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Fleur Bossi

Publications and source records attributed to Fleur Bossi.

6 recordsLinked to original sources

EMILIN1 represents a major stromal element determining human trophoblast invasion of the uterine wall.

The detection of EMILIN1, a connective tissue glycoprotein associated with elastic fibers, at the level of the ectoplacental cone and trophoblast giant cells of developing mouse embryos (Braghetta et al., 2002) favored the idea of a structural as well as a functional role for this protein in the process of placentation. During the establishment of human placenta, a highly migratory subpopulation of extravillous trophoblasts (EVT), originating from anchoring chorionic villi, penetrate and invade the uterine wall. In this study we show that EMILIN1, produced by decidual stromal and smooth muscle uterine cells, is expressed in the stroma and in some instances as a gradient of increasing concentration in the perivascular region of modified vessels. This distribution pattern is consistent with the haptotactic directional migration observed in in vitro functional studies of freshly isolated EVT and of the immortalized HTR-8/SVneo cell line of trophoblasts. Function-blocking monoclonal antibodies against alpha4-integrin chain and against EMILIN1 as well as the use of EMILIN1-specific short interfering RNA confirmed that trophoblasts interact with EMILIN1 and/or its functional gC1q1 domain via alpha4beta1 integrin. Finally, membrane type I-matrix metalloproteinase (MT1-MMP) and MMP-2 were upregulated in co-cultures of trophoblast cells and stromal cells, suggesting a contributing role in the haptotactic process towards EMILIN1.

Cell Adhesion↗

Thrombus formation induced by antibodies to beta2-glycoprotein I is complement dependent and requires a priming factor.

We monitored the number of intravascular platelet-leukocyte aggregates (PLAs) and thrombotic occlusions (TOs) by intravascular microscopy in the mesentery of rats receiving antiphospholipid (aPL) immunoglobulin G (IgG) purified from the sera of patients with antiphospholipid syndrome. aPL IgG had no procoagulant effect, but it caused rapid endothelial deposition of fibrinogen, followed by PLA and TO in rats receiving an intraperitoneal injection of bacterial lipopolysaccharide 3 hours before IgG infusion. Anti-beta2-glycoprotein I-depleted aPL IgG failed to induce PLAs and TOs. C3 and C9 colocalized with aPL IgG on the mesenteric vessels. The number of PLAs and TOs was markedly reduced in C6-deficient rats and in animals treated with anti-C5 miniantibody, suggesting the contribution of the terminal complement (C) complex to the aPL antibody-mediated intravascular thrombosis. In conclusion, our data indicate that antibodies to beta2-glycoprotein I trigger coagulation subsequent to a priming proinflammatory factor and that the terminal C complex is the main mediator of the coagulation process.

Animals↗

VE-cadherin is a critical molecule for trophoblast-endothelial cell interaction in decidual spiral arteries.

Fetal cytotrophoblasts colonize the decidual spiral arteries during pregnancy and partially replace the endothelium by an as yet unknown mechanism. To clarify this issue, we cocultured trophoblast cells (TCs) and decidual endothelial cells (DECs) isolated from first trimester placentae and found by electron microscopic analysis that TCs adhered to DECs and migrated through the interendothelial junctions within 24 h. Since extravillous TCs were shown by FACS analysis to express vascular-endothelial (VE)-cadherin and platelet endothelial cell adhesion molecule-1 (PECAM)-1, we investigated the role of these junctional molecules in TC adhesion to DECs and transendothelial migration of cytotrophoblasts. Both VE-cadherin and PECAM-1 were present at the contact sites between TCs and DECs in decidual sections. TC adhesion and migration were markedly inhibited by mAbs to VE-cadherin and marginally by mAb to PECAM-1. Increased expression of VE-cadherin was observed at the contact areas between TCs and DECs, whereas PECAM-1 was found to be redistributed from intercellular junctions. The induction of apoptosis of DECs by TCs, as the mechanism responsible for their replacement, was ruled out by the negative staining with TUNEL of DECs cocultured with TCs and the absence of DNA fragmentation. In conclusion, VE-cadherin is involved in transendothelial migration of TCs, and replacement of DECs by TCs is not the result of apoptosis.

Antigens, CD↗

The complement system at the fetomaternal interface.

The placenta has a unique structural organization that allows fetal cells expressing paternal alloantigens to establish a peaceful cohabitation with the maternal immune system. The fetal cells are continuously exposed to the humoral and cellular components of the maternal immune system present in the maternal blood that circulates in the intervillous space and in the decidual vessels. This review deals with the role played by the complement system at the placental level both in physiological and pathological conditions of pregnancies. Complement components found in the placental tissue derive to a large extent from blood circulating in placental vessels. However, some complement components may also be produced locally by macrophages and other cell types. Deposition of complement components at tissue level is usually found in association with inflammatory diseases. This is not the case in placentae in which deposits of complement components can also be documented in physiological conditions not resulting in fetal damage. Protection of the semiallogenic human conceptus against maternal complement activation products is achieved by surface expression of complement regulators that act at different steps of the complement sequence. These complement regulators are localized in a strategic position on the surface of villous trophoblast protecting the fetus from the damage that may derive from uncontrolled complement activation. However, pathological conditions of pregnancies may lead to deposition of a higher amount of complement activation products that may exceed the protection of local complement regulators.

Animals↗

Platelet-activating factor and kinin-dependent vascular leakage as a novel functional activity of the soluble terminal complement complex.

The infrequent occurrence of septic shock in patients with inherited deficiencies of the terminal complement components experiencing meningococcal disease led us to suspect that the terminal complement complex is involved in vascular leakage. To this end, the permeabilizing effect of the cytolytically inactive soluble terminal complement complex (SC5b-9) was tested in a Transwell system measuring the amount of fluorescein-labeled BSA (FITC-BSA) leaked through a monolayer of endothelial cells. The complex caused increased permeability to FITC-BSA after 15 min as opposed to the prompt response to bradykinin (BK). The effect of SC5b-9 was partially reduced by HOE-140 or CV-3988, two selective antagonists of BK B2 and platelet-activating factor receptors, respectively, and was completely neutralized by the mixture of the two antagonists. Also, DX-88, a specific inhibitor of kallikrein, partially inhibited the activity of SC5b-9. The permeabilizing factor(s) released after 30 min of incubation of endothelial cells with SC5b-9 caused a prompt leakage of albumin like BK. Intravital microscopy confirmed both the extravasation of circulating FITC-BSA across mesenteric microvessels 15 min after topical application of SC5b-9 and the complete neutralization by the mixture of HOE-140 and CV-3988. SC5b-9 induced opening of interendothelial junctions in mesenteric endothelium documented by transmission electron microscopy.

Animals↗

Placental trophoblast and endothelial cells as target of maternal immune response.

Pregnancy is a unique physiologic condition that guarantees the survival of the semiallogenic embryo during the long period of gestation. The placenta plays a key role in the maintenance of local tolerance and allows the mother to accept the embryo until completion of pregnancy. The complex process of tolerance accompanying the survival of the foetus is controlled at the embryo-maternal interface by factors deriving from decidualized endometrium and from the trophoblast itself. Trophoblasts develop various strategies to evade the damaging attack by the maternal immune response including expression of non-classical MHC class I antigens and of complement regulatory proteins. Also, cytokines released at the feto-maternal interface play an important role in regulating embryo survival controlling not only the maternal immune response but also angiogenesis and vascular remodelling. The delicate equilibrium established between the mother and the foetus can be compromised in pathological condition of pregnancy as a result of humoral and/or cellular response of the mother against trophoblast antigens leading to spontaneous miscarriage. Cytotoxic cells and antibodies to trophoblast and endothelial cells are frequently found in patients with recurrent spontaneous abortion. This review article focuses on the delicate equilibrium established at the feto-maternal interface during pregnancy examining the various strategies devised by the embryo to evade the maternal immune attack, and the pathological conditions in which this equilibrium is compromised leading to serious complications of pregnancy.

Complement Activation↗