This is a competitive renewal of a SCOR in Hemostatic and Thrombotic Diseases by a highly-interactive group of investigators at the Mount Sinai School of Medicine. The program is comparised of 5 projects and 3 cores. Findings by the SCOR investigators and other laboratories have established the presence of circulating tissue factor (TF). Our program, in particular has demonstrated that this TF is active and can initiate thrombus formation. The project of Dr. Fuster will measure circulating TF in patients with risk factors for atherosclerosis and thrombosis and will examine the effect of risk factor reduction on TF levels and thrombogenicity. Dr. Fuster has found collaborations with investigators that will provide samples from several important clinical studies. Dr. Nemerson's project will explore the novel finding that leukocytes can transfer TF to the surface of platelets and will attempt to identify the platelet """"""""TF receptor."""""""" Based on the finding that large thrombi stain diffusely the TF, Dr. Nemerson will develop mathematical models to examine the diffusion of molecules within the thrombus. Dr. Taubman's project will study the role of smooth muscle cells (SMC) and cardiomyocytes in releasing TF into the microcirculation after angioplasty and myocardial infarction. He will employ pig models of coronary artery injury and infarction and novel transgenic mice in which TF is conditionally knocked out in SMC and cardiomyocytes to examine the role of TF in mediating infarct size and intimal hyperplasia. These closely- linked projects promise to establish new paradigms for TF generation and biology. A second major focus of the SCOR is on platelet-leukocyte interactions. The project of Dr. Harpel will examine the role of I-309, a CC-chemokine, in regulating leukocyte accumulation in arterial injury. His findings that platelets possess I-309 has led to the novel hypothesis that the release of I-309 by platelets accumulating at the site of injury is critical to the early recruitment of leukocytes. He will also examine the role of I-309 in mediating endothelial cell migration and vasculogenesis. Dr. Coller's project will undertake a detailed examination of the interaction between leukocytes and platelets in regulating arterial thrombosis and leukocyte transmigration. His project involves several recently-developed models of thrombosis and novel transgenic animals. In support of this project will be a Pathology Core, a Thrombosis Core.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Specialized Center (P50)
Project #
5P50HL054469-07
Application #
6498920
Study Section
Special Emphasis Panel (ZHL1-CSR-F (S1))
Program Officer
Ganguly, Pankaj
Project Start
1996-03-01
Project End
2006-01-31
Budget Start
2002-03-01
Budget End
2003-01-31
Support Year
7
Fiscal Year
2002
Total Cost
$1,925,562
Indirect Cost
Name
Mount Sinai School of Medicine
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
114400633
City
New York
State
NY
Country
United States
Zip Code
10029
Johnson-Huang, Leanne M; Suárez-Fariñas, Mayte; Sullivan-Whalen, Mary et al. (2010) Effective narrow-band UVB radiation therapy suppresses the IL-23/IL-17 axis in normalized psoriasis plaques. J Invest Dermatol 130:2654-63
Choi, Brian G; Vilahur, Gemma; Zafar, M Urooj et al. (2008) Selective estrogen receptor modulation influences atherosclerotic plaque composition in a rabbit menopause model. Atherosclerosis 201:76-84
Worthley, Stephen G; Helft, Gerard; Corti, Roberto et al. (2007) Statin therapy alone and in combination with an acyl-CoA:cholesterol O-acyltransferase inhibitor on experimental atherosclerosis. Pathophysiol Haemost Thromb 36:9-17
Corti, Roberto; Osende, Julio; Hutter, Randolph et al. (2007) Fenofibrate induces plaque regression in hypercholesterolemic atherosclerotic rabbits: in vivo demonstration by high-resolution MRI. Atherosclerosis 190:106-13
Choi, Brian G; Novoselsky, Constantin A; Vilahur, Gemma et al. (2007) Validation study of a semi-automated program for quantification of atherosclerotic burden. J Cardiovasc Magn Reson 9:615-20
White, R James; Meoli, David F; Swarthout, Robert F et al. (2007) Plexiform-like lesions and increased tissue factor expression in a rat model of severe pulmonary arterial hypertension. Am J Physiol Lung Cell Mol Physiol 293:L583-90
Hathcock, James; Rusinova, Elena; Vaananen, Heikki et al. (2007) Lipid-bound factor Xa regulates tissue factor activity. Biochemistry 46:6134-40
Khorana, Alok A; Ahrendt, Steven A; Ryan, Charlotte K et al. (2007) Tissue factor expression, angiogenesis, and thrombosis in pancreatic cancer. Clin Cancer Res 13:2870-5
Pyo, Robert T; Sui, Jinliang; Dhume, Ashwini et al. (2006) CXCR4 modulates contractility in adult cardiac myocytes. J Mol Cell Cardiol 41:834-44
Bogdanov, V Y; Kirk, R I; Miller, C et al. (2006) Identification and characterization of murine alternatively spliced tissue factor. J Thromb Haemost 4:158-67

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