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Adhesion molecules in atopic dermatitis: upregulation of alpha6 integrin expression in spontaneous lesional skin as well as in atopen, antigen and irritative induced patch test reactions.

Atopic dermatitis is a lymphocyte-mediated skin disease. We studied the expression of the adhesion molecule alpha6 integrin by immunohistochemistry in spontaneous atopic inflammation as well as during the eliciting phase of atopen (Dermatophagoides pteronyssinus), antigen (nickel sulfate) and irritative (anthralin) induced patch test reactions in atopic skin. Results were compared with nickel sulfate patch test reactions in normal skin. A role of the alpha6 integrin, expressed at the luminal side of blood vessels, for T cell migration in lesional atopic skin was supposed. In normal human skin the alpha6 integrin was weakly expressed by blood vessels and by basal epithelial cells of the epidermis. In acute and chronic lesional skin of patients with atopic dermatitis dramatic upregulation of alpha6 integrin expression was observed on endothelial cells and in the epidermis. The similar pattern of upregulated suprabasal alpha6 integrin expression was established in the patch test reactions 48 h after atopen and antigen application or irritation of the skin without differences in dependence on the eliciting substance. No difference of alpha6 integrin expression was seen between atopic and normal skin. Tumor necrosis factor alpha, interleukin-1, interleukin-4 and interferon gamma play a role in atopic inflammation. Tumor growth factor beta and interleukin-6 are mitogenic/growth factors for keratinocytes. For this reason the effect of these cytokines and of phorbol-12-myristate-13-acetate on the expression level of alpha6 integrin was tested in short-term skin organ culture of normal and atopic skin as well as in keratinocyte cultures. In these assays no cytokines had an effect on alpha6 integrin expression suggesting another mechanism which regulates this integrin. However, the increased expression of alpha6 integrin in the suprabasal epidermis is associated with a T cell influx into the epidermis. We speculate that the alpha6 integrin expression may lead to an epidermotropism of T cells during inflammation.

Anthralin↗

Fc gammaRIIIB stimulation promotes beta1 integrin activation in human neutrophils.

The molecular stimuli involved in receptor-induced integrin activation are still poorly defined. We have investigated the role of receptors for the Fc portion of immunoglobulin G molecules (Fc gammaR) on activation of integrins in human neutrophils. Cross-linking of Fc gammaRIIA induced an increase in surface expression of beta2 integrins but had no effect on beta1 integrins. In contrast, cross-linking of Fc gammaRIIIB not only increased beta2 integrins on the cell surface but also induced beta1 integrin activation, as indicated by an increase in binding to fibronectin and the appearance of an activation epitope detected by the monoclonal antibody 15/7. The Fc gammaRIIIB-induced increase of beta2 integrins required Src-family tyrosine kinases, Syk kinase, and phosphatidylinositol-3 kinase (PI-3K), as the corresponding, specific inhibitors, PP2, Piceatannol, and LY294002, completely blocked it. Contrary to this, Fc gammaRIIIB-induced beta1 integrin activation was not blocked by PP2 or LY294002. It was, however, enhanced by Piceatannol. After Fc gammaRIIIB cross-linking, colocalization of Fc gammaRIIIB and active beta1 integrins was detected on the neutrophil membrane. These data show, for the first time, that cross-linking of Fc gammaRIIIB induces an inside-out signaling pathway that leads to beta1 integrin activation. This activation is independent of Src-family kinases, and PI-3K and may be induced in part by the interaction of Fc gammaRIIIB with beta1 integrins.

Adult↗

The integrin beta tail is required and sufficient to regulate adhesion signaling to Rac1.

Rac1 is a small Rho family GTPase that regulates changes in cell morphology associated with cell spreading and migration. Integrin-mediated adhesion is known to activate Rac1 and to regulate the interaction of Rac1 with downstream effectors. Currently, it is not clear how integrins signal Rac1 activation following cell adhesion. Integrin beta cytoplasmic domains (beta-tails) are known to be required for integrin-mediated cell spreading, and isolated beta tails expressed as tac-beta tail chimeras can inhibit cell spreading indicating that protein interactions with beta tails can regulate this process. Our recent studies demonstrated that the expression of constitutively activated Rac1 can restore cell spreading inhibited by tac beta tail chimeras, suggesting a role for Rac1 in the regulation of cell spreading by beta tails. Hence, we examined the role of beta tails in integrin activation of Rac1. By using recombinant wild-type and mutant integrin heterodimers, we demonstrate that integrin beta tails are required for adhesion to increase Rac1-GTP loading. We demonstrate that clustering tac-beta tail chimeras, on the surface of cells in suspension, activates Rac1. Thus, beta tails are not only required, but also sufficient for integrin-triggered Rac1 activation. Our findings indicate that integrin beta-tails are an important link between integrin engagement and Rac1 signaling, and that protein interactions initiated at beta tails are sufficient for integrins to regulate Rac1 activity.

Cell Adhesion↗

Fundamentally different roles for LFA-1, Mac-1 and alpha4-integrin in neutrophil chemotaxis.

Although the LFA-1, Mac-1 and alpha(4) integrins are required for chemotaxis, it is unknown how they are regulated or what specific role they play. Previously we demonstrated that fMLP and IL-8 induce chemotaxis via the p38 MAPK and phosphoinositide 3-kinase (PI3K) pathways, respectively. Here we show that these chemoattractants also activate and use Mac-1 and LFA-1 in a differential manner during chemotaxis. Using integrin-specific substrata, we demonstrate that cell movement in response to IL-8 is mediated by Mac-1, whereas LFA-1 is required for directional migration. By contrast, chemotaxis to fMLP requires Mac-1 for cell movement, whereas LFA-1 and alpha(4)-integrin are required for directional migration. On serum protein, which contains ligands for LFA-1, Mac-1 and alpha(4)-integrin, chemotaxis to fMLP is dependent on Mac-1, whereas chemotaxis to IL-8 is dependent on LFA-1. These results suggest that Mac-1 is the dominant integrin involved in chemotaxis to fMLP, and LFA-1 is the dominant integrin involved in chemotaxis to IL-8. Consistent with these observations, higher quantities of high-affinity Mac-1 are found on cells chemotaxing to fMLP then on cells chemotaxing to IL-8. Moreover, a much larger quantity of clustered LFA-1 was found on cells migrating to IL-8 compared to cells moving towards fMLP. When cells are presented with competing gradients of fMLP and IL-8, they preferentially migrate towards fMLP and activate/utilize integrins in a manner identical to fMLP alone. Under the same conditions, p38 MAPK inhibition abolishes the preferential migration to fMLP; instead, the cells migrate preferentially towards IL-8. The activation and utilization of integrins under these conditions are consistent with patterns observed with IL-8 alone. Together, these data suggest that fMLP and IL-8 differentially activate integrins for use during chemotaxis, that p38 MAPK is a major mediator in the activation and utilization of integrins, and selective integrin activation occurs during chemotaxis between opposing gradients.

Chemotaxis, Leukocyte↗

Integrin and spectrin homologues, and cytoplasm-wall adhesion in tip growth.

Saprolegnia ferax contains an integrin homologue, identified by crossreactivity with antiserum to the consensus sequence of human/chick/Xenopus cytoplasmic domain beta 1-integrin, which is highly conserved. In non-reduced samples, this integrin was larger than the reported size range for beta 1-integrins, at 178 kDa. In reduced samples, there was a reducing agent-concentration-dependent conversion from 178 kDa to 120 kDa, well within the reported size range for beta 1-integrins in other organisms. The integrin antiserum stained plasma membrane-associated patches, which had a shallow tip-high gradient. This population was reduced and its distribution perturbed in hyphae whose growth rate was reduced by half with tetrapentyl ammonium chloride. The expected integrin function in cytoplasm-cell wall attachment was shown by differential resistance to plasmolysis-induced separation, which positively correlated with integrin abundance. However, when there was separation, remnants of cytoplasm stayed attached to the wall. These were enriched in actin and integrin. Saprolegnia also has a spectrin homologue identified by crossreactivity with an erythrocyte spectin antibody, which has a size (246 kDa) similar to other organisms. This spectrin had a superficially similar distribution to that of integrin, but it did not participate in cytoplasm-wall anchoring. These data suggest that Saprolegnia hyphae have a plasma membrane which is strengthened by spectrin, and cytoplasm which is attached to the cell wall by integrin.

Animals↗

Integrin alpha 2 beta 1-dependent EGF receptor activation at cell-cell contact sites.

Certain integrins including alpha 2 beta 1 and alpha 3 beta 1 localize to intercellular binding sites, and thus may participate in cell-cell interactions. We demonstrated here the physical and functional associations of integrin alpha 2 beta 1 with epidermal growth factor receptor (EGFR) at intercellular adhesion sites. Immunoprecipitation with anti-integrin alpha 2 antibodies or anti-integrin beta 1 antibody resulted in preferential coprecipitation of EGFR from A431 cell lysates, while anti-EGFR antibody coprecipitated integrin alpha 2 beta 1. Chemical crosslinking confirmed the association of integrin alpha 2 beta 1 and EGFR. Colocalization of integrin alpha 2 beta 1 and EGFR at cell-cell contact sites was observed by double immunofluorescence staining of A431 cells. EGF-induced EGFR stimulation did not affect the association of integrin alpha 2 beta 1 and EGFR. However, immunostaining with the antibody specific to activated-EGFR revealed that EGFR localized at cell-cell contact sites are phosphorylated even in serum-depleted conditions, while EGFR localized to other sites is totally dephosphorylated in the same conditions. The EGFR phosphorylation in cell-cell contact sites observed in a serum-depleted culture was abrogated with a function-blocking antibody of integrin alpha 2, but not with a non-function-blocking alpha 2 antibody or function-blocking alpha 3 antibody. Moreover, the EGFR phosphorylation in serum-depleted conditions was not observed in suspended cells, or largely abrogated in sparse cells, indicating that cell-cell adhesion is required for EGFR phosphorylation. These results indicate that integrin alpha 2 beta 1 not only physically associates with EGFR but also functions in serum-independent EGFR activation at cell-cell contact sites. The present results shed a new light on the role of intercellular integrins in cell-cell interactions.

Cell Communication↗

Integrin cytoplasmic domain-binding proteins.

Integrins are a large family of cell surface receptors that mediate cell adhesion and influence migration, signal transduction, and gene expression. The cytoplasmic domains of integrins play a pivotal role in these integrin-mediated cellular functions. Through interaction with the cytoskeleton, signaling molecules, and other cellular proteins, integrin cytoplasmic domains transduce signals from both the outside and inside of the cell and regulate integrin-mediated biological functions. Identification and functional analyses of integrin cytoplasmic domain-binding proteins have been pursued intensively. In recent years, more cellular proteins have been reported to directly interact with integrin cytoplasmic domains and some of these interactions may play important roles in integrin-mediated biological responses. Integrin (&bgr;) chains, for example, interact with actin-binding proteins (e.g. talin and filamin), which form mechanical links to the cytoskeleton. These and other proteins (e.g. FAK, ILK and novel proteins such as TAP20) might also link integrins to signaling mechanisms and, in some cases (e.g. JAB1) mediate integrin-dependent gene regulation.

Animals↗

Understanding the molecular basis for differential binding of integrins to collagen and gelatin.

Integrin-mediated cell adhesion plays a central role in cell migration and signaling. Overexpression of integrins is also associated with cancer invasion and metastasis. Although a number of problems in integrin-matrix interactions have been studied in detail, the molecular specificity, which increases integrin adhesion to native collagen but results in poor integrin-gelatin interaction, is not understood. In this report, we study the role of individual amino acids in integrin-collagen and integrin-gelatin interactions using long-term (>100 ns) molecular simulations. The results, which are force-field independent, show that denatured collagen induces helical conformations in integrin amino acids and significantly reduces the poly-proline II content, which stabilizes the integrin-collagen interactions. Our simulations provide a possible explanation of the molecular specificity in integrin binding and suggest new targets for regulating integrin-mediated invasion and metastasis.

Binding Sites↗

Novel integrin antagonists derived from thrombospondins.

Specific antagonists have been successfully developed for several different integrins. Clinical trials have been initiated to study therapeutic uses of these inhibitors in cancer, thrombosis, and inflammatory diseases. Most efforts to date have focused on the platelet integrin alphaIIbbeta3, endothelial alphavbeta3, and the leukocyte integrin alpha4beta1. However, the integrin family contains additional members with interesting tissue specificities and functional properties that could also be useful molecular targets for disease intervention. In many cases, specific recognition motifs for these integrins have not been identified, which has precluded development of specific antagonists. Our recent studies of thrombospondin-1 and thrombospondin-2 recognition by integrins have revealed novel motifs for alpha3beta1 and alpha6beta1 integrins as well as new motifs recognized by the well studied alpha4beta1 integrin. These three integrins play distinct roles in angiogenesis and its modulation by thrombospondins. This review will discuss recent insights into the specificities of alpha3beta1 and alpha6beta1 integrins, their functions in angiogenesis, and potential applications for antagonists of these integrins and of alpha4beta1 to control pathological angiogenesis and other diseases.

Amino Acid Sequence↗

Integrins: expression, modulation, and signaling in fertilization, embryogenesis and implantation.

Normal morphogenesis and differentiation depend on the coordination of cell-cell and cell extracellular matrix (ECM) interactions. Integrins are a class of adhesion molecules that participate in the cell-cell and cell-substratum interactions and are present on essentially all human cells. All mammalian eggs express integrins at their surface, and the integrin alpha 6 beta 1 serves as a sperm receptor, mediating sperm-egg binding. In addition, certain integrin moieties appear to be regulated to within the cycling endometrium; the expression of beta 1 integrins in the early proliferative phase is restricted to the glandular epithelium, whereas stromal cells in the midsecretory phase also express beta 1 integrins. The expression of beta 1 integrins increases at the time of implantation and remains high in decidua during early pregnancy. A disruption of the integrin expression is associated with certain types of infertility in women. The apical surface of the mural trophectoderm does indeed possess functional integrins, and trophoblast interactions with ECM proteins depend largely on the integrin family of adhesion receptors. Thus, integrins play particularly important roles in fertilization and embryogenesis, including the process of implantation.

Animals↗

The effect of interferon-alpha on beta-1 integrin mediated adhesion and growth regulation in chronic myelogenous leukemia.

There is considerable interest in understanding the mechanisms by which interferon-alpha can induce hematological and cytogenetic remissions and prolong survival in patients with chronic myelogenous leukemia (CML). There is evidence that the selective expansion and growth advantage of malignant hematopoietic progenitors in CML may be related, at least in part, to their deficient responsiveness to normal negative regulation by the marrow stromal microenvironment and that interferon-alpha may restore normal hematopoiesis in CML by restoring normal microenvironmental regulation of malignant CML progenitor proliferation. In normal hematopoiesis, beta1 integrin receptors mediate progenitor adhesion to stroma. Stimulation of beta1 integrin receptors on normal progenitors results in transmission of proliferation inhibitory signals. CML progenitors demonstrate defective beta1 integrin receptor-mediated adhesion and regulation of proliferation. We have shown that interferon-alpha can restore both beta1 integrin mediated adhesion as well as integrin-mediated proliferation inhibition of CML progenitors. Interferon-alpha enhances CML integrin function through direct effects on CML progenitors as well as indirect effects on stroma. Restored beta1 integrin-mediated regulation of malignant CML progenitor proliferation may result in restoration of normal hematopoiesis in CML patients treated with interferon-alpha. There is evidence that abnormal integrin mediated signaling in CML progenitors may result from abnormalities in integrin-cytoskeletal interactions induced by the p210BCR/ABL tyrosine kinase. Although the exact mechanisms by which interferon-alpha restores normal integrin signaling in CML are not known, preliminary studies indicate that this may at least partly be related to the restoration of normal integrin-cytoskeletal interactions. The above studies offer some insights into the mechanisms of abnormal hematopoietic regulation in CML and the mechanisms by which interferon-alpha may restore normal hematopoiesis, in this disease.

Antineoplastic Agents↗

Different integrins mediate cell spreading, haptotaxis and lateral migration of HaCaT keratinocytes on fibronectin.

Collaborative role of various fibronectin-binding integrins (alpha5beta1, alphavbeta1 and alphavbeta6) as mediators of cell adhesion and migration on fibronectin was studied using cultured HaCaT keratinocytes. This cell line spontaneously expressed all three fibronectin-binding integrins. In addition, the expression of alphavbeta6 integrin was strongly and specifically upregulated by transforming growth factor-beta1 (TGFbeta1) whereas the amount of other integrins remained practically unchanged on the cell surface. Adhesion, spreading and motility of HaCaT keratinocytes on fibronectin were promoted by TGFbeta1. Based on antibody blocking experiments, both untreated and TGFbeta1-treated HaCaT cells used alphavbeta6 integrin as their main fibronectin receptor for cell spreading. In contrast to TGFbeta1-treated cells, the untreated cells also needed alpha5beta1 integrin for maximal cell spreading on fibronectin. Combinations of antibodies blocking both of these receptors totally prevented spreading of both untreated and TGFbeta1-treated cells. Haptotactic motility of individual HaCaT cells through fibronectin-coated membranes was again mainly dependent on alphavbeta6 integrin, while alphavbeta1 and alpha5beta1 integrins played a lesser role both in untreated and TGFbeta1-treated HaCaT cells. However, unlike haptotaxis, lateral migration of HaCaT cell sheet was mainly mediated by beta1 integrins, and alphavbeta6 integrin showed a minor role. The migration process appeared to involve a number of beta1 integrins that could adaptively replace each other when blocking antibodies were present. Thus, keratinocytes appear to use different fibronectin receptors for different functions, such as cell spreading, haptotaxis and lateral migration. The cells can also adapt to a situation where one receptor is unfunctional by switching to another receptor of the same ligand.

Antigens, Neoplasm↗

Integrin structure.

The integrins are a family of alpha,beta heterodimeric receptors that mediate dynamic linkages between extracellular adhesion molecules and the intracellular actin cytoskeleton. Integrins are expressed by all multicellular animals, but their diversity varies widely among species; for example, in mammals, 19 alpha and 8 beta subunit genes encode polypeptides that combine to form 25 different receptors, whereas the Drosophila and Caenorhabditis genomes encode only five and two integrin alpha subunits respectively. Thousands of studies over the last two decades have investigated the molecular, cellular and organismal basis of integrin function. Gene deletion has demonstrated essential roles for almost all integrins, with the defects suggesting widespread contributions to both the maintenance of tissue integrity and the promotion of cellular migration. Integrin-ligand interactions are now considered to provide physical support for cells in order to maintain cohesion, to permit the generation of traction forces to enable movement, and to organize signalling complexes to modulate differentiation and cell fate. Animal-model studies have also shown that integrins contribute to the progression of many common diseases, and have implicated them as potential therapeutic targets. The use of anti-integrin monoclonal antibodies and ligand-mimetic peptides has validated this suggestion for inflammatory, neoplastic, traumatic and infectious conditions. Thus, to understand more about the mechanisms underlying tissue organization and cellular trafficking, and to identify approaches for regulating these processes in disease, there is intense interest in determining the molecular basis of integrin function. It is important to state at the outset that the tertiary structure of the integrin dimer is unknown. Our current understanding of the molecular basis of integrin function is therefore compiled from the results of a large number of studies that have employed a wide range of complementary technologies.

Actins↗

[Expression of integrin-alpha 3 mRNA in meningiomas and its biological significance].

BACKGROUND & OBJECTIVE: It was reported that reported that changes of the expression of integrins played critical roles in differentiation, proliferation, and invasion of lung carcinoma, melanoma, and glioma. However, no data was available on the expression of integrins in meningiomas. The aim of this study was to investigate the expression of integrin-alpha 3 in meningiomas and its biological significance. METHODS: Integrin-alpha 3 subunit was detected using in situ hybridization in meningiomas(36 cases), normal dura(2 cases), and arachnoid tissue(3 cases). SABC immunohistochemical assay was used to determine the expressions of Ki-67 nuclear antigen. RESULTS: Expressions of integrin-alpha 3 mRNA in benign, atypical, and malignant meningiomas were 2.52 +/- 0.362, 1.75 +/- 0.316, and 1.42 +/- 0.633, respectively. The expression levels of integrin-alpha 3 mRNA were significantly lower in the atypical and malignant meningiomas than in the benign meningiomas(P < 0.05, < 0.01). The integrin-alpha 3 mRNA expression in those with invasive biological behavior was lower than that in those without invasion(1.63 +/- 0.462 vs 2.61 +/- 0.526, P < 0.01). Moreover, the expression of integrin-alpha 3 mRNA was inversely associated with Ki-67 labeling index. CONCLUSIONS: Integrin-alpha 3 sub-unit participates the process of regulating growth of meningiomas. The proliferational activity and malignant grade of meningiomas correlates to decreased expression of integrin-alpha 3 subunit, and the down-regulation of integrin-alpha 3 mRNA is associated with the invasive biological behavior in meningiomas.

Adolescent↗

beta(3)-Integrin cytoplasmic binding proteins.

Integrins are cell-surface adhesion receptors that play an important role in mediating numerous physiological processes,including inflammation, migration, adhesion, and proliferation. Integrin regulation by events within the cell has been termed "inside-out " signaling; this is a capacity that is unique to integrin receptors. As is typical of other cell-surface receptors, integrins can also transduce signals from outside the cell into the cytoplasm on binding extracellular ligands ("outside-in signaling "). Integrins are composed of an alpha and a beta subunit, which form a heterodimer. The beta(3)-integrin family consists of alpha(IIb)beta(3)-found on platelets and megakaryocytes, and the more widely distributed alpha(v)beta(3). beta Subunits consist of a large extracellular domain, a single transmembrane segment, and a relatively short cytoplasmic tail. The cytoplasmic domains do not contain intrinsic tyrosine kinase activity, and therefore signaling occurs primarily via recruitment of intracellular signaling molecules. Integrins form transmembrane connections, and the interactions between integrin cytoplasmic domains, intracellular factors (cytoplasmic proteins and intracellular signaling pathways), and membrane-anchored proteins play an important role in integrin-mediated events. There are at least 21 proteins that associate with integrin beta tails to regulate cell motility, proliferation, differentiation, and apoptosis. In this review, we will focus on 10 of these proteins and their function in integrin-mediated events.

Animals↗

Beta 1 integrin expression on human small cell lung cancer cells.

The integrins are a supergene family of cell surface glycoproteins that promote cellular adhesion. Each member of the family is an alpha/beta heterodimer composed of a distinct alpha subunit noncovalently linked to one of at least six common beta subunits. These include the six beta 1 integrins (alpha 1-6/beta 1) which represent receptors for extracellular matrix proteins and the three beta 2 integrins (alpha L, alpha M, alpha X/beta 2) that are expressed by leukocytes and which bind to C3bi and/or endothelial ligands. Recently, it was reported that certain human tumor cells express the beta 1 integrins and that small cell lung cancer (SCLC) cell lines express the beta 2 integrin Mo1 (alpha M/beta 2). To extend these initial observations, we examined SCLC cell lines for integrin expression at the glycoprotein and mRNA levels and assessed the potential function of these integrins in promoting SCLC adhesion. An indirect immunofluorescence analysis of five SCLC cell lines (NCI-H187, H345, H146, H209, and N417) using alpha and beta subunit-specific monoclonal antibodies demonstrated the uniform expression of beta 1 (beta 1 much greater than beta 2 greater than or equal to beta 3 congruent to beta 4). Among the beta 1-associated alpha subunits, alpha 3 was uniformly expressed at high surface density by all five cell lines (as confirmed in H345 cells by sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis of anti-beta 1 and anti-alpha 3 immunoprecipitates), while alpha 5 was not detected. The leukocyte (beta 2-associated) alpha M and alpha L subunits were also variably expressed by the five lines. Consistent with the surface expression of beta 1 integrin gene products, beta 1 (but not beta 2) mRNA was detected in SCLC cells by Northern blot analysis. That beta 1 integrin expression was involved in SCLC adhesion was suggested by the adherence of H345 cells to laminin, a known ligand for the alpha 3 beta 1 integrin. Moreover, an antibody specific for the beta 1 subunit inhibited this adhesion, indicating that the beta 1 subunit promotes adhesion to laminin. We conclude that beta 1 integrin molecules are expressed by human SCLC cells (with uniform expression of alpha 3/beta 1) and promote their adhesion to laminin.

Antibodies, Monoclonal↗

[Integrins and reproduction].

Integrins are a large family of cell surface proteins that serve as receptors, involved in cell-cell and cell-matrix interactions. These receptors are of fundamental importance in the organization of tissues and organs. Integrins participate in a complex apparatus anchoring cells to their surrounding and transducing signals into the cells. These signals regulate many important aspects of cell behaviour, including growth, differentiation and phenotype. Their roles in reproductive performance begin to be explored. It seems that all stages of reproduction involve integrins. During gametogenesis integrins let the gamete to receive the external informations. During fertilization integrins seem dramatically involved. Integrins are expressed in human endometrium. Endometrium integrin molecules appear to be regulated within the cycling endometrium and disruption of integrin expression may be associated with decreased uterine receptivity and infertility. Integrins are present on trophoblaste. A specific integrin type is expressed on invasive trophoblast. Low or absent expression of this specific type should be encountered during pre eclampsia. Probably the knowledge of these integrins will provide to the clinicians new diagnosis tools evaluating the quality of endometrium and of embryos.

Animals↗

Immunolocalization of integrins in proliferative retinal membranes.

PURPOSE: Integrins are cell surface adhesion molecules that serve as receptors for extracellular matrix components or for other cells. Integrins help regulate processes such as cell proliferation, migration, and differentiation. These processes are thought to have fundamental roles in the pathogenesis of proliferative retinal membranes in diseases such as proliferative vitreoretinopathy (PVR) and proliferative diabetic retinopathy (PDR). Therefore, the authors sought to determine the expression pattern of integrins in human proliferative membranes. METHODS: Tissue was obtained from two patients with PVR, two with PDR, and one subretinal neovascular membrane from a patient with presumed ocular histoplasmosis. Integrins were detected with an avidin-biotin-complex immunohistochemical technique using nine different monoclonal antibodies specific for alpha subunits 2, 3, 4, 5, 6, and V, and beta subunits 1, 2, and 3. RESULTS: All integrin subunits studied were detectable to varying degrees in proliferative membranes. beta 1 and alpha 6 were especially prominent at the edges of most PVR and PDR membranes. Pigmented cells expressed up to nine different integrin subunits, in contrast to normal RPE cells, which immunostained for only alpha 4 and beta 2. Proliferative diabetic retinopathy vessels expressed all nine integrin subunits examined, including alpha 4, which was poorly expressed in vessels of nondiabetic retinas. CONCLUSIONS: Integrin subunits are readily detectable in pathologic membranes. Both PVR and PDR are associated with altered integrin expression in vascular endothelium and pigmented cells. The distribution of integrins at the edge of a membrane suggests a role in the growth or contraction of the membrane, presumably by participating in the interaction between cells and substances such as vitreous collagen. Therefore, integrin antagonists may hold promise for the treatment of proliferative retinopathies.

Adult↗