Chien S
Department of Applied Mechanics and Engineering Sciences, University of California, San Diego, La Jolla 92093-0412.
Microvasc Res. 1992 Nov;44(3):243-54. doi: 10.1016/0026-2862(92)90084-3.
RBC deformability and PMN-endothelial interaction have been used as two examples to illustrate how recent investigations have generated information from molecules to micromechanics and the microcirculation, and how some of the results can be used to understand the physiology and pathophysiology in man. While this presentation on the molecular basis of microcirculatory events is focused on micromechanics, active work is being conducted to establish the molecular basis of many other microcirculatory processes. These include endothelial transport, vascular smooth muscle activity, neurohumoral control of the microcirculation, and angiogenesis, as well as some of the disease states such as ischemia, shock, and cancer. The field is still in its infancy, and we are only seeing the tip of the iceberg. Further developments in this fertile interdisciplinary field will allow us to gain further understanding of the molecular basis of the microcirculatory processes in health and disease.
(i) The deformability and interactions of blood cells play a significant role in microcirculatory dynamics. (ii) Modern biological approaches have provided insights into the molecular bases of blood cell deformability and interactions. (iii) Understanding of the physiology and pathophysiology of the microcirculation requires the application of knowledge derived from molecular and cell biological studies to the in vivo microcirculatory preparations. (iv) Bridging of the new biology and in vivo microcirculatory investigations represents a great challenge and a golden opportunity for microcirculation researchers.
红细胞变形性和中性粒细胞与内皮细胞的相互作用已被用作两个例子,来说明最近的研究是如何从分子层面到微观力学以及微循环产生信息的,以及如何利用一些结果来理解人体的生理学和病理生理学。虽然本次关于微循环事件分子基础的报告聚焦于微观力学,但目前正在积极开展工作以建立许多其他微循环过程的分子基础。这些过程包括内皮细胞转运、血管平滑肌活动、微循环的神经体液控制和血管生成,以及一些疾病状态,如缺血、休克和癌症。该领域仍处于起步阶段,我们目前看到的只是冰山一角。在这个富有成果的跨学科领域的进一步发展将使我们能够更深入地了解健康和疾病状态下微循环过程的分子基础。
(i)血细胞的变形性和相互作用在微循环动力学中起着重要作用。(ii)现代生物学方法为血细胞变形性和相互作用的分子基础提供了见解。(iii)对微循环生理学和病理生理学的理解需要将分子和细胞生物学研究获得的知识应用于体内微循环制剂。(iv)将新生物学与体内微循环研究相结合,对微循环研究人员来说既是巨大的挑战,也是绝佳的机遇。