Elastin, arterial mechanics, and stenosis

弹性蛋白 主动脉瓣上狭窄 弹性纤维 血管平滑肌 内弹性层 新生内膜 细胞外基质 管腔(解剖学) 弹性反冲 主动脉 解剖 细胞生物学 病理 动脉 狭窄 医学 化学 内科学 生物 平滑肌 再狭窄 支架
作者
Chien-Jung Lin,Austin J. Cocciolone,Jessica E. Wagenseil
出处
期刊:American Journal of Physiology-cell Physiology [American Physiological Society]
卷期号:322 (5): C875-C886 被引量:1
标识
DOI:10.1152/ajpcell.00448.2021
摘要

Elastin is a long-lived extracellular matrix protein that is organized into elastic fibers that provide elasticity to the arterial wall, allowing stretch and recoil with each cardiac cycle. By forming lamellar units with smooth muscle cells, elastic fibers transduce tissue-level mechanics to cell-level changes through mechanobiological signaling. Altered amounts or assembly of elastic fibers leads to changes in arterial structure and mechanical behavior that compromise cardiovascular function. In particular, genetic mutations in the elastin gene ( ELN) that reduce elastin protein levels are associated with focal arterial stenosis, or narrowing of the arterial lumen, such as that seen in supravalvular aortic stenosis and Williams–Beuren syndrome. Global reduction of Eln levels in mice allows investigation of the tissue- and cell-level arterial mechanical changes and associated alterations in smooth muscle cell phenotype that may contribute to stenosis formation. A loxP-floxed Eln allele in mice highlights cell type- and developmental origin-specific mechanobiological effects of reduced elastin amounts. Eln production is required in distinct cell types for elastic layer formation in different parts of the mouse vasculature. Eln deletion in smooth muscle cells from different developmental origins in the ascending aorta leads to characteristic patterns of vascular stenosis and neointima. Dissecting the mechanobiological signaling associated with local Eln depletion and subsequent smooth muscle cell response may help develop new therapeutic interventions for elastin-related diseases.
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