Targeting of reactive isolevuglandins in mitochondrial dysfunction and inflammation

被引:20
作者
Mayorov, Vladimir [1 ]
Uchakin, Peter [1 ]
Amarnath, Venkataraman [2 ]
Panov, Alexander V. [3 ]
Bridges, Christy C. [1 ]
Uzhachenko, Roman [2 ]
Zackert, Bill [2 ]
Moore, Christy S. [2 ]
Davies, Sean [2 ]
Dikalova, Anna [2 ]
Dikalov, Sergey [2 ]
机构
[1] Mercer Univ, Sch Med, Macon, GA 31207 USA
[2] Vanderbilt Univ, Med Ctr, Nashville, TN USA
[3] Inst Mol Biol & Biophys, Novosibirsk, Russia
基金
美国国家卫生研究院;
关键词
Inflammation; Isolevuglandins; Mitochondrial dysfunction; Complex I; Respiration; Mortality; GAMMA-KETOALDEHYDES; OXIDATIVE STRESS; OXIDANT STRESS; NADPH OXIDASE; KIDNEY INJURY; ANTIOXIDANTS; ADDUCTS; BRAIN; LIVER; PHOSPHORYLATION;
D O I
10.1016/j.redox.2019.101300
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
Inflammation is a major cause of morbidity and mortality in Western societies. Despite use of multiple drugs, both chronic and acute inflammation still represent major health burdens. Inflammation produces highly reactive dicarbonyl lipid peroxidation products such as isolevuglandins which covalently modify and cross-link proteins via lysine residues. Mitochondrial dysfunction has been associated with inflammation; however, its molecular mechanisms and pathophysiological role are still obscure. We hypothesized that inflammation-induced isolevuglandins contribute to mitochondrial dysfunction and mortality. To test this hypothesis, we have (a) investigated the mitochondrial dysfunction in response to synthetic 15-E-2-isolevuglandin (IsoLG) and its adducts; (b) developed a new mitochondria-targeted scavenger of isolevuglandins by conjugating 2-hydroxybenzylamine to the lipophilic cation triphenylphosphonium, (4-(4-aminomethyl)-3-hydroxyphenoxy)butyl)-triphenylphosphonium (mito2HOBA); (c) tested if mito2HOBA protects from mitochondrial dysfunction and mortality using a lipopolysaccharide model of inflammation. Acute exposure to either IsoLG or IsoLG adducts with lysine, ethanolamine or phosphatidylethanolamine inhibits mitochondrial respiration and attenuates Complex I activity. Complex II function was much more resistant to IsoLG. We confirmed that mito2HOBA markedly accumulates in isolated mitochondria and it is highly reactive with IsoLGs. To test the role of mitochondrial IsoLGs, we studied the therapeutic potential of mito2HOBA in lipopolysaccharide mouse model of sepsis. Mito2HOBA supplementation in drinking water (0.1 g/L) to lipopolysaccharide treated mice increased survival by 3-fold, improved complex I-mediated respiration, and histopathological analyses supported mito2HOBA-mediated protection of renal cortex from cell injury. These data support the role of mitochondrial IsoLG in mitochondrial dysfunction and inflammation. We conclude that reducing mitochondrial IsoLGs may be a promising therapeutic target in inflammation and conditions associated with mitochondrial oxidative stress and dysfunction.
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页数:9
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共 52 条
[31]   Species- and tissue-specific relationships between mitochondrial permeability transition and generation of ROS in brain and liver mitochondria of rats and mice [J].
Panov, Alexander ;
Dikalov, Sergey ;
Shalbuyeva, Natalia ;
Hemendinger, Richelle ;
Greenamyre, John T. ;
Rosenfeld, Jeffrey .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2007, 292 (02) :C708-C718
[32]   The Neuromediator Glutamate, through Specific Substrate Interactions, Enhances Mitochondrial ATP Production and Reactive Oxygen Species Generation in Nonsynaptic Brain Mitochondria [J].
Panov, Alexander ;
Schonfeld, Peter ;
Dikalov, Sergey ;
Hemendinger, Richelle ;
Bonkovsky, Herbert L. ;
Brooks, Benjamin Rix .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (21) :14448-14456
[33]   Succinate metabolism: a new therapeutic target for myocardial reperfusion injury [J].
Pell, Victoria R. ;
Chouchani, Edward T. ;
Frezza, Christian ;
Murphy, Michael P. ;
Krieg, Thomas .
CARDIOVASCULAR RESEARCH, 2016, 111 (02) :134-141
[34]   Isolevuglandins, a novel class of isoprostenoid derivatives, function as integrated sensors of oxidant stress and are generated by myeloperoxidase in vivo [J].
Poliakov, E ;
Brennan, ML ;
Macpherson, J ;
Zhang, RL ;
Sha, W ;
Narine, IA ;
Salomon, RG ;
Hazen, SL .
FASEB JOURNAL, 2003, 17 (15) :2209-2220
[35]   Mitochondria-Targeted Antioxidants SkQ1 and MitoTEMPO Failed to Exert a Long-Term Beneficial Effect in Murine Polymicrobial Sepsis [J].
Rademann, Pia ;
Weidinger, Adelheid ;
Drechsler, Susanne ;
Meszaros, Andras ;
Zipperle, Johannes ;
Jafarmadar, Mohammad ;
Dumitrescu, Sergiu ;
Hacobian, Ara ;
Ungelenk, Luisa ;
Roestel, Franziska ;
Kaszaki, Jozsef ;
Szabo, Andrea ;
Skulachev, Vladimir P. ;
Bauer, Michael ;
Bahrami, Soheyl ;
Weis, Sebastian ;
Kozlov, Andrey V. ;
Osuchowski, Marcin F. .
OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2017, 2017
[36]   The biochemistry of the isoprostane, neuroprostane, and isofuran pathways of lipid peroxidation [J].
Roberts, LJ ;
Fessel, JP .
CHEMISTRY AND PHYSICS OF LIPIDS, 2004, 128 (1-2) :173-186
[37]   Pathogenesis of Target Organ Damage in Hypertension: Role of Mitochondrial Oxidative Stress [J].
Rubattu, Speranza ;
Pagliaro, Beniamino ;
Pierelli, Giorgia ;
Santolamazza, Caterina ;
Di Castro, Sara ;
Mennuni, Silvia ;
Volpe, Massimo .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2015, 16 (01) :823-839
[38]   Isolevuglandin Adducts in Disease [J].
Salomon, Robert G. ;
Bi, Wenzhao .
ANTIOXIDANTS & REDOX SIGNALING, 2015, 22 (18) :1703-1718
[39]   The role of mitochondrial dysfunction in sepsis-induced multi-organ failure [J].
Singer, Mervyn .
VIRULENCE, 2014, 5 (01) :66-72
[40]   A biochemical approach to the problem of aging: "Megaproject" on membrane-penetrating ions. The first results and prospects [J].
Skulachev, V. P. .
BIOCHEMISTRY-MOSCOW, 2007, 72 (12) :1385-1396