Literature DB >> 32859750

Computationally modeling mammalian succinate dehydrogenase kinetics identifies the origins and primary determinants of ROS production.

Neeraj Manhas1, Quynh V Duong2, Pilhwa Lee3, Joshua D Richardson1, John D Robertson1, Michael A Moxley4, Jason N Bazil5.   

Abstract

Succinate dehydrogenase (SDH) is an inner mitochondrial membrane protein complex that links the Krebs cycle to the electron transport system. It can produce significant amounts of superoxide ([Formula: see text]) and hydrogen peroxide (H2O2); however, the precise mechanisms are unknown. This fact hinders the development of next-generation antioxidant therapies targeting mitochondria. To help address this problem, we developed a computational model to analyze and identify the kinetic mechanism of [Formula: see text] and H2O2 production by SDH. Our model includes the major redox centers in the complex, namely FAD, three iron-sulfur clusters, and a transiently bound semiquinone. Oxidation state transitions involve a one- or two-electron redox reaction, each being thermodynamically constrained. Model parameters were simultaneously fit to many data sets using a variety of succinate oxidation and free radical production data. In the absence of respiratory chain inhibitors, model analysis revealed the 3Fe-4S iron-sulfur cluster as the primary [Formula: see text] source. However, when the quinone reductase site is inhibited or the quinone pool is highly reduced, [Formula: see text] is generated primarily by the FAD. In addition, H2O2 production is only significant when the enzyme is fully reduced, and fumarate is absent. Our simulations also reveal that the redox state of the quinone pool is the primary determinant of free radical production by SDH. In this study, we showed the importance of analyzing enzyme kinetics and associated side reactions in a consistent, quantitative, and biophysically detailed manner using a diverse set of experimental data to interpret and explain experimental observations from a unified perspective.
© 2020 Manhas et al.

Entities:  

Keywords:  computational biology; computer modeling; enzyme kinetics; enzyme mechanism; free radicals; hydrogen peroxide; mechanistic regulation; oxidative stress; redox regulation; succinate dehydrogenase (SDH); superoxide; superoxide ion; ubiquinone

Year:  2020        PMID: 32859750      PMCID: PMC7650251          DOI: 10.1074/jbc.RA120.014483

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  66 in total

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Journal:  Biochim Biophys Acta       Date:  2010-02-20

2.  Calcium overload decreases net free radical emission in cardiac mitochondria.

Authors:  Quynh V Duong; Adrianna Hoffman; Katie Zhong; Maria J Dessinger; Yizhu Zhang; Jason N Bazil
Journal:  Mitochondrion       Date:  2020-01-23       Impact factor: 4.160

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Journal:  Biochemistry       Date:  1971-06-22       Impact factor: 3.162

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Journal:  J Biol Chem       Date:  1975-04-25       Impact factor: 5.157

Review 5.  Mitochondria, oxygen free radicals, disease and ageing.

Authors:  S Raha; B H Robinson
Journal:  Trends Biochem Sci       Date:  2000-10       Impact factor: 13.807

6.  The determination and analysis of site-specific rates of mitochondrial reactive oxygen species production.

Authors:  Casey L Quinlan; Irina V Perevoschikova; Renata L S Goncalves; Martin Hey-Mogensen; Martin D Brand
Journal:  Methods Enzymol       Date:  2013       Impact factor: 1.600

Review 7.  Physiological roles of mitochondrial reactive oxygen species.

Authors:  Laura A Sena; Navdeep S Chandel
Journal:  Mol Cell       Date:  2012-10-26       Impact factor: 17.970

Review 8.  The sites and topology of mitochondrial superoxide production.

Authors:  Martin D Brand
Journal:  Exp Gerontol       Date:  2010-01-11       Impact factor: 4.032

9.  Ischaemic accumulation of succinate controls reperfusion injury through mitochondrial ROS.

Authors:  Edward T Chouchani; Victoria R Pell; Edoardo Gaude; Dunja Aksentijević; Stephanie Y Sundier; Ellen L Robb; Angela Logan; Sergiy M Nadtochiy; Emily N J Ord; Anthony C Smith; Filmon Eyassu; Rachel Shirley; Chou-Hui Hu; Anna J Dare; Andrew M James; Sebastian Rogatti; Richard C Hartley; Simon Eaton; Ana S H Costa; Paul S Brookes; Sean M Davidson; Michael R Duchen; Kourosh Saeb-Parsy; Michael J Shattock; Alan J Robinson; Lorraine M Work; Christian Frezza; Thomas Krieg; Michael P Murphy
Journal:  Nature       Date:  2014-11-05       Impact factor: 49.962

Review 10.  A Unifying Mechanism for Mitochondrial Superoxide Production during Ischemia-Reperfusion Injury.

Authors:  Edward T Chouchani; Victoria R Pell; Andrew M James; Lorraine M Work; Kourosh Saeb-Parsy; Christian Frezza; Thomas Krieg; Michael P Murphy
Journal:  Cell Metab       Date:  2016-01-14       Impact factor: 27.287

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  3 in total

1.  Identifying Site-Specific Superoxide and Hydrogen Peroxide Production Rates From the Mitochondrial Electron Transport System Using a Computational Strategy.

Authors:  Quynh V Duong; Yan Levitsky; Maria J Dessinger; Jasiel O Strubbe-Rivera; Jason N Bazil
Journal:  Function (Oxf)       Date:  2021-09-20

2.  Rosuvastatin protects against coronary microembolization-induced cardiac injury via inhibiting NLRP3 inflammasome activation.

Authors:  Ao Chen; Zhangwei Chen; You Zhou; Yuan Wu; Yan Xia; Danbo Lu; Mengkang Fan; Su Li; Jinxiang Chen; Aijun Sun; Yunzeng Zou; Juying Qian; Junbo Ge
Journal:  Cell Death Dis       Date:  2021-01-12       Impact factor: 8.469

3.  Impact of Influenza A Virus Infection on Growth and Metabolism of Suspension MDCK Cells Using a Dynamic Model.

Authors:  João Rodrigues Correia Ramos; Thomas Bissinger; Yvonne Genzel; Udo Reichl
Journal:  Metabolites       Date:  2022-03-12
  3 in total

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