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Nagaswami, C.

Publications and source records attributed to Nagaswami, C..

2 recordsLinked to original sources

Hormone-induced thrombosis is mediated through non-canonical fibrin(ogen) aggregation and a novel estrogen target in zebrafish

Venous thrombosis is a well-known complication of estrogen exposure, with nearly every woman at risk across her lifetime through contraception, pregnancy, or hormone therapy. Although estrogens alter expression of coagulation factors, the mechanisms that mediate estrogen-induced thrombosis are poorly understood, partially due to the absence of an animal model. Identification of these mediators is central to understanding of hormone-induced pathophysiology, could ascertain patients at higher risk for thrombosis, and pinpoint future therapeutic targets. The zebrafish is characterized by external development, high fecundity, optical transparency, and hemostasis is highly conserved with humans. Through a transgenic line that generates GFP-tagged fibrinogen, we show rapid onset of thrombosis after exposure to various estrogens, but not progestins or testosterone. Thrombi are localized to the venous system with evidence for clot contraction. Thrombosis is only partially impeded by anticoagulants, occurs in the absence of factor VII, factor X, and prothrombin, but is dependent on tissue factor and fibrin(ogen). Finally, targeting of all known estrogen receptors does not eliminate thrombosis. The inability to completely inhibit thrombosis through genetic/pharmacologic anticoagulation or estrogen receptor disruption suggests mechanisms different from canonical coagulation/thrombosis. These studies suggest that estrogen-induced thrombosis is a unique entity distinct from other forms of venous thrombosis.

pathology↗

Hypercholesterolemia aggravates in-stent restenosis in rabbits: a mitigating effect of stent surface modification with CD47-derived peptide.

BackgroundHypercholesterolemia (HC) has previously been shown to augment restenotic response in several animal models and humans. However, the mechanistic aspects of in-stent restenosis (ISR) on a hypercholesterolemic background, including potential augmentation of systemic and local inflammation precipitated by HC are not completely understood. CD47 is a transmembrane protein known to abort crucial inflammatory pathways. Our present studies have examined the interrelation between HC, inflammation, and ISR and investigated the therapeutic potential of stents coated with a CD47-derived peptide (pepCD47) in the hypercholesterolemic rabbit model. Methods and ResultsPepCD47 was immobilized on metal foil coupons and stents using polybisphosphonate coordination chemistry and pyridyldithio/thiol conjugation. The relative abundance of the surface-associated cells on bare metal (BM) and pepCD47 foils exposed to whole rabbit blood showed a 40% inhibition of cell attachment on pepCD47-modified surfaces. Likewise, cytokine expression analyzed in buffy coat-derived cells cultured over the BM and pepCD47-derivatized foils demonstrated a M2/M1 increase with pepCD47 coating. Hypercholesterolemic and normocholesterolemic rabbit cohorts underwent bilateral implantation of BM and pepCD47 stents in the iliac location. Hypercholesterolemia increased neointimal growth in comparison with normocholesterolemic animals at 4 weeks post-stenting. These untoward outcomes were mitigated in the arteries of hypercholesterolemic rabbits treated with pepCD47-derivatized stents. Compared to NC animals, inflammatory cytokine immunopositivity and macrophage infiltration of peri-strut areas increased in HC group animals, and was attenuated in the arteries of hypercholesterolemic rabbits treated with pepCD47 stents. ConclusionsAugmented inflammatory responses triggered by HC underlie severe ISR morphology in hypercholesterolemic rabbits. Blockage of initial platelet and leukocyte attachment to stent struts through CD47 functionalization of stents mitigates pro-restenotic effects of HC.

bioengineering↗