Mammalian γ2 AMPK regulates intrinsic heart rate

2017 · Arash Yavari, Mohamed Bellahcene, Annalisa Bucchi, Syevda Sirenko, Katalin Pinter, Neil Herring, Julia Jung, Kirill Tarasov, Emily Sharpe, Markus Wolfien, Gabor Czibik, Violetta Steeples, Sahar Ghaffari, Chinh Nguyen, Alexander Stockenhuber, Joshua St. Clair, Christian Rimmbach, Yosuke Okamoto, Dongmei Yang, Mingyi Wang, Bruce Ziman, Jack Moen, Daniel Riordon, Christopher Ramirez, Manuel Paina, Joonho Lee, Jing Zhang, Ismayil Ahmet, Michael Matt, Yelena Tarasova, Dilair Baban, Natasha Sahgal, Helen Lockstone, Rathi Puliyadi, Joseph de Bono, Owen Siggs, John Gomes, Hannah Muskett, Mahon Maguire, Youlia Beglov, Matthew Kelly, Pedro Santos, Nicola Bright, Angela Woods, Katja Gehmlich, Henrik Isackson, Gillian Douglas, David Ferguson, Jürgen Schneider, Andrew Tinker, Olaf Wolkenhauer, Keith Channon, Richard Cornall, Eduardo Sternick, David Paterson, Charles Redwood, David Carling, Catherine Proenza, Robert David, Mirko Baruscotti, Dario DiFrancesco, Edward Lakatta, Hugh Watkins, Houman Ashrafian · Nature Communications

Abstract

Abstract AMPK is a conserved serine/threonine kinase whose activity maintains cellular energy homeostasis. Eukaryotic AMPK exists as αβγ complexes, whose regulatory γ subunit confers energy sensor function by binding adenine nucleotides. Humans bearing activating mutations in the γ2 subunit exhibit a phenotype including unexplained slowing of heart rate (bradycardia). Here, we show that γ2 AMPK activation downregulates fundamental sinoatrial cell pacemaker mechanisms to lower heart rate, including sarcolemmal hyperpolarization-activated current ( I f ) and ryanodine receptor-derived diastolic local subsarcolemmal Ca 2+ release. In contrast, loss of γ2 AMPK induces a reciprocal phenotype of increased heart rate, and prevents the adaptive intrinsic bradycardia of endurance training. Our results reveal that in mammals, for which heart rate is a key determinant of cardiac energy demand, AMPK functions in an organ-specific manner to maintain cardiac energy homeostasis and determines cardiac physiological adaptation to exercise by modulating intrinsic sinoatrial cell behavior.

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Publication Details

Journal
Nature Communications
Volume
8
Issue
1
Publisher
Springer Science and Business Media LLC
ISSN
2041-1723