Literature DB >> 26181576

Regulation of protein function by reversible methionine oxidation and the role of selenoprotein MsrB1.

Alaattin Kaya1, Byung Cheon Lee2, Vadim N Gladyshev1.   

Abstract

SIGNIFICANCE: Protein structure and function can be regulated via post-translational modifications by numerous enzymatic and nonenzymatic mechanisms. Regulation involving oxidation of sulfur-containing residues emerged as a key mechanism of redox control. Unraveling the participants and principles of such regulation is necessary for understanding the biological significance of redox control of cellular processes. RECENT ADVANCES: Reversible oxidation of methionine residues by monooxygenases of the Mical family and subsequent reduction of methionine sulfoxides by a selenocysteine-containing methionine sulfoxide reductase B1 (MsrB1) was found to control the assembly and disassembly of actin in mammals, and the Mical/MsrB pair similarly regulates actin in fruit flies. This finding has opened up new avenues for understanding the use of stereospecific methionine oxidation in regulating cellular processes and the roles of MsrB1 and Micals in regulation of actin dynamics. CRITICAL ISSUES: So far, Micals have been the only known partners of MsrB1, and actin is the only target. It is important to identify additional substrates of Micals and characterize other Mical-like enzymes. FUTURE DIRECTIONS: Oxidation of methionine, reviewed here, is an emerging but not well-established mechanism. Studies suggest that methionine oxidation is a form of oxidative damage of proteins, a modification that alters protein structure or function, a tool in redox signaling, and a mechanism that controls protein function. Understanding the functional impact of reversible oxidation of methionine will require identification of targets, substrates, and regulators of Micals and Msrs. Linking the biological processes, in which these proteins participate, might also lead to insights into disease conditions, which involve regulation of actin by Micals and Msrs.

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Year:  2015        PMID: 26181576      PMCID: PMC4589106          DOI: 10.1089/ars.2015.6385

Source DB:  PubMed          Journal:  Antioxid Redox Signal        ISSN: 1523-0864            Impact factor:   8.401


  72 in total

1.  Methionine sulfoxide reductases protect Ffh from oxidative damages in Escherichia coli.

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2.  Biological defense mechanisms. The production by leukocytes of superoxide, a potential bactericidal agent.

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3.  Superoxide radicals as precursors of mitochondrial hydrogen peroxide.

Authors:  G Loschen; A Azzi; C Richter; L Flohé
Journal:  FEBS Lett       Date:  1974-05-15       Impact factor: 4.124

Review 4.  Glutathione catalysis and the reaction mechanisms of glutathione-dependent enzymes.

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Journal:  Biochim Biophys Acta       Date:  2012-10-02

Review 5.  Free radical-mediated oxidation of free amino acids and amino acid residues in proteins.

Authors:  E R Stadtman; R L Levine
Journal:  Amino Acids       Date:  2003-07-29       Impact factor: 3.520

6.  Essential role of methionine residues in calmodulin binding to Bordetella pertussis adenylate cyclase, as probed by selective oxidation and repair by the peptide methionine sulfoxide reductases.

Authors:  Stéphanie Vougier; Jean Mary; Nathalie Dautin; Joëlle Vinh; Bertrand Friguet; Daniel Ladant
Journal:  J Biol Chem       Date:  2004-05-17       Impact factor: 5.157

7.  Methionine sulfoxide reductase regulation of yeast lifespan reveals reactive oxygen species-dependent and -independent components of aging.

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Journal:  Proc Natl Acad Sci U S A       Date:  2004-05-12       Impact factor: 11.205

8.  Potential role of methionine sulfoxide in the inactivation of the chaperone GroEL by hypochlorous acid (HOCl) and peroxynitrite (ONOO-).

Authors:  Hui Koon Khor; Mark T Fisher; Christian Schöneich
Journal:  J Biol Chem       Date:  2004-02-02       Impact factor: 5.157

9.  Methionine oxidation activates a transcription factor in response to oxidative stress.

Authors:  Adrian Drazic; Haruko Miura; Jirka Peschek; Yan Le; Nina C Bach; Thomas Kriehuber; Jeannette Winter
Journal:  Proc Natl Acad Sci U S A       Date:  2013-05-20       Impact factor: 11.205

Review 10.  Oxidation of methionine residues of proteins: biological consequences.

Authors:  Earl R Stadtman; Jackob Moskovitz; Rodney L Levine
Journal:  Antioxid Redox Signal       Date:  2003-10       Impact factor: 8.401

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  24 in total

1.  Methionine Sulfoxide Reductase-B3 Risk Allele Implicated in Alzheimer's Disease Associates with Increased Odds for Brain Infarcts.

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2.  Redox-based reagents for chemoselective methionine bioconjugation.

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Journal:  Science       Date:  2017-02-10       Impact factor: 47.728

Review 3.  Features and regulation of non-enzymatic post-translational modifications.

Authors:  Robert Harmel; Dorothea Fiedler
Journal:  Nat Chem Biol       Date:  2018-02-14       Impact factor: 15.040

Review 4.  Regulated methionine oxidation by monooxygenases.

Authors:  Bruno Manta; Vadim N Gladyshev
Journal:  Free Radic Biol Med       Date:  2017-02-14       Impact factor: 7.376

Review 5.  Redox Signaling by Reactive Electrophiles and Oxidants.

Authors:  Saba Parvez; Marcus J C Long; Jesse R Poganik; Yimon Aye
Journal:  Chem Rev       Date:  2018-08-27       Impact factor: 60.622

Review 6.  Selenoproteins and oxidative stress-induced inflammatory tumorigenesis in the gut.

Authors:  Caitlyn W Barrett; Sarah P Short; Christopher S Williams
Journal:  Cell Mol Life Sci       Date:  2016-08-25       Impact factor: 9.261

Review 7.  Practical guide for dynamic monitoring of protein oxidation using genetically encoded ratiometric fluorescent biosensors of methionine sulfoxide.

Authors:  Zalán Péterfi; Lionel Tarrago; Vadim N Gladyshev
Journal:  Methods       Date:  2016-06-23       Impact factor: 3.608

8.  Methionine Availability in the Arthropod Intestine Is Elucidated through Identification of Vibrio cholerae Methionine Acquisition Systems.

Authors:  Audrey S Vanhove; Bat-Erdene Jugder; Daniela Barraza; Paula I Watnick
Journal:  Appl Environ Microbiol       Date:  2020-05-19       Impact factor: 4.792

Review 9.  Redox homeostasis, oxidative stress and mitophagy.

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10.  Redox Regulation of the NOR Transcription Factor Is Involved in the Regulation of Fruit Ripening in Tomato.

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Journal:  Plant Physiol       Date:  2020-03-31       Impact factor: 8.340

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