Dilated cardiomyopathy-linked heat shock protein family D member 1 mutations cause up-regulation of reactive oxygen species and autophagy through mitochondrial dysfunction.


Journal

Cardiovascular research
ISSN: 1755-3245
Titre abrégé: Cardiovasc Res
Pays: England
ID NLM: 0077427

Informations de publication

Date de publication:
21 03 2021
Historique:
received: 19 11 2018
revised: 01 07 2019
accepted: 04 06 2020
pubmed: 11 6 2020
medline: 5 1 2022
entrez: 11 6 2020
Statut: ppublish

Résumé

During heart failure, the levels of circulatory heat shock protein family D member 1 (HSP60) increase. However, its underlying mechanism is still unknown. The apical domain of heat shock protein family D member 1 (HSPD1) is conserved throughout evolution. We found a point mutation in HSPD1 in a familial dilated cardiomyopathy (DCM) patient. A similar point mutation in HSPD1 in the zebrafish mutant, nbl, led to loss of its regenerative capacity and development of pericardial oedema under heat stress condition. In this study, we aimed to determine the direct involvement of HSPD1 in the development of DCM. By Sanger method, we found a point mutation (Thr320Ala) in the apical domain of HSPD1, in one familial DCM patient, which was four amino acids away from the point mutation (Val324Glu) in the nbl mutant zebrafish. The nbl mutants showed atrio-ventricular block and sudden death at 8-month post-fertilization. Histological and microscopic analysis of the nbl mutant hearts showed decreased ventricular wall thickness, elevated level of reactive oxygen species (ROS), increased fibrosis, mitochondrial damage, and increased autophagosomes. mRNA and protein expression of autophagy-related genes significantly increased in nbl mutants. We established HEK293 stable cell lines of wild-type, nbl-type, and DCM-type HSPD1, with tetracycline-dependent expression. Compared to wild-type, both nbl- and DCM-type cells showed decreased cell growth, increased expression of ROS and autophagy-related genes, inhibition of the activity of mitochondrial electron transport chain complexes III and IV, and decreased mitochondrial fission and fusion. Mutations in HSPD1 caused mitochondrial dysfunction and induced mitophagy. Mitochondrial dysfunction caused increased ROS and cardiac atrophy.

Identifiants

pubmed: 32520982
pii: 5855671
doi: 10.1093/cvr/cvaa158
doi:

Substances chimiques

Chaperonin 60 0
HSPD1 protein, human 0
Mitochondrial Proteins 0
Nerve Tissue Proteins 0
Reactive Oxygen Species 0
Zebrafish Proteins 0
hspd1 protein, zebrafish 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't Video-Audio Media

Langues

eng

Sous-ensembles de citation

IM

Pagination

1118-1131

Informations de copyright

Published on behalf of the European Society of Cardiology. All rights reserved. © The Author(s) 2020. For permissions, please email: journals.permissions@oup.com.

Auteurs

Hirokazu Enomoto (H)

Department of Cardiology, Keio University School of Medicine, Tokyo 160-8582, Japan.

Nishant Mittal (N)

Department of Cardiology, Keio University School of Medicine, Tokyo 160-8582, Japan.

Takayuki Inomata (T)

Department of Cardiovascular Medicine, Kitasato University School of Medicine, Kanagawa 252-0374, Japan.

Takuro Arimura (T)

Department of Molecular Pathogenesis, Tokyo Medical and Dental University, Tokyo 113-8510, Japan.

Tohru Izumi (T)

Department of Cardiovascular Medicine, Kitasato University School of Medicine, Kanagawa 252-0374, Japan.

Akinori Kimura (A)

Department of Molecular Pathogenesis, Tokyo Medical and Dental University, Tokyo 113-8510, Japan.

Keiichi Fukuda (K)

Department of Cardiology, Keio University School of Medicine, Tokyo 160-8582, Japan.

Shinji Makino (S)

Department of Cardiology, Keio University School of Medicine, Tokyo 160-8582, Japan.
Health Center, Keio University, Tokyo 160-8582, Japan.

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Classifications MeSH