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Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release

BACKGROUND: Kinase oxidation is a critical signaling mechanism through which changes in the intracellular redox state alter cardiac function. In the myocardium, PKARIα (type-1 protein kinase A) can be reversibly oxidized, forming interprotein disulfide bonds in the holoenzyme complex. However, the e...

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Autores principales: Simon, Jillian N., Vrellaku, Besarte, Monterisi, Stefania, Chu, Sandy M., Rawlings, Nadiia, Lomas, Oliver, Marchal, Gerard A., Waithe, Dominic, Syeda, Fahima, Gajendragadkar, Parag R., Jayaram, Raja, Sayeed, Rana, Channon, Keith M., Fabritz, Larissa, Swietach, Pawel, Zaccolo, Manuela, Eaton, Philip, Casadei, Barbara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7846288/
https://www.ncbi.nlm.nih.gov/pubmed/33185461
http://dx.doi.org/10.1161/CIRCULATIONAHA.120.046761
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author Simon, Jillian N.
Vrellaku, Besarte
Monterisi, Stefania
Chu, Sandy M.
Rawlings, Nadiia
Lomas, Oliver
Marchal, Gerard A.
Waithe, Dominic
Syeda, Fahima
Gajendragadkar, Parag R.
Jayaram, Raja
Sayeed, Rana
Channon, Keith M.
Fabritz, Larissa
Swietach, Pawel
Zaccolo, Manuela
Eaton, Philip
Casadei, Barbara
author_facet Simon, Jillian N.
Vrellaku, Besarte
Monterisi, Stefania
Chu, Sandy M.
Rawlings, Nadiia
Lomas, Oliver
Marchal, Gerard A.
Waithe, Dominic
Syeda, Fahima
Gajendragadkar, Parag R.
Jayaram, Raja
Sayeed, Rana
Channon, Keith M.
Fabritz, Larissa
Swietach, Pawel
Zaccolo, Manuela
Eaton, Philip
Casadei, Barbara
author_sort Simon, Jillian N.
collection PubMed
description BACKGROUND: Kinase oxidation is a critical signaling mechanism through which changes in the intracellular redox state alter cardiac function. In the myocardium, PKARIα (type-1 protein kinase A) can be reversibly oxidized, forming interprotein disulfide bonds in the holoenzyme complex. However, the effect of PKARIα disulfide formation on downstream signaling in the heart, particularly under states of oxidative stress such as ischemia and reperfusion (I/R), remains unexplored. METHODS: Atrial tissue obtained from patients before and after cardiopulmonary bypass and reperfusion and left ventricular (LV) tissue from mice subjected to I/R or sham surgery were used to assess PKARIα disulfide formation by immunoblot. To determine the effect of disulfide formation on PKARIα catalytic activity and subcellular localization, live-cell fluorescence imaging and stimulated emission depletion super-resolution microscopy were performed in prkar1 knock-out mouse embryonic fibroblasts, neonatal myocytes, or adult LV myocytes isolated from “redox dead” (Cys17Ser) PKARIα knock-in mice and their wild-type littermates. Comparison of intracellular calcium dynamics between genotypes was assessed in fura2-loaded LV myocytes, whereas I/R-injury was assessed ex vivo. RESULTS: In both humans and mice, myocardial PKARIα disulfide formation was found to be significantly increased (2-fold in humans, P=0.023; 2.4-fold in mice, P<0.001) in response to I/R in vivo. In mouse LV cardiomyocytes, disulfide-containing PKARIα was not found to impact catalytic activity, but instead led to enhanced AKAP (A-kinase anchoring protein) binding with preferential localization of the holoenzyme to the lysosome. Redox-dependent regulation of lysosomal two-pore channels by PKARIα was sufficient to prevent global calcium release from the sarcoplasmic reticulum in LV myocytes, without affecting intrinsic ryanodine receptor leak or phosphorylation. Absence of I/R-induced PKARIα disulfide formation in “redox dead” knock-in mouse hearts resulted in larger infarcts (2-fold, P<0.001) and a concomitant reduction in LV contractile recovery (1.6-fold, P<0.001), which was prevented by administering the lysosomal two-pore channel inhibitor Ned-19 at the time of reperfusion. CONCLUSIONS: Disulfide modification targets PKARIα to the lysosome, where it acts as a gatekeeper for two-pore channel–mediated triggering of global calcium release. In the postischemic heart, this regulatory mechanism is critical for protection from extensive injury and offers a novel target for the design of cardioprotective therapeutics.
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spelling pubmed-78462882021-02-02 Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release Simon, Jillian N. Vrellaku, Besarte Monterisi, Stefania Chu, Sandy M. Rawlings, Nadiia Lomas, Oliver Marchal, Gerard A. Waithe, Dominic Syeda, Fahima Gajendragadkar, Parag R. Jayaram, Raja Sayeed, Rana Channon, Keith M. Fabritz, Larissa Swietach, Pawel Zaccolo, Manuela Eaton, Philip Casadei, Barbara Circulation Original Research Articles BACKGROUND: Kinase oxidation is a critical signaling mechanism through which changes in the intracellular redox state alter cardiac function. In the myocardium, PKARIα (type-1 protein kinase A) can be reversibly oxidized, forming interprotein disulfide bonds in the holoenzyme complex. However, the effect of PKARIα disulfide formation on downstream signaling in the heart, particularly under states of oxidative stress such as ischemia and reperfusion (I/R), remains unexplored. METHODS: Atrial tissue obtained from patients before and after cardiopulmonary bypass and reperfusion and left ventricular (LV) tissue from mice subjected to I/R or sham surgery were used to assess PKARIα disulfide formation by immunoblot. To determine the effect of disulfide formation on PKARIα catalytic activity and subcellular localization, live-cell fluorescence imaging and stimulated emission depletion super-resolution microscopy were performed in prkar1 knock-out mouse embryonic fibroblasts, neonatal myocytes, or adult LV myocytes isolated from “redox dead” (Cys17Ser) PKARIα knock-in mice and their wild-type littermates. Comparison of intracellular calcium dynamics between genotypes was assessed in fura2-loaded LV myocytes, whereas I/R-injury was assessed ex vivo. RESULTS: In both humans and mice, myocardial PKARIα disulfide formation was found to be significantly increased (2-fold in humans, P=0.023; 2.4-fold in mice, P<0.001) in response to I/R in vivo. In mouse LV cardiomyocytes, disulfide-containing PKARIα was not found to impact catalytic activity, but instead led to enhanced AKAP (A-kinase anchoring protein) binding with preferential localization of the holoenzyme to the lysosome. Redox-dependent regulation of lysosomal two-pore channels by PKARIα was sufficient to prevent global calcium release from the sarcoplasmic reticulum in LV myocytes, without affecting intrinsic ryanodine receptor leak or phosphorylation. Absence of I/R-induced PKARIα disulfide formation in “redox dead” knock-in mouse hearts resulted in larger infarcts (2-fold, P<0.001) and a concomitant reduction in LV contractile recovery (1.6-fold, P<0.001), which was prevented by administering the lysosomal two-pore channel inhibitor Ned-19 at the time of reperfusion. CONCLUSIONS: Disulfide modification targets PKARIα to the lysosome, where it acts as a gatekeeper for two-pore channel–mediated triggering of global calcium release. In the postischemic heart, this regulatory mechanism is critical for protection from extensive injury and offers a novel target for the design of cardioprotective therapeutics. Lippincott Williams & Wilkins 2020-11-13 2021-02-02 /pmc/articles/PMC7846288/ /pubmed/33185461 http://dx.doi.org/10.1161/CIRCULATIONAHA.120.046761 Text en © 2020 The Authors. Circulation is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited.
spellingShingle Original Research Articles
Simon, Jillian N.
Vrellaku, Besarte
Monterisi, Stefania
Chu, Sandy M.
Rawlings, Nadiia
Lomas, Oliver
Marchal, Gerard A.
Waithe, Dominic
Syeda, Fahima
Gajendragadkar, Parag R.
Jayaram, Raja
Sayeed, Rana
Channon, Keith M.
Fabritz, Larissa
Swietach, Pawel
Zaccolo, Manuela
Eaton, Philip
Casadei, Barbara
Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release
title Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release
title_full Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release
title_fullStr Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release
title_full_unstemmed Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release
title_short Oxidation of Protein Kinase A Regulatory Subunit PKARIα Protects Against Myocardial Ischemia-Reperfusion Injury by Inhibiting Lysosomal-Triggered Calcium Release
title_sort oxidation of protein kinase a regulatory subunit pkariα protects against myocardial ischemia-reperfusion injury by inhibiting lysosomal-triggered calcium release
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7846288/
https://www.ncbi.nlm.nih.gov/pubmed/33185461
http://dx.doi.org/10.1161/CIRCULATIONAHA.120.046761
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