Atf3 controls transitioning in female mitochondrial cardiomyopathy as identified by single-cell transcriptomics

Author:

Qaqorh Tasneem,Takahashi Yusuke,Otani Kentaro,Yazawa Issei,Nishida Yuya,Fujihara Yoshitaka,Honda Mizuki,Oki Shinya,Ohkawa YasuyukiORCID,Thorburn David R.,Frazier Ann E.,Takeda Atsuhito,Ikeda Yoshihiko,Sakaguchi Heima,Watanabe Takuya,Fukushima Norihide,Tsukamoto Yasumasa,Makita Naomasa,Yamaguchi Osamu,Murayama Kei,Ohtake Akira,Okazaki Yasushi,Inoue Hijiri,Matsuoka Ken,Yamazaki Satoru,Takashima Seiji,Shintani Yasunori

Abstract

SummaryOxidative phosphorylation defects results in mitochondrial diseases, with cardiac involvement markedly impacting prognosis. However, the mechanisms underlying the transition from compensation to dysfunction in response to metabolic deficiency remain unclear, impeding the development of effective treatments. Here, we employed single-nucleus RNA sequencing (snRNA-seq) on hearts from mitochondrial cardiomyopathy (MCM) mice with cardiac-specificNdufs6knockdown (FS6KD). Pseudotime trajectory analysis of cardiomyocytes from early stage of female FS6KD hearts revealed dynamic cellular state transitioning from compensation to severe compromise, coincided with transient upregulation of a critical transcription factor,activating transcription factor 3(Atf3). Genetic ablation or adeno-associated virus-mediatedAtf3knockdown in FS6KD mice effectively delayed cardiomyopathy progression in a female-specific manner. Notably, human MCM snRNA-seq revealed a similar transition, including the dynamic expression ofATF3. In conclusion, our findings highlight a fate-determining role of Atf3 in female MCM progression, providing a promising therapeutic candidate for the currently intractable disease.

Publisher

Cold Spring Harbor Laboratory

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