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Essential role of Alix in regulating cardiomyocyte exosome biogenesis under physiological and stress conditions.

Authors :
Wang, Xinjian
Han, Shuxian
Liang, Jinxiu
Xu, Chen
Cao, Ranran
Liu, Shuoyang
Luan, Yi
Gu, Ying
Han, Peidong
Source :
Journal of Molecular & Cellular Cardiology. May2024, Vol. 190, p35-47. 13p.
Publication Year :
2024

Abstract

Exosomes released by cardiomyocytes are essential mediators of intercellular communications within the heart, and various exosomal proteins and miRNAs are associated with cardiovascular diseases. However, whether the endosomal sorting complex required for transport (ESCRT) and its key component Alix is required for exosome biogenesis within cardiomyocyte remains poorly understood. Super-resolution imaging was performed to investigate the subcellular location of Alix and multivesicular body (MVB) in primary cardiomyocytes. Cardiomyocyte-specific Alix-knockout mice were generated using AAV9/CRISPR/Cas9-mediated in vivo gene editing. A stable Alix-knockdown H9c2 cardiomyocyte line was constructed through lentiviral-mediated delivery of short hairpin RNA. In order to determine the role of Alix in controlling exosome biogenesis, exosomes from cardiomyocyte-specific Alix-knockout mice plasma and Alix-knockdown H9c2 culture medium were isolated and examined by western blot, NTA analysis and transmission electron microscopy. Biochemical and immunofluorescence analysis were performed to determine the role of ESCRT machinery in regulating MVB formation. Lastly, transverse aortic constriction (TAC)-induced cardiac pressure overload model was established to further explore the role of Alix-mediated exosome biogenesis under stress conditions. A significant proportion of Alix localized to the MVB membrane within cardiomyocytes. Genetic deletion of Alix in murine heart resulted in a reduction of plasma exosome content without affecting cardiac structure or contractile function. Consistently, the downregulation of Alix in H9c2 cardiomyocyte line also suppressed the biogenesis of exosomes. We found the defective ESCRT machinery and suppressed MVB formation upon Alix depletion caused compromised exosome biogenesis. Remarkably, TAC-induced cardiac pressure overload led to increased Alix, MVB levels, and elevated plasma exosome content, which could be totally abolished by Alix deletion. These results establish Alix as an essential and stress-sensitive regulator of cardiac exosome biogenesis and the findings may yield valuable therapeutic implications. [Display omitted] • Deletion of Alix in cardiomyocytes results in a reduction in plasma exosome content. • Defective ESCRT machinery and MVB formation are observed in the Alix -depleted heart. • Exosome biogenesis is enhanced in the pressure overload model. • Ablation of Alix mitigates the increased exosome formation in the stressed heart. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00222828
Volume :
190
Database :
Academic Search Index
Journal :
Journal of Molecular & Cellular Cardiology
Publication Type :
Academic Journal
Accession number :
176868237
Full Text :
https://doi.org/10.1016/j.yjmcc.2024.04.001