RBCs Regulate Platelet Function and Hemostasis under Shear Conditions through Biophysical and Biochemical Means

止血 血小板 红细胞压积 化学 纤维蛋白 生物物理学 内科学 免疫学 医学 生物
作者
Debbie Jiang,Katie Houck,Lydia Murdiyarso,H. Higgins,Nicole Rhoads,Sophia K Romero,Rosemary A. Kozar,Angelo Nascimbene,Terry Gernsheimer,Zyrina Alura C. Sanchez,Anand K. Ramasubramanian,Reheman Adili,Jing‐fei Dong
出处
期刊:Blood [Elsevier BV]
卷期号:144 (14): 1521-1531 被引量:4
标识
DOI:10.1182/blood.2024023887
摘要

Red blood cells (RBCs) have been hypothesized to support hemostasis by facilitating platelet margination and releasing platelet-activating factors such as adenosine diphosphate (ADP). Significant knowledge gaps remain regarding how RBCs influence platelet function, especially in (patho)physiologically relevant hemodynamic conditions. Here we present results showing how RBCs affect platelet function and hemostasis in conditions of anemia, thrombocytopenia, and pancytopenia, and how the biochemical and biophysical properties of RBCs regulate platelet function at the blood-vessel wall interface and in the fluid phase under flow conditions. We found that RBCs promoted platelet deposition to collagen under flow conditions in moderate (50  103/L) but not severe (10  103/L) thrombocytopenia in vitro. Reduction in hematocrit by 45% led to increased bleeding in mice with hemolytic anemia. In contrast, bleeding diathesis was observed in mice with a 90% but not with a 60% reduction in platelet counts. RBC transfusion improved hemostasis by enhancing fibrin clot formation at the site of vascular injury in mice with severe pancytopenia induced by total body irradiation. Altering membrane deformability changed the ability of RBCs to promote platelet aggregation. RBC-derived ADP contributed to platelet activation and aggregation in vitro under pathologically high shear stresses, as observed in patients supported by left ventricular assist devices. These findings demonstrate that RBCs support platelet function and hemostasis through multiple mechanisms, both at the blood-vessel wall interface and in the fluidic phase of circulation.
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