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NRSF- GNAO1 Pathway Contributes to the Regulation of Cardiac Ca 2+ Homeostasis
Author(s) -
Hideaki Inazumi,
Koichiro Kuwahara,
Yasuaki Nakagawa,
Yoshihiro Kuwabara,
Takuro NumagaTomita,
Toshihide Kashihara,
Tsutomu Nakada,
Nagomi Kurebayashi,
Miku Oya,
Miki aka,
Masami Sugihara,
Hideyuki Kinoshita,
Kenji Moriuchi,
Hiromu Yanagisawa,
Toshio Nishikimi,
Hirohiko Motoki,
Mitsuhiko Yamada,
Sachio Morimoto,
Kinya Otsu,
Richard M. Mortensen,
Kazuwa Nakao,
Takeshi Kimura
Publication year - 2021
Publication title -
circulation research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.899
H-Index - 336
eISSN - 1524-4571
pISSN - 0009-7330
DOI - 10.1161/circresaha.121.318898
Subject(s) - cardiac function curve , heart failure , medicine , gene knockdown , homeostasis , biology , endocrinology , microbiology and biotechnology , gene , genetics
Background: During the development of heart failure, a fetal cardiac gene program is reactivated and accelerates pathological cardiac remodeling. We previously reported that a transcriptional repressor, NRSF (neuron restrictive silencer factor), suppresses the fetal cardiac gene program, thereby maintaining cardiac integrity. The underlying molecular mechanisms remain to be determined, however. Methods: We aim to elucidate molecular mechanisms by which NRSF maintains normal cardiac function. We generated cardiac-specific NRSF knockout mice and analyzed cardiac gene expression profiles in those mice and mice cardiac-specifically expressing a dominant-negative NRSF mutant. Results: We found that cardiac expression of Gαo , an inhibitory G protein encoded in humans byGNAO1 , is transcriptionally regulated by NRSF and is increased in the ventricles of several mouse models of heart failure. Genetic knockdown ofGnao1 ameliorated the cardiac dysfunction and prolonged survival rates in these mouse heart failure models. Conversely, cardiac-specific overexpression ofGNAO1 in mice was sufficient to induce cardiac dysfunction. Mechanistically, we observed that increasing Gαo expression increased surface sarcolemmal L-type Ca2+ channel activity, activated CaMKII (calcium/calmodulin-dependent kinase-II) signaling, and impaired Ca2+ handling in ventricular myocytes, which led to cardiac dysfunction.Conclusions: These findings shed light on a novel function of Gαo in the regulation of cardiac Ca2+ homeostasis and systolic function and suggest Gαo may be an effective therapeutic target for the treatment of heart failure.

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