Slack K+ channels confer protection against myocardial ischaemia/reperfusion injury

Author:

Roslan Anna1,Paulus Katharina1,Yang Jiaqi1,Matt Lucas1,Bischof Helmut1,Längst Natalie1,Schanz Sophia1,Luczak Annika1,Cruz Santos Melanie1,Burgstaller Sandra1,Skrabak David1,Bork Nadja I2,Malli Roland3,Schmidtko Achim4,Gawaz Meinrad5,Nikolaev Viacheslav O2,Ruth Peter1,Ehinger Rebekka1,Lukowski Robert1ORCID

Affiliation:

1. Department of Pharmacology, Toxicology and Clinical Pharmacy, Institute of Pharmacy, Auf der Morgenstelle 8, University of Tuebingen , 72076 Tuebingen , Germany

2. Institute of Experimental Cardiovascular Research, University Medical Center Hamburg-Eppendorf , Hamburg , Germany

3. Gottfried Schatz Research Center, Molecular Biology and Biochemistry, and Center for Medical Research, CF Bioimaging, Medical University of Graz , Graz , Austria

4. , Goethe-Universität Frankfurt a.M. Institute of Pharmacology and Clinical Pharmacy , Frankfurt a.M. , Germany

5. Department of Cardiology & Cardiovascular Diseases, University Hospital Tuebingen , Tuebingen , Germany

Abstract

Abstract Aims Na+-activated Slack potassium (K+) channels are increasingly recognized as regulators of neuronal activity, yet little is known about their role in the cardiovascular system. Slack activity increases when intracellular Na+ concentration ([Na+]i) reaches pathophysiological levels. Elevated [Na+]i is a major determinant of the ischaemia and reperfusion (I/R)-induced myocardial injury; thus, we hypothesized that Slack plays a role under these conditions. Methods and results K+ currents in cardiomyocytes (CMs) obtained from wildtype but not from global Slack knockout mice were sensitive to electrical inactivation of voltage-sensitive Na+ channels. Live-cell imaging demonstrated that K+ fluxes across the sarcolemma rely on Slack, while the depolarized resting membrane potential in Slack-deficient CMs led to excessive cytosolic Ca2+ accumulation and finally to hypoxia/reoxygenation-induced cell death. Cardiac damage in an in vivo model of I/R was exacerbated in global and CM-specific conditional Slack mutants and largely insensitive to mechanical conditioning manoeuvres. Finally, the protection conferred by mitochondrial ATP-sensitive K+ (mitoKATP) channels required functional Slack in CMs. Conclusion Collectively, our study provides evidence for Slack's crucial involvement in the ion homeostasis of no or low O2-stressed CMs. Thereby, Slack activity opposes the I/R-induced fatal Ca2+-uptake to CMs supporting the cardioprotective signaling attributed to mitoKATP function.

Funder

Deutsche Forschungsgemeinschaft

Promotion of Junior Researchers

cGMP: From Bedside to Bench

Erwin-Schrödinger-Programm

China Scholarship Council

Publisher

Oxford University Press (OUP)

Reference104 articles.

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