Genomics

Dataset Information

0

Microskeletal stiffness promotes aortic aneurysm by sustaining pathological vascular smooth muscle cell mechanosensation via Piezo1


ABSTRACT: Mechanical overload of the vascular wall is a pathological hallmark of life-threatening abdominal aortic aneurysms (AAA). However, how this mechanical stress resonates at the unicellular level of vascular smooth muscle cells (VSMC) is undefined. Here, we combined novel tweezers-based micromechanical system and single-cell RNA sequencing to map defective mechano-phenotype signatures of VSMC in AAA. Notably, theoretical modelling predicted that cytoskeleton alterations fueled cell membrane tension of VSMC, thereby modulating their mechanoallostatic responses which were validated by live micromechanical measurements. Mechanistically, VSMC gradually adopted a mechanically solid-like state by upregulating CSK crosslinker, α-actinin2, in the presence of AAA-promoting signal, Netrin-1, thereby directly powering the activity of mechanosensory ion channel Piezo1. Inhibition of Piezo1 prevented mice from developing AAA by alleviating pathological vascular remodeling. Our findings demonstrate that deviations of mechanosensation behaviors of VSMC is detrimental for AAA and identifies Piezo1 as a novel culprit of mechanically fatigued aorta in AAA.

ORGANISM(S): Mus musculus

PROVIDER: GSE186865 | GEO | 2021/11/01

REPOSITORIES: GEO

Similar Datasets

2024-02-21 | GSE230805 | GEO
2023-11-01 | GSE244111 | GEO
2019-08-21 | GSE133069 | GEO
2023-04-23 | GSE230163 | GEO
2023-06-08 | GSE222440 | GEO
2014-08-08 | PXD001099 | Pride
2018-09-22 | GSE120305 | GEO
| PRJNA776527 | ENA
2021-05-21 | PXD024162 | Pride
2023-08-21 | PXD042661 | Pride