium [] sem Macrophage [] sem "walking macrophage" [] sem activated macrophage phagocytosing bacteria [] sem alveolar macrophage attacking E. coli Џ animation - phagocytosis Џ animated diagram - phagocytosis of bacterium Џ time-lapse movie - phagocytosis Џ animation - exocytosis Џ

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receptors

The functionality of cells of the immune system is particularly dependent on signal pathways, and the various lymphoid cell types sport an array of receptors.

antigenic determinant : APC costimulation : BCR: complement receptors : cytokines : epitope : FcR : Ig-Fc : IgG : opsonins : pathogen associated molecular patterns : pattern recognition receptors : phagocyte receptors : respiratory burst complement : respiratory burst Fc : : scavenger receptors : TCR : TLR : Toll-like receptors : VDJ recombination

Phagocytes

Phagocytic cells detect infectious agents that bind to a variety of receptors on the phagocytes cell membranes, including:

Fc receptors (FcR, Ig-Fc) – the constant region (Fc) of IgG on bacterial surfaces can bind to the Fc receptor on phagocytes. Such binding to the Fc receptor requires prior antibody-antigen interaction. The binding of IgG-coated bacteria to phagocytic Fc receptors stimulates both metabolic activity in the phagocytes (respiratory burst) and phagocytic activity. Fc receptors include the clusters of differentiation, CD16 (Fcγ RIII), CD32 (Fcγ RII-A, Fcγ RII-B2, Fcγ RII-B1), and CD64 (Fcγ RI), Fcε RI, and Fcα RI. All FcR are stimulatory except inhibitory Fcγ RII-B1 and B2, which contain immunoreceptor tyrosine based inhibition motifs (ITIMs) in their cytoplasmic tail. Table  Fc receptors

Complement receptors – Phagocytic cells possess a receptor for the C3b complement opsonins, and binding of C3b-coated bacteria to this receptor stimulates enhanced phagocytosis and the respiratory burst. Table  Complement Receptors.

Scavenger receptors bind a variety of polyanions on bacterial surfaces, stimulating phagocytosis of the polyanion-coated bacteria. Macrophage scavenger receptors appear to mediate important, conserved functions, so it was likely pattern-recognition receptors that arose early in the evolution of host-defense mechanisms. Table  Scavenger Receptors

Toll-like receptors are a variety of pattern recognition receptors (PRR) that recognize pathogen associated molecular patterns (PAMP) on infectious agents. Binding of the infectious agents to Toll-like receptors stimulates phagocytosis and the release of inflammatory cytokines (IL-1, TNF-α, IL-6) from the phagocytes. Table  Toll-like Receptors

Tables  Complement Receptors  Fc receptors  Immune Cytokines  Immunoglobulins  Interferons  Scavenger Receptors  Toll-like Receptors .

Lymphocytes

The surfaces of B cells and T cells are coated with thousands of identical copies of different integral membrane receptors (BCRs, TCRs), each capable of binding with a different antigen.

Receptor characteristics
● thousands of copies of integral membrane proteins with unique antigen binding sites
● encoded by genes assembled by VDJ recombination produced without antigen encounter
● the antigen binding site recognizes an antigenic determinant or epitope on the antigen
● binding, by non-covalent forces, is based on complementarity of the surface of the receptor and the surface of the epitope

Binding of receptor to epitope, when accompanied by APC-costimulation, leads to:
stimulation of the B or T cell to leave the G0 phase and enter the cell cycle
● repeated mitosis generates a clone of cells of identical specificity, each coated with an identical antigen receptor.

Cytokine receptors:
Hematopoietin family receptors are dimers or trimers with conserved cysteines in their extracellular domains and a conserved Trp-Ser-X-Trp-Ser sequence. The two subunits are i) cytokine-specific, and ii) signal transducing. Examples are receptors for IL-2 through IL-7 and GM-CSF.
___Colony-stimulating factors (CSFs) are glycoprotein molecules that support growth of hematopoietic colonies. Examples are receptors for interleukin 3 (IL-3), G-CSF, GM-CSF, M-CSF.

Interferon family receptors
Interferons are immune cytokines that are classified, as type I, II, or III, according to the receptors through which they signal. Interferon (INF) family receptors have conserved cysteine residues and include the receptors for IFNα, IFNβ, and IFNγ.

Tumor Necrosis Factor family receptors possess four extracellular domains. Examples are receptors for TNFα, TNFβ (lymphotoxin β, LT), CD40, CD27, CD30, and Fas.

Chemokine family receptors have seven transmembrane helices (serpentine, GRCRs) and interact with G protein. This family includes receptors for IL-8, MIP-1, MCP (monocyte chemoattractant protein), and RANTES (regulated upon activation normal T cell expressed and secreted). Chemokine receptors CCR5 and CXCR4 are used by HIV to preferentially enter either macrophages or T cells.

Tables  Complement Receptors  Fc receptors  Immune Cytokines  Immunoglobulins  Interferons  Cell Adhesion Molecules  Cell signaling  Receptor Tyrosine Kinases (RTKs)  Receptor Signal Transduction  Second Messengers  Scavenger Receptors  Toll-like Receptors 

▲ф ф antibodies ф antigen : antigenic determinant ф APCs : APC costimulation : BCR ф BCR ф B cells ф CD ф cellular response ф clonal selection ф complement system : complement receptors ф complement system ф costimulation : cytokines ~ cytokines ф dendritic cells : epitope : FcR  Fc receptors ф granulocytes ф helper T cell ф hematopoiesis ф humoral immunity : Ig-Fc : IgG  Immune Cytokines  Immunoglobulins □□ Immunology ~ immunoglobulins ф inflammatory response ф immune cytokines ф immune response ф lymphocytes ф lymphoid system ф macrophages ф MHC : opsonins ф pathogens : pathogen associated molecular patterns (PAMP) : pattern recognition receptors (PRR) ф pattern-recognition receptors : phagocyte receptors ф phagocyte ф plasma cells : respiratory burst complement ››› respiratory burst : respiratory burst Fc : scavenger receptors ф signaling ф surface receptors : TCR ф TCR ф T cells : TLR : Toll-like receptors : VDJ recombination ▲ф

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