Literature DB >> 32393148

PKG1α Cysteine-42 Redox State Controls mTORC1 Activation in Pathological Cardiac Hypertrophy.

Christian U Oeing1, Taishi Nakamura1,2, Shi Pan1, Sumita Mishra1, Brittany L Dunkerly-Eyring3, Kristen M Kokkonen-Simon1, Brian L Lin1, Anna Chen1, Guangshuo Zhu1, Djahida Bedja1, Dong Ik Lee1, David A Kass1,3, Mark J Ranek1.   

Abstract

RATIONALE: Stimulated PKG1α (protein kinase G-1α) phosphorylates TSC2 (tuberous sclerosis complex 2) at serine 1365, potently suppressing mTORC1 (mechanistic [mammalian] target of rapamycin complex 1) activation by neurohormonal and hemodynamic stress. This reduces pathological hypertrophy and dysfunction and increases autophagy. PKG1α oxidation at cysteine-42 is also induced by these stressors, which blunts its cardioprotective effects.
OBJECTIVE: We tested the dependence of mTORC1 activation on PKG1α C42 oxidation and its capacity to suppress such activation by soluble GC-1 (guanylyl cyclase 1) activation. METHODS AND
RESULTS: Cardiomyocytes expressing wild-type (WT) PKG1α (PKG1αWT) or cysteine-42 to serine mutation redox-dead (PKG1αCS/CS) were exposed to ET-1 (endothelin 1). Cells expressing PKG1αWT exhibited substantial mTORC1 activation (p70 S6K [p70 S6 kinase], 4EBP1 [elF4E binding protein-1], and Ulk1 [Unc-51-like kinase 1] phosphorylation), reduced autophagy/autophagic flux, and abnormal protein aggregation; all were markedly reversed by PKG1αCS/CS expression. Mice with global knock-in of PKG1αCS/CS subjected to pressure overload (PO) also displayed markedly reduced mTORC1 activation, protein aggregation, hypertrophy, and ventricular dysfunction versus PO in PKG1αWT mice. Cardioprotection against PO was equalized between groups by co-treatment with the mTORC1 inhibitor everolimus. TSC2-S1365 phosphorylation increased in PKG1αCS/CS more than PKG1αWT myocardium following PO. TSC2S1365A/S1365A (TSC2 S1365 phospho-null, created by a serine to alanine mutation) knock-in mice lack TSC2 phosphorylation by PKG1α, and when genetically crossed with PKG1αCS/CS mice, protection against PO-induced mTORC1 activation, cardiodepression, and mortality in PKG1αCS/CS mice was lost. Direct stimulation of GC-1 (BAY-602770) offset disparate mTORC1 activation between PKG1αWT and PKG1αCS/CS after PO and blocked ET-1 stimulated mTORC1 in TSC2S1365A-expressing myocytes.
CONCLUSIONS: Oxidation of PKG1α at C42 reduces its phosphorylation of TSC2, resulting in amplified PO-stimulated mTORC1 activity and associated hypertrophy, dysfunction, and depressed autophagy. This is ameliorated by direct GC-1 stimulation.

Entities:  

Keywords:  autophagy; heart failure; hypertrophy; mice; phosphorylation

Mesh:

Substances:

Year:  2020        PMID: 32393148      PMCID: PMC7416445          DOI: 10.1161/CIRCRESAHA.119.315714

Source DB:  PubMed          Journal:  Circ Res        ISSN: 0009-7330            Impact factor:   17.367


  46 in total

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Journal:  Cell       Date:  2013-08-15       Impact factor: 41.582

5.  Prevention of PKG-1α Oxidation Suppresses Antihypertrophic/Antifibrotic Effects From PDE5 Inhibition but not sGC Stimulation.

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Authors:  Fresnida J Ramos; Steven C Chen; Michael G Garelick; Dao-Fu Dai; Chen-Yu Liao; Katherine H Schreiber; Vivian L MacKay; Elroy H An; Randy Strong; Warren C Ladiges; Peter S Rabinovitch; Matt Kaeberlein; Brian K Kennedy
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10.  PKG1-modified TSC2 regulates mTORC1 activity to counter adverse cardiac stress.

Authors:  Mark J Ranek; Kristen M Kokkonen-Simon; Anna Chen; Brittany L Dunkerly-Eyring; Miguel Pinilla Vera; Christian U Oeing; Chirag H Patel; Taishi Nakamura; Guangshuo Zhu; Djahida Bedja; Masayuki Sasaki; Ronald J Holewinski; Jennifer E Van Eyk; Jonathan D Powell; Dong Ik Lee; David A Kass
Journal:  Nature       Date:  2019-01-30       Impact factor: 49.962

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3.  MTORC1-Regulated Metabolism Controlled by TSC2 Limits Cardiac Reperfusion Injury.

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Journal:  Circ Res       Date:  2021-01-06       Impact factor: 17.367

4.  Metabolic remodeling precedes mTORC1-mediated cardiac hypertrophy.

Authors:  Giovanni E Davogustto; Rebecca L Salazar; Hernan G Vasquez; Anja Karlstaedt; William P Dillon; Patrick H Guthrie; Joseph R Martin; Heidi Vitrac; Gina De La Guardia; Deborah Vela; Aleix Ribas-Latre; Corrine Baumgartner; Kristin Eckel-Mahan; Heinrich Taegtmeyer
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Review 7.  Rheostatic Balance of Circadian Rhythm and Autophagy in Metabolism and Disease.

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Journal:  Front Cell Dev Biol       Date:  2020-11-24

8.  Single serine on TSC2 exerts biased control over mTORC1 activation mediated by ERK1/2 but not Akt.

Authors:  Brittany L Dunkerly-Eyring; Shi Pan; Miguel Pinilla-Vera; Desirae McKoy; Sumita Mishra; Maria I Grajeda Martinez; Christian U Oeing; Mark J Ranek; David A Kass
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9.  Induction of apoptosis and autosis in cardiomyocytes by the combination of homocysteine and copper via NOX-mediated p62 expression.

Authors:  Ran Yin; Huan Wang; Chun Li; Lulu Wang; Songqing Lai; Xianhe Yang; Daojun Hong; Wan Zhang
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