Iskander Andrew, Bilgi Coskun, Naftalovich Rotem, Hacihaliloglu Ilker, Berkman Tolga, Naftalovich Daniel, Pahlevan Niema
Department of Anesthesiology, Westchester Medical Center, New York Medical College, Valhalla, NY, United States.
Department of Aerospace and Mechanical Engineering, University of Southern California, Los Angeles, CA, United States.
Front Bioeng Biotechnol. 2021 Jun 10;9:678048. doi: 10.3389/fbioe.2021.678048. eCollection 2021.
The association between blood viscosity and pathological conditions involving a number of organ systems is well known. However, how the body measures and maintains appropriate blood viscosity is not well-described. The literature endorsing the function of the carotid sinus as a site of baroreception can be traced back to some of the earliest descriptions of digital pressure on the neck producing a drop in blood delivery to the brain. For the last 30 years, improved computational fluid dynamic (CFD) simulations of blood flow within the carotid sinus have demonstrated a more nuanced understanding of the changes in the region as it relates to changes in conventional metrics of cardiovascular function, including blood pressure. We suggest that the unique flow patterns within the carotid sinus may make it an ideal site to transduce flow data that can, in turn, enable real-time measurement of blood . The recent characterization of the PIEZO receptor family in the sinus vessel wall may provide a biological basis for this characterization. When coupled with other biomarkers of cardiovascular performance and descriptions of the blood rheology unique to the sinus region, this represents a novel venue for bioinspired design that may enable end-users to manipulate and optimize blood flow.
血液粘度与涉及多个器官系统的病理状况之间的关联是众所周知的。然而,身体如何测量和维持适当的血液粘度并未得到充分描述。支持颈动脉窦作为压力感受器部位功能的文献可以追溯到最早关于对颈部进行指压导致脑部血液供应下降的一些描述。在过去30年里,对颈动脉窦内血流的计算流体动力学(CFD)模拟有所改进,这表明人们对该区域与心血管功能的传统指标(包括血压)变化相关的变化有了更细致入微的理解。我们认为,颈动脉窦内独特的血流模式可能使其成为转换血流数据的理想部位,进而能够实时测量血液。最近对窦血管壁中PIEZO受体家族的表征可能为这一特性提供生物学基础。当与心血管性能的其他生物标志物以及窦区域特有的血液流变学描述相结合时,这代表了一个受生物启发的设计新领域,可能使最终用户能够操纵和优化血流。