TY - JOUR
T1 - The Substructure of the Endothelial Glycocalyx in Rat Aorta and Its Interaction with the Low-Density Lipoproteins
AU - Kang, Hongyan
AU - Yan, Guiqin
AU - Lin, Xiaoqian
AU - Tian, Yuwen
AU - Yin, Jiaxin
AU - Liu, Jiao
AU - Deng, Zhilan
AU - Guo, Jiaxin
AU - Lu, Jinyan
AU - Lin, Xubo
AU - Wang, Li
AU - Sun, Anqiang
AU - Deng, Xiaoyan
AU - Wang, Guixue
AU - Fan, Yubo
N1 - Publisher Copyright:
© 2025 American Society for Investigative Pathology
PY - 2025/10
Y1 - 2025/10
N2 - The influx and retention of the low-density lipoproteins (LDLs) in the subendothelial space are one of the early events of atherosclerosis. Initially, LDLs must traverse the endothelial glycocalyx, which is increasingly recognized for its critical role in preventing LDL penetration. However, the precise substructure of the glycocalyx and its working mechanism are still unknown. Herein, a well-preserved porous mesh-like glycocalyx at the luminal surface of rat aortas, demonstrated by high-pressure freezing/freeze substitution transmission electron microscopy, shows three subtypes. Mathematical modeling suggests the dense lower glycocalyx (0.2 to 2.9 μm) shows similar arrangement to that reported in microvessels, with the partition coefficient of LDL equaling 0. The other sparse higher one (0.8 to 17.3 μm) contributes to mechanotransduction. LDL affinity column chromatography combined with proteomic analysis, colocalization analysis, and cell transport experiments verifies, for the first time, that the glycocalyx does bind LDLs both in vitro and in vivo, but does not retain LDLs. Two-photon laser scanning microscopic imaging of mouse ear arterioles suggests that the electrostatic repulsion between LDL and glycocalyx is dominant relative to binding. These findings reveal the arrangement of dense lower glycocalyx together with its electrostatic repulsion toward LDLs works in preventing LDL penetration.
AB - The influx and retention of the low-density lipoproteins (LDLs) in the subendothelial space are one of the early events of atherosclerosis. Initially, LDLs must traverse the endothelial glycocalyx, which is increasingly recognized for its critical role in preventing LDL penetration. However, the precise substructure of the glycocalyx and its working mechanism are still unknown. Herein, a well-preserved porous mesh-like glycocalyx at the luminal surface of rat aortas, demonstrated by high-pressure freezing/freeze substitution transmission electron microscopy, shows three subtypes. Mathematical modeling suggests the dense lower glycocalyx (0.2 to 2.9 μm) shows similar arrangement to that reported in microvessels, with the partition coefficient of LDL equaling 0. The other sparse higher one (0.8 to 17.3 μm) contributes to mechanotransduction. LDL affinity column chromatography combined with proteomic analysis, colocalization analysis, and cell transport experiments verifies, for the first time, that the glycocalyx does bind LDLs both in vitro and in vivo, but does not retain LDLs. Two-photon laser scanning microscopic imaging of mouse ear arterioles suggests that the electrostatic repulsion between LDL and glycocalyx is dominant relative to binding. These findings reveal the arrangement of dense lower glycocalyx together with its electrostatic repulsion toward LDLs works in preventing LDL penetration.
UR - https://www.scopus.com/pages/publications/105015868070
U2 - 10.1016/j.ajpath.2025.06.005
DO - 10.1016/j.ajpath.2025.06.005
M3 - 文章
C2 - 40645580
AN - SCOPUS:105015868070
SN - 0002-9440
VL - 195
SP - 1936
EP - 1958
JO - American Journal of Pathology
JF - American Journal of Pathology
IS - 10
ER -