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Cardiac fibroblasts regulate the development of heart failure via Htra3-TGF-β-IGFBP7 axis

Authors :
Toshiyuki Ko
Seitaro Nomura
Shintaro Yamada
Kanna Fujita
Takanori Fujita
Masahiro Satoh
Chio Oka
Manami Katoh
Masamichi Ito
Mikako Katagiri
Tatsuro Sassa
Bo Zhang
Satoshi Hatsuse
Takanobu Yamada
Mutsuo Harada
Haruhiro Toko
Eisuke Amiya
Masaru Hatano
Osamu Kinoshita
Kan Nawata
Hiroyuki Abe
Tetsuo Ushiku
Minoru Ono
Masashi Ikeuchi
Hiroyuki Morita
Hiroyuki Aburatani
Issei Komuro
Source :
Nature communications. 13(1)
Publication Year :
2021

Abstract

Tissue fibrosis and organ dysfunction are hallmarks of age-related diseases including heart failure, but it remains elusive whether there is a common pathway to induce both events. Through single-cell RNA-seq, spatial transcriptomics, and genetic perturbation, we elucidate that high-temperature requirement A serine peptidase 3 (Htra3) is a critical regulator of cardiac fibrosis and heart failure by maintaining the identity of quiescent cardiac fibroblasts through degrading transforming growth factor-β (TGF-β). Pressure overload downregulates expression of Htra3 in cardiac fibroblasts and activated TGF-β signaling, which induces not only cardiac fibrosis but also heart failure through DNA damage accumulation and secretory phenotype induction in failing cardiomyocytes. Overexpression of Htra3 in the heart inhibits TGF-β signaling and ameliorates cardiac dysfunction after pressure overload. Htra3-regulated induction of spatio-temporal cardiac fibrosis and cardiomyocyte secretory phenotype are observed specifically in infarct regions after myocardial infarction. Integrative analyses of single-cardiomyocyte transcriptome and plasma proteome in human reveal that IGFBP7, which is a cytokine downstream of TGF-β and secreted from failing cardiomyocytes, is the most predictable marker of advanced heart failure. These findings highlight the roles of cardiac fibroblasts in regulating cardiomyocyte homeostasis and cardiac fibrosis through the Htra3-TGF-β-IGFBP7 pathway, which would be a therapeutic target for heart failure.

Details

ISSN :
20411723
Volume :
13
Issue :
1
Database :
OpenAIRE
Journal :
Nature communications
Accession number :
edsair.doi.dedup.....01d89c542f4b6baf1c8f0add8924674d