Protection of vascular smooth muscle cells by over-expressed methionine sulphoxide reductase A: Role of intracellular localization and substrate availability

被引:15
作者
Haenold, Ronny [1 ,2 ]
Wassef, Ramez [2 ]
Brot, Nathan [3 ]
Neugebauer, Sophie [4 ]
Leipold, Enrico [4 ]
Heinemann, Stefan H. [4 ]
Hoshi, Toshinori [2 ]
机构
[1] Leibniz Inst Age Res, Fritz Lipmann Inst, D-07745 Jena, Germany
[2] Univ Penn, Dept Physiol, Philadelphia, PA 19104 USA
[3] Cornell Univ, Weill Med Coll, Dept Microbiol & Immunol, Hosp Special Surg, New York, NY 10021 USA
[4] Univ Jena, Dept Biophys, Ctr Mol Biomed, D-07745 Jena, Germany
基金
美国国家卫生研究院;
关键词
Vascular smooth muscle cells; methionine sulphoxide reductases; ROS; protein oxidation; oxidative stress; vascular diseases;
D O I
10.1080/10715760802566541
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Methionine sulphoxide reductase A (MSRA) that reduces methionine-S-sulphoxide back to methionine constitutes a catalytic antioxidant mechanism to prevent oxidative damage at multiple sub-cellular loci. This study examined the relative importance of protection of the cytoplasm and mitochondria by MSRA using A-10 vascular smooth muscle cells, a cell type that requires a low level of reactive oxygen species (ROS) for normal function but is readily damaged by higher concentrations of ROS. Adenoviral over-expression of human MSRA variants, targeted to either mitochondria or the cytoplasm, did not change basal viability of non-stressed cells. Oxidative stress caused by treatment with the methionine-preferring oxidizing reagent chloramine-T decreased cell viability in a concentration-dependent manner. Cytoplasmic MSRA preserved cell viability more effectively than mitochondrial MSRA and co-application of S-methyl-L-cysteine, an amino acid that acts as a substrate for MSRA when oxidized, further increased the extent of protection. This suggests an important role for an MSRA catalytic antioxidant cycle for protection of the cytoplasmic compartment against oxidative damage.
引用
收藏
页码:978 / 988
页数:11
相关论文
共 58 条
[1]   A simple method for the rapid generation of recombinant adenovirus vectors [J].
Anderson, RD ;
Haskell, RE ;
Xia, H ;
Roessler, BJ ;
Davidson, BL .
GENE THERAPY, 2000, 7 (12) :1034-1038
[2]   Validation of the chloramine-T induced oxidation of human serum albumin as a model for oxidative damage in vivo [J].
Anraku, M ;
Kragh-Hansen, U ;
Kawai, K ;
Maruyama, T ;
Yamasaki, Y ;
Takakura, Y ;
Otagiri, M .
PHARMACEUTICAL RESEARCH, 2003, 20 (04) :684-692
[3]   Mitochondrial localization of catalase provides optimal protection from H2O2-induced cell death in lung epithelial cells [J].
Arita, Y ;
Harkness, SH ;
Kazzaz, JA ;
Koo, HC ;
Joseph, A ;
Melendez, JA ;
Davis, JM ;
Chander, A ;
Li, YC .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2006, 290 (05) :L978-L986
[4]   Mitochondria-directed therapeutics [J].
Armstrong, Jeffrey S. .
ANTIOXIDANTS & REDOX SIGNALING, 2008, 10 (03) :575-578
[5]   Overexpression of catalase in cytosolic or mitochondrial compartment protects HepG2 cells against oxidative injury [J].
Bai, JX ;
Rodriguez, AM ;
Melendez, JA ;
Cederbaum, AI .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (37) :26217-26224
[6]   APOPTOSIS OF HUMAN VASCULAR SMOOTH-MUSCLE CELLS DERIVED FROM NORMAL VESSELS AND CORONARY ATHEROSCLEROTIC PLAQUES [J].
BENNETT, MR ;
EVAN, GI ;
SCHWARTZ, SM .
JOURNAL OF CLINICAL INVESTIGATION, 1995, 95 (05) :2266-2274
[7]   The vascular NADPH oxidase subunit p47phox is involved in redox-mediated gene expression [J].
Brandes, RP ;
Miller, FJ ;
Beer, S ;
Haendeler, J ;
Hoffmann, J ;
Ha, T ;
Holland, SM ;
Görlach, A ;
Busse, R .
FREE RADICAL BIOLOGY AND MEDICINE, 2002, 32 (11) :1116-1122
[8]   REDUCTION OF N-ACETYL METHIONINE SULFOXIDE - A SIMPLE ASSAY FOR PEPTIDE METHIONINE SULFOXIDE REDUCTASE [J].
BROT, N ;
WERTH, J ;
KOSTER, D ;
WEISSBACH, H .
ANALYTICAL BIOCHEMISTRY, 1982, 122 (02) :291-294
[9]   Overexpression of human catalase inhibits proliferation and promotes apoptosis in vascular smooth muscle cells [J].
Brown, MR ;
Miller, FJ ;
Li, WG ;
Ellingson, AN ;
Mozena, JD ;
Chatterjee, P ;
Engelhardt, JF ;
Zwacka, RM ;
Oberley, LW ;
Fang, X ;
Spector, AA ;
Weintraub, NL .
CIRCULATION RESEARCH, 1999, 85 (06) :524-533
[10]   Mitochondrial free radical generation, oxidative stress, and aging [J].
Cadenas, E ;
Davies, KJA .
FREE RADICAL BIOLOGY AND MEDICINE, 2000, 29 (3-4) :222-230