In the context of a given genotype and phenotype, the dynamics of blood clot assembly ultimately dictate: thrombosis; thrombolytic susceptibility of clots; stroke during cardiopulmonary bypass; restenosis after angioplasty; wound healing/inflammation; and pathogenesis of deep vein thrombosis or pulmonary embolism. During blood coagulation, activated platelets and neutrophils from homotypic and heterotypic aggregates through over ten receptor-mediated pathways while triggering thrombin formation and fibrin polymerization. Yet less is known quantitatively about the strengths and kinetics of platelet-platelet and platelet-neutrophil bonding that leads to aggregation or deposition under coagulating whole blood flow conditions or the biochemical reactivity of these aggregates. Furthermore, temporal resolution of events lasting only a few milliseconds is rarely achieved in most experiments. In vitro high speed imaging experiments will utilize human blood cells and proteins for kinetic studies of these interactions under controlled hemodynamic and coagulation conditions. Probability distributions and kinetic data from these experiments will be used to gain improved mechanistic understanding of human blood phenomena from receptor dynamics to vessel occlusion, in the hemodynamic setting. By defining the molecular dynamics of how blood clots are assembled under flow conditions as well as defining the flow regulation of various clotting scenarios, the risks of unregulated clotting, bleeding, and embolism will be more quantitatively understood for a given disease progression.
Specific aims are:
Aim 1 High speed imaging of platelet bonding dynamics that regulate thrombosis in clotting blood with emphasis on bond life dynamics.
Aim 2 High speed imaging of neutrophil bonding dynamics that enhance cellular deposition with emphasis on selectin mediated pathways, erythrocyte interactions and membrane tethering.
Aim 3 Quantifying mechanisms by which neutrophils act as procoagulant participants during clot assembly under defined flow conditions.
Aim 4 Develop a set of generalized computational tools for the study of heterotypically aggregating-reacting blood. Overall, these studies seek to provide fundamental insight into cell-cell interactions and coagulation biochemistry that occur under flow.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL056621-07
Application #
6638455
Study Section
Surgery and Bioengineering Study Section (SB)
Program Officer
Link, Rebecca P
Project Start
1996-07-15
Project End
2005-03-31
Budget Start
2003-04-01
Budget End
2004-03-31
Support Year
7
Fiscal Year
2003
Total Cost
$175,495
Indirect Cost
Name
University of Pennsylvania
Department
Engineering (All Types)
Type
Schools of Engineering
DUNS #
042250712
City
Philadelphia
State
PA
Country
United States
Zip Code
19104
Martinez de Lizarrondo, Sara; Gakuba, Clément; Herbig, Bradley A et al. (2017) Potent Thrombolytic Effect of N-Acetylcysteine on Arterial Thrombi. Circulation 136:646-660
Kamat, Viraj; Muthard, Ryan W; Li, Ruizhi et al. (2015) Microfluidic assessment of functional culture-derived platelets in human thrombi under flow. Exp Hematol 43:891-900.e4
Dolan, Andrew T; Diamond, Scott L (2014) Systems modeling of Ca(2+) homeostasis and mobilization in platelets mediated by IP3 and store-operated Ca(2+) entry. Biophys J 106:2049-60
Stolla, Moritz; Stefanini, Lucia; Roden, R Claire et al. (2011) The kinetics of ?IIb?3 activation determines the size and stability of thrombi in mice: implications for antiplatelet therapy. Blood 117:1005-13
Diamond, Scott L (2010) Tissue factor activity under flow. Thromb Res 125 Suppl 1:S29-30
Chatterjee, Manash S; Purvis, Jeremy E; Brass, Lawrence F et al. (2010) Pairwise agonist scanning predicts cellular signaling responses to combinatorial stimuli. Nat Biotechnol 28:727-32
Parussini, Fabiola; Coppens, Isabelle; Shah, Parag P et al. (2010) Cathepsin L occupies a vacuolar compartment and is a protein maturase within the endo/exocytic system of Toxoplasma gondii. Mol Microbiol 76:1340-57
Chatterjee, Manash S; Denney, William S; Jing, Huiyan et al. (2010) Systems biology of coagulation initiation: kinetics of thrombin generation in resting and activated human blood. PLoS Comput Biol 6:
Maloney, S F; Brass, Lawrence F; Diamond, S L (2010) P2Y12 or P2Y1 inhibitors reduce platelet deposition in a microfluidic model of thrombosis while apyrase lacks efficacy under flow conditions. Integr Biol (Camb) 2:183-92
Oh, Hana; Mohler 3rd, Emile R; Tian, Aiwei et al. (2009) Membrane cholesterol is a biomechanical regulator of neutrophil adhesion. Arterioscler Thromb Vasc Biol 29:1290-7

Showing the most recent 10 out of 35 publications