Literature DB >> 24012591

Hydrogen sulfide-mediated stimulation of mitochondrial electron transport involves inhibition of the mitochondrial phosphodiesterase 2A, elevation of cAMP and activation of protein kinase A.

Katalin Módis1, Panagiotis Panopoulos, Ciro Coletta, Andreas Papapetropoulos, Csaba Szabo.   

Abstract

Although hydrogen sulfide (H₂S) is generally known as a mitochondrial poison, recent studies show that lower concentrations of H₂S play a physiological role in the stimulation of mitochondrial electron transport and cellular bioenergetics. This effect involves electron donation at Complex II. Other lines of recent studies demonstrated that one of the biological actions of H₂S involves inhibition of cAMP and cGMP phosphodiesterases (PDEs). Given the emerging functional role of the mitochondrial isoform of cAMP PDE (PDE2A) in the regulation of mitochondrial function the current study investigated whether cAMP-dependent mechanisms participate in the stimulatory effect of NaHS on mitochondrial function. In isolated rat liver mitochondria, partial digestion studies localized PDE2A into the mitochondrial matrix. NaHS exerted a concentration-dependent inhibitory effect on recombinant PDE2A enzyme in vitro. Moreover, NaHS induced an elevation of cAMP levels when added to isolated mitochondria and stimulated the mitochondrial electron transport. The latter effect was inhibited by Rp-cAMP, an inhibitor of the cAMP-dependent protein kinase (PKA). The current findings suggest that the direct electron donating effect of NaHS is amplified by an intramitochondrial cAMP system, which may involve the inhibition of PDE2A and subsequent, cAMP-mediated stimulation of PKA.
Copyright © 2013 Elsevier Inc. All rights reserved.

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Keywords:  3-isobutyl-1-methylxanthine (CID: 3758); 8-bromo cyclic AMP sodium salt (CID: 1913); 9-(2-hydroxy-3-nonyl)adenine (CID: 3206); ADP; ATP; Adenosine 5′-diphosphate; Adenosine 5′-triphosphate; Carbonyl cyanide 4-(trifluoromethoxy) phenylhydrazone; CcOX, Complex IV; Cyc C; Cytochrome C; Cytochrome c Oxidase, mitochondrial complex IV; FCCP; H(2)S; Hydrogen sulfide; Isolated mitochondria; OCR; Oxygen Consumption Rate; PDE; PKA; Phosphodiesterase; Rp-adenosine 3′,5′-cyclic monophosphorothioate (CID: 16218857); SQR; Sulfide:quinone oxidoreductase; adenosine 5′-diphosphate (CID: 6022); adenosine 5′-triphosphate (CID: 11050836); cAMP; cAMP-dependent protein kinase/Protein Kinase A; carbonyl cyanide 4-(trifluoromethoxy) phenylhydrazone (CID: 3330); hydrogen sulfide (CID: 402); sodium hydrogen sulfide (CID: 28015)

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Year:  2013        PMID: 24012591     DOI: 10.1016/j.bcp.2013.08.064

Source DB:  PubMed          Journal:  Biochem Pharmacol        ISSN: 0006-2952            Impact factor:   5.858


  40 in total

Review 1.  Modes of physiologic H2S signaling in the brain and peripheral tissues.

Authors:  Bindu D Paul; Solomon H Snyder
Journal:  Antioxid Redox Signal       Date:  2014-05-09       Impact factor: 8.401

Review 2.  Regulation of mitochondrial bioenergetic function by hydrogen sulfide. Part I. Biochemical and physiological mechanisms.

Authors:  Csaba Szabo; Céline Ransy; Katalin Módis; Mireille Andriamihaja; Baptiste Murghes; Ciro Coletta; Gabor Olah; Kazunori Yanagi; Frédéric Bouillaud
Journal:  Br J Pharmacol       Date:  2014-04       Impact factor: 8.739

3.  Hydrogen sulfide and PKG in ischemia-reperfusion injury: sources, signaling, accelerators and brakes.

Authors:  Ioanna Andreadou; Efstathios K Iliodromitis; Csaba Szabo; Andreas Papapetropoulos
Journal:  Basic Res Cardiol       Date:  2015-08-30       Impact factor: 17.165

4.  H2S-induced S-sulfhydration of lactate dehydrogenase a (LDHA) stimulates cellular bioenergetics in HCT116 colon cancer cells.

Authors:  Ashley A Untereiner; Gabor Oláh; Katalin Módis; Mark R Hellmich; Csaba Szabo
Journal:  Biochem Pharmacol       Date:  2017-04-09       Impact factor: 5.858

5.  Hydrogen sulfide regulates cardiac mitochondrial biogenesis via the activation of AMPK.

Authors:  Yuuki Shimizu; Rohini Polavarapu; Kattri-Liis Eskla; Chad K Nicholson; Christopher A Koczor; Rui Wang; William Lewis; Sruti Shiva; David J Lefer; John W Calvert
Journal:  J Mol Cell Cardiol       Date:  2018-02-03       Impact factor: 5.000

6.  A Review of Hydrogen Sulfide Synthesis, Metabolism, and Measurement: Is Modulation of Hydrogen Sulfide a Novel Therapeutic for Cancer?

Authors:  Xu Cao; Lei Ding; Zhi-Zhong Xie; Yong Yang; Matthew Whiteman; Philip K Moore; Jin-Song Bian
Journal:  Antioxid Redox Signal       Date:  2018-06-29       Impact factor: 8.401

Review 7.  Hydrogen sulfide-based therapeutics: exploiting a unique but ubiquitous gasotransmitter.

Authors:  John L Wallace; Rui Wang
Journal:  Nat Rev Drug Discov       Date:  2015-04-07       Impact factor: 84.694

8.  AP39, a novel mitochondria-targeted hydrogen sulfide donor, stimulates cellular bioenergetics, exerts cytoprotective effects and protects against the loss of mitochondrial DNA integrity in oxidatively stressed endothelial cells in vitro.

Authors:  Bartosz Szczesny; Katalin Módis; Kazunori Yanagi; Ciro Coletta; Sophie Le Trionnaire; Alexis Perry; Mark E Wood; Matthew Whiteman; Csaba Szabo
Journal:  Nitric Oxide       Date:  2014-04-19       Impact factor: 4.427

Review 9.  Gasotransmitter hydrogen sulfide signaling in neuronal health and disease.

Authors:  Bindu D Paul; Solomon H Snyder
Journal:  Biochem Pharmacol       Date:  2017-12-01       Impact factor: 5.858

Review 10.  Hydrogen sulfide as an oxygen sensor.

Authors:  Kenneth R Olson
Journal:  Antioxid Redox Signal       Date:  2014-07-30       Impact factor: 8.401

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