Cellular mechanisms of oligoclonal vascular smooth muscle cell expansion in cardiovascular disease

血管平滑肌 生物 细胞生物学 人口 细胞 表型 表型转换 细胞生长 转录组 病理 内分泌学 医学 基因表达 遗传学 平滑肌 基因 环境卫生
作者
Matthew D Worssam,Jordi Lambert,Sebnem Oc,James Ck Taylor,A. Taylor,Lina Dobnikar,Joel Chappell,Jennifer L. Harman,Nichola Figg,Alison Finigan,Kirsty Foote,Anna Uryga,Martin R. Bennett,Mikhail Spivakov,Helle F. Jørgensen
出处
期刊:Cardiovascular Research [Oxford University Press]
卷期号:119 (5): 1279-1294 被引量:9
标识
DOI:10.1093/cvr/cvac138
摘要

Quiescent, differentiated adult vascular smooth muscle cells (VSMCs) can be induced to proliferate and switch phenotype. Such plasticity underlies blood vessel homeostasis and contributes to vascular disease development. Oligoclonal VSMC contribution is a hallmark of end-stage vascular disease. Here, we aim to understand cellular mechanisms underpinning generation of this VSMC oligoclonality.We investigate the dynamics of VSMC clone formation using confocal microscopy and single-cell transcriptomics in VSMC-lineage-traced animal models. We find that activation of medial VSMC proliferation occurs at low frequency after vascular injury and that only a subset of expanding clones migrate, which together drives formation of oligoclonal neointimal lesions. VSMC contribution in small atherosclerotic lesions is typically from one or two clones, similar to observations in mature lesions. Low frequency (<0.1%) of clonal VSMC proliferation is also observed in vitro. Single-cell RNA-sequencing revealed progressive cell state changes across a contiguous VSMC population at onset of injury-induced proliferation. Proliferating VSMCs mapped selectively to one of two distinct trajectories and were associated with cells showing extensive phenotypic switching. A proliferation-associated transitory state shared pronounced similarities with atypical SCA1+ VSMCs from uninjured mouse arteries and VSMCs in healthy human aorta. We show functionally that clonal expansion of SCA1+ VSMCs from healthy arteries occurs at higher rate and frequency compared with SCA1- cells.Our data suggest that activation of proliferation at low frequency is a general, cell-intrinsic feature of VSMCs. We show that rare VSMCs in healthy arteries display VSMC phenotypic switching akin to that observed in pathological vessel remodelling and that this is a conserved feature of mouse and human healthy arteries. The increased proliferation of modulated VSMCs from healthy arteries suggests that these cells respond more readily to disease-inducing cues and could drive oligoclonal VSMC expansion.

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