脉动流
单核细胞
粘附
内皮
医学
内皮干细胞
细胞粘附
生物医学工程
血管
生物物理学
化学
材料科学
血流
内科学
生物
生物化学
复合材料
体外
作者
Joung-Hyun Lee,Zaozao Chen,Siyu He,Joyce K. Zhou,Alexander K. Tsai,George A. Truskey,Kam W. Leong
出处
期刊:Advanced biology
[Wiley]
日期:2021-03-06
卷期号:5 (4): e2000428-e2000428
被引量:29
标识
DOI:10.1002/adbi.202000428
摘要
Abstract Atherosclerosis begins with the accumulation of cholesterol‐carrying lipoproteins on blood vessel walls and progresses to endothelial cell dysfunction, monocyte adhesion, and foam cell formation. Endothelialized tissue‐engineered blood vessels (TEBVs) have previously been fabricated to recapitulate artery functionalities, including vasoconstriction, vasodilation, and endothelium activation. Here, the initiation of atherosclerosis is emulated by designing branched TEBVs (brTEBVs) of various geometries treated with enzyme‐modified low‐density‐lipoprotein (eLDL) and TNF‐α to induce endothelial cell dysfunction and adhesion of perfused human monocytes. Locations of monocyte adhesion under pulsatile flow are identified, and the hemodynamics in the brTEBVs are characterized using particle image velocimetry (PIV) and computational fluid dynamics (CFD). Monocyte adhesion is greater at the side outlets than at the main outlets or inlets, and is greatest at larger side outlet branching angles (60° or 80° vs 45°). In PIV experiments, the branched side outlets are identified as atherosclerosis‐prone areas where fluorescent particles show a transient swirling motion following flow pulses; in CFD simulations, side outlets with larger branching angles show higher vorticity magnitude and greater flow disturbance than other areas. These results suggest that the branched TEBVs with eLDL/TNF‐α treatment provide a physiologically relevant model of early atherosclerosis for preclinical studies.
科研通智能强力驱动
Strongly Powered by AbleSci AI