Literature DB >> 30385716

Disentangling oxidation/hydrolysis reactions of brain mitochondrial cardiolipins in pathogenesis of traumatic injury.

Honglu Chao1,2,3, Tamil S Anthonymuthu1,2, Elizabeth M Kenny1,2, Andrew A Amoscato4, Laura K Cole5, Grant M Hatch5, Jing Ji1,2,3, Valerian E Kagan4,6, Hülya Bayır1,2,5.   

Abstract

Mechanical injury to the brain triggers multiple biochemical events whose specific contributions to the pathogenesis define clinical manifestations and the overall outcome. Among many factors, mitochondrial injury has recently attracted much attention due to the importance of the organelle for bioenergetics as well as intra- and extracellular signaling and cell death. Assuming the essentiality of a mitochondria-unique phospholipid, cardiolipin (CL), for the structural and functional organization of mitochondria, here we applied global (phospho) lipidomics and redox lipidomics to reveal and identify CL modifications during controlled cortical impact (CCI). We revealed 2 major pathways activated in the CCI-injured brain as time-specific responses: early accumulation of oxidized CL (CLox) products was followed by hydrolytic reactions yielding monolyso-CLs (mCLs) and free fatty acids. To quantitatively assess possible specific roles of peroxidation and hydrolysis of mitochondrial CL, we performed comparative studies of CL modifications using an animal model of Barth syndrome where deficiency of CL reacylation (Tafazzin [Taz] deficiency) was associated exclusively with the accumulation of mCLs (but not CLox). By comparing the in vitro and in vivo results with genetic manipulation of major CL-, CLox-, and mCL-metabolizing enzymes, calcium-independent phospholipase A2γ and Taz, we concluded that the 2 processes - CL oxidation and CL hydrolysis - act as mutually synergistically enhancing components of the pathogenic mechanism of mitochondrial injury in traumatic brain injury. This emphasizes the need for combined therapeutic approaches preventing the formation of both CLox and mCL.

Entities:  

Keywords:  Cell Biology; Mitochondria; Neuroscience

Mesh:

Substances:

Year:  2018        PMID: 30385716      PMCID: PMC6238757          DOI: 10.1172/jci.insight.97677

Source DB:  PubMed          Journal:  JCI Insight        ISSN: 2379-3708


  70 in total

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Journal:  J Biol Chem       Date:  2012-07-09       Impact factor: 5.157

Review 2.  Barth syndrome, a human disorder of cardiolipin metabolism.

Authors:  Michael Schlame; Mindong Ren
Journal:  FEBS Lett       Date:  2006-07-17       Impact factor: 4.124

3.  Polynitroxylated pegylated hemoglobin: a novel neuroprotective hemoglobin for acute volume-limited fluid resuscitation after combined traumatic brain injury and hemorrhagic hypotension in mice.

Authors:  David K Shellington; Lina Du; Xianren Wu; Jennifer Exo; Vincent Vagni; Li Ma; Keri Janesko-Feldman; Robert S B Clark; Hülya Bayir; C Edward Dixon; Larry W Jenkins; Carleton J C Hsia; Patrick M Kochanek
Journal:  Crit Care Med       Date:  2011-03       Impact factor: 7.598

4.  Cytochrome c acts as a cardiolipin oxygenase required for release of proapoptotic factors.

Authors:  Valerian E Kagan; Vladimir A Tyurin; Jianfei Jiang; Yulia Y Tyurina; Vladimir B Ritov; Andrew A Amoscato; Anatoly N Osipov; Natalia A Belikova; Alexandr A Kapralov; Vidisha Kini; Irina I Vlasova; Qing Zhao; Meimei Zou; Peter Di; Dimitry A Svistunenko; Igor V Kurnikov; Gregory G Borisenko
Journal:  Nat Chem Biol       Date:  2005-08-14       Impact factor: 15.040

5.  Mitochondrial injury after mechanical stretch of cortical neurons in vitro: biomarkers of apoptosis and selective peroxidation of anionic phospholipids.

Authors:  Jing Ji; Yulia Y Tyurina; Minke Tang; Weihong Feng; Donna B Stolz; Robert S B Clark; David F Meaney; Patrick M Kochanek; Valerian E Kagan; Hülya Bayır
Journal:  J Neurotrauma       Date:  2011-11-04       Impact factor: 5.269

6.  Barth syndrome: clinical features and confirmation of gene localisation to distal Xq28.

Authors:  L C Adès; A K Gedeon; M J Wilson; M Latham; M W Partington; J C Mulley; J Nelson; K Lui; D O Sillence
Journal:  Am J Med Genet       Date:  1993-02-01

Review 7.  The role of cardiolipin in the structural organization of mitochondrial membranes.

Authors:  Michael Schlame; Mindong Ren
Journal:  Biochim Biophys Acta       Date:  2009-05-04

8.  Mitochondrial Respiratory Chain Inhibitors Involved in ROS Production Induced by Acute High Concentrations of Iodide and the Effects of SOD as a Protective Factor.

Authors:  Lingyan Wang; Qi Duan; Tingting Wang; Mohamed Ahmed; Na Zhang; Yongmei Li; Lanying Li; Xiaomei Yao
Journal:  Oxid Med Cell Longev       Date:  2015-07-29       Impact factor: 6.543

9.  A mitochondrial pathway for biosynthesis of lipid mediators.

Authors:  Yulia Y Tyurina; Samuel M Poloyac; Vladimir A Tyurin; Alexander A Kapralov; Jianfei Jiang; Tamil Selvan Anthonymuthu; Valentina I Kapralova; Anna S Vikulina; Mi-Yeon Jung; Michael W Epperly; Dariush Mohammadyani; Judith Klein-Seetharaman; Travis C Jackson; Patrick M Kochanek; Bruce R Pitt; Joel S Greenberger; Yury A Vladimirov; Hülya Bayır; Valerian E Kagan
Journal:  Nat Chem       Date:  2014-04-20       Impact factor: 24.427

10.  Human trifunctional protein alpha links cardiolipin remodeling to beta-oxidation.

Authors:  William A Taylor; Edgard M Mejia; Ryan W Mitchell; Patrick C Choy; Genevieve C Sparagna; Grant M Hatch
Journal:  PLoS One       Date:  2012-11-09       Impact factor: 3.240

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  14 in total

1.  Detection of brain specific cardiolipins in plasma after experimental pediatric head injury.

Authors:  Tamil S Anthonymuthu; Elizabeth M Kenny; Zachary E Hier; Robert S B Clark; Patrick M Kochanek; Valerian E Kagan; Hülya Bayır
Journal:  Exp Neurol       Date:  2019-04-11       Impact factor: 5.330

Review 2.  The role of cardiolipin concentration and acyl chain composition on mitochondrial inner membrane molecular organization and function.

Authors:  Edward Ross Pennington; Katsuhiko Funai; David A Brown; Saame Raza Shaikh
Journal:  Biochim Biophys Acta Mol Cell Biol Lipids       Date:  2019-04-02       Impact factor: 4.698

Review 3.  Mitochondrial damage & lipid signaling in traumatic brain injury.

Authors:  Andrew M Lamade; Tamil S Anthonymuthu; Zachary E Hier; Yuan Gao; Valerian E Kagan; Hülya Bayır
Journal:  Exp Neurol       Date:  2020-04-11       Impact factor: 5.330

Review 4.  Redox phospholipidomics of enzymatically generated oxygenated phospholipids as specific signals of programmed cell death.

Authors:  V E Kagan; Y Y Tyurina; W Y Sun; I I Vlasova; H Dar; V A Tyurin; A A Amoscato; R Mallampalli; P C A van der Wel; R R He; A A Shvedova; D I Gabrilovich; H Bayir
Journal:  Free Radic Biol Med       Date:  2019-12-25       Impact factor: 7.376

Review 5.  Antioxidant Synergy of Mitochondrial Phospholipase PNPLA8/iPLA2γ with Fatty Acid-Conducting SLC25 Gene Family Transporters.

Authors:  Martin Jabůrek; Pavla Průchová; Blanka Holendová; Alexander Galkin; Petr Ježek
Journal:  Antioxidants (Basel)       Date:  2021-04-26

Review 6.  Cardiolipin, Mitochondria, and Neurological Disease.

Authors:  Micol Falabella; Hilary J Vernon; Michael G Hanna; Steven M Claypool; Robert D S Pitceathly
Journal:  Trends Endocrinol Metab       Date:  2021-02-24       Impact factor: 12.015

7.  Spectroscopic detection of traumatic brain injury severity and biochemistry from the retina.

Authors:  Carl Banbury; Iain Styles; Neil Eisenstein; Elisa R Zanier; Gloria Vegliante; Antonio Belli; Ann Logan; Pola Goldberg Oppenheimer
Journal:  Biomed Opt Express       Date:  2020-10-08       Impact factor: 3.732

Review 8.  Unraveling the Link Between Mitochondrial Dynamics and Neuroinflammation.

Authors:  Lilian Gomes de Oliveira; Yan de Souza Angelo; Antonio H Iglesias; Jean Pierre Schatzmann Peron
Journal:  Front Immunol       Date:  2021-03-16       Impact factor: 7.561

9.  Development and Characterization of a Probe Device toward Intracranial Spectroscopy of Traumatic Brain Injury.

Authors:  Max Mowbray; Carl Banbury; Jonathan J S Rickard; David J Davies; Pola Goldberg Oppenheimer
Journal:  ACS Biomater Sci Eng       Date:  2021-02-22

10.  iPLA2β-mediated lipid detoxification controls p53-driven ferroptosis independent of GPX4.

Authors:  Delin Chen; Bo Chu; Xin Yang; Zhaoqi Liu; Ying Jin; Ning Kon; Raul Rabadan; Xuejun Jiang; Brent R Stockwell; Wei Gu
Journal:  Nat Commun       Date:  2021-06-15       Impact factor: 14.919

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