Micro-Viscometric Studies of the ESL in Microvessels
Micro-Viscometric Studies of the ESL in Microvessels
批准号:
7072236
负责人:
EDWARD DAMIANO
金额:
$29.42万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-03-10 至 2008-02-29
中文摘要
本研究的长期目标是研究微血管内皮上表达的内皮表面层(ESL)对小静脉和小动脉微血管血流动力学的影响,以及其作为小静脉自由血流中白细胞自发滚动的屏障的作用。ESL在微血管生理学的广泛领域的含义最近已经在我们的实验室和其他实验室的工作中建立起来。这项研究的结果将解决微血管流动阻力和炎症领域的基本生理功能,因此将直接影响健康和人类状况。在推进我们对ESL及其在微血管生理学中的作用的理解方面,由于在体内可视化和询问结构方面的实验挑战,进展缓慢。然而,最近我们已经开发并验证了一套全面的新型分析工具的准确性,这些工具能够检测ESL的存在并揭示其在体内的流体动力学相关厚度。利用微血管内血流的微颗粒图像测速数据,结合我们的新微粘度法,精确分析微血管血流动力学。我们将(1)测试ESL是否增加微血管的血流阻力,并定量确定小鼠体内骨骼肌小静脉中的Fahraeus和Fahraeus- lindqvist效应,(2)测试体内小动脉中是否存在与流体动力学相关的ESL,(3)测试生理上典型的ESL是否存在于培养内皮细胞的融合单层表面。(4)测试ESL是否作为一种抗炎屏障,在体内阻止毛细血管后小静脉自由流动的白细胞的初级捕获和随后的滚动。我们的微观粘度测量方法将广泛用于解释结果和指导实验研究。利用我们最近开发的新工具,我们准备明确解决微血管血流动力学中长期存在的不确定性,对培养的内皮细胞单层上ESL的存在进行必要的测试,并获得炎症状态下ESL潜在屏障功能的新见解。
英文摘要
The long-term goal of this research is to study the endothelial surface layer (ESL) expressed on vascular endothelium of microvessels in the context of its influence on microvascular hemodynamics in venules and arterioles and its role as a barrier to spontaneous rolling of leukocytes from the free stream in venules. The implications of the ESL across a broad range of fields in microvascular physiology have recently been established in work from our laboratories and in that of others. Results of this research will address basic physiologic function in the areas of microvascular flow resistance and inflammation and will thus have direct bearing on health and the human condition. Progress on advancing our understanding of the ESL and its role in microvascular physiology has been slow owing to experimental challenges in visualizing and interrogating the structure in vivo. However, recently we have developed and verified the accuracy of a comprehensive set of novel analytical tools that are capable of detecting the presence of the ESL and revealing its hydrodynamically relevant thickness in vivo. Using micro-particle image velocimetry data of blood flow in microvessels in vivo, and our new microviscometric method for accurately analyzing microvascular hemodyna.mics, we will (1) test whether the ESL increases resistance to blood flow in microvessels and quantitatively determine the Fahraeus and Fahraeus-Lindqvist effects in mouse skeletal-muscle venules in vivo, (2) test whether a hydrodynamically relevant ESL exists on arterioles in vivo, (3) test whether a physiologically typical ESL exists on the surface of a confluent monolayer of cultured endothelial cells, and (4) test whether the ESL acts as an anti-inflammatory barrier that prevents primary capture and subsequent rolling of leukocytes from the free stream in post-capillary venules in vivo. Our micro-viscometric method will be used extensively to interpret results and direct the experimental studies. With the new tools we have recently developed, we are poised to definitively resolve long-standing uncertainties in microvascular hemodynamics, conduct essential tests for the presence of the ESL on cultured endothelial-cell monolayers, and gain new insight into the potential barrier function of the ESL in inflammatory states.
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