Mitochondrial Peroxiredoxin 3 Is Rapidly Oxidized and Hyperoxidized by Fatty Acid Hydroperoxides

被引:5
|
作者
Cardozo, Giuliana [1 ,2 ]
Mastrogiovanni, Mauricio [1 ,2 ]
Zeida, Ari [1 ,2 ]
Viera, Nicolas [1 ,2 ]
Radi, Rafael [1 ,2 ]
Reyes, Anibal M. [1 ,2 ]
Trujillo, Madia [1 ,2 ]
机构
[1] Univ Republica, Fac Med, Dept Bioquim, Montevideo 11800, Uruguay
[2] Univ Republica, Ctr Invest Biomed, Montevideo 11800, Uruguay
关键词
peroxiredoxin; mitochondria; fatty acid hydroperoxide; lipid peroxidation; antioxidant systems; kinetics; OXIDATIVE STRESS; GLUTATHIONE-PEROXIDASE; HYDROGEN-PEROXIDE; MYCOBACTERIUM-TUBERCULOSIS; SUBSTRATE-SPECIFICITY; ARACHIDONIC-ACID; PROTEIN; BINDING; REDUCTION; CATALYSIS;
D O I
10.3390/antiox12020408
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
Human peroxiredoxin 3 (HsPrx3) is a thiol-based peroxidase responsible for the reduction of most hydrogen peroxide and peroxynitrite formed in mitochondria. Mitochondrial disfunction can lead to membrane lipoperoxidation, resulting in the formation of lipid-bound fatty acid hydroperoxides ((L)FA-OOHs) which can be released to become free fatty acid hydroperoxides ((f)FA-OOHs). Herein, we report that HsPrx3 is oxidized and hyperoxidized by (f)FA-OOHs including those derived from arachidonic acid and eicosapentaenoic acid peroxidation at position 15 with remarkably high rate constants of oxidation (>3.5 x 10(7) M(-1)s(-1)) and hyperoxidation (similar to 2 x 10(7) M(-1)s(-1)). The endoperoxide-hydroperoxide PGG(2), an intermediate in prostanoid synthesis, oxidized HsPrx3 with a similar rate constant, but was less effective in causing hyperoxidation. Biophysical methodologies suggest that HsPrx3 can bind hydrophobic structures. Indeed, molecular dynamic simulations allowed the identification of a hydrophobic patch near the enzyme active site that can allocate the hydroperoxide group of (f)FA-OOHs in close proximity to the thiolate in the peroxidatic cysteine. Simulations performed using available and herein reported kinetic data indicate that HsPrx3 should be considered a main target for mitochondrial (f)FA-OOHs. Finally, kinetic simulation analysis support that mitochondrial (f)FA-OOHs formation fluxes in the range of nM/s are expected to contribute to HsPrx3 hyperoxidation, a modification that has been detected in vivo under physiological and pathological conditions.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] Fatty acid hydroperoxides biotransformation by potato tuber cell-free extracts
    Fauconnier, ML
    Delcarte, J
    Jaziri, M
    du Jardin, P
    Marlier, M
    JOURNAL OF PLANT PHYSIOLOGY, 2002, 159 (10) : 1055 - 1060
  • [32] Oxidized derivatives of ω-3 fatty acids:: identification of IPF3α-VI in human urine
    Lawson, John A.
    Kim, Seongjin
    Powell, William S.
    FitzGerald, Garret A.
    Rokach, Joshua
    JOURNAL OF LIPID RESEARCH, 2006, 47 (11) : 2515 - 2524
  • [33] Nickel inhibits mitochondrial fatty acid oxidation
    Uppala, Radha
    McKinney, Richard W.
    Brant, Kelly A.
    Fabisiak, James P.
    Goetzman, Eric S.
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2015, 463 (04) : 806 - 810
  • [34] Aspirin increases mitochondrial fatty acid oxidation
    Uppala, Radha
    Dudiak, Brianne
    Beck, Megan E.
    Bharathi, Sivakama S.
    Zhang, Yuxun
    Stolz, Donna B.
    Goetzman, Eric S.
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2017, 482 (02) : 346 - 351
  • [35] Peroxiredoxin 6 Confers Protection Against Nonalcoholic Fatty Liver Disease Through Maintaining Mitochondrial Function
    Lee, Dong Hun
    Jung, Yu Yeon
    Park, Mi Hee
    Jo, Mi Ran
    Han, Sang Bae
    Yoon, Do Young
    Roh, Yoon Seok
    Hong, Jin Tae
    ANTIOXIDANTS & REDOX SIGNALING, 2019, 31 (05) : 387 - 402
  • [36] Does lysine drive the conversion of fatty acid hydroperoxides to aldehydes and alkyl-furans?
    Wanjala, George W.
    Onyango, Arnold N.
    David, Abuga A.
    Onyango, Calvin
    Makayoto, Moses
    SCIENTIFIC AFRICAN, 2021, 12
  • [37] Central Acting Hsp10 Regulates Mitochondrial Function, Fatty Acid Metabolism, and Insulin Sensitivity in the Hypothalamus
    Wardelmann, Kristina
    Rath, Michaela
    Castro, Jose Pedro
    Bluemel, Sabine
    Schell, Mareike
    Hauffe, Robert
    Schumacher, Fabian
    Flore, Tanina
    Ritter, Katrin
    Wernitz, Andreas
    Hosoi, Toru
    Ozawa, Koichiro
    Kleuser, Burkhard
    Weiss, Jurgen
    Schurmann, Annette
    Kleinridders, Andre
    ANTIOXIDANTS, 2021, 10 (05)
  • [38] Epilipidomics reveals lipid fatty acid and headgroup modification in gas plasma-oxidized biomembranes
    Striesow, Johanna
    Nasri, Zahra
    von Woedtke, Thomas
    Bekeschus, Sander
    Wende, Kristian
    REDOX BIOLOGY, 2024, 77
  • [39] Chemical and immunochemical identification of propanoyllysine derived from oxidized n-3 polyunsaturated fatty acid
    Hisaka, Shinsuke
    Kato, Yoji
    Kitamoto, Noritoshi
    Yoshida, Akihiro
    Kubushiro, Yoshiko
    Naito, Michitaka
    Osawa, Toshihiko
    FREE RADICAL BIOLOGY AND MEDICINE, 2009, 46 (11) : 1463 - 1471
  • [40] Skeletal muscle overexpression of short isoform Sirt3 altered mitochondrial cardiolipin content and fatty acid composition
    Chabi, Beatrice
    Fouret, Gilles
    Lecomte, Jerome
    Cortade, Fabienne
    Pessemesse, Laurence
    Baati, Narjes
    Coudray, Charles
    Lin, Ligen
    Tong, Qiang
    Wrutniak-Cabello, Chantal
    Casas, Francois
    Feillet-Coudray, Christine
    JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 2018, 50 (02) : 131 - 142