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      Targeted overexpression of catalase to mitochondria does not prevent cardioskeletal myopathy in Barth syndrome

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          Abstract

          <p class="first" id="P1">Barth Syndrome (BTHS) is an X-linked recessive disorder characterized by cardiomyopathy and muscle weakness. The underlying cause of BTHS is a mutation in the tafazzin (TAZ) gene, a key enzyme of cardiolipin biosynthesis. The lack of CL arising from loss of TAZ function results in destabilization of the electron transport system, promoting oxidative stress that is thought to contribute to development of cardioskeletal myopathy. Indeed, <i>in vitro</i> studies demonstrate that mitochondria-targeted antioxidants improve contractile capacity in TAZ-deficient cardiomyocytes. The purpose of the present study was to determine if resolving mitochondrial oxidative stress would be sufficient to prevent cardiomyopathy and skeletal myopathy <i>in vivo</i> using a mouse model of BTHS. To this end we crossed mice that overexpress catalase in the mitochondria (MCAT mice) with TAZ-deficient mice (TAZKD) to produce TAZKD mice that selectively overexpress catalase in the mitochondria (TAZKD+MCAT mice). TAZKD+MCAT mice exhibited decreased mitochondrial H <sub>2</sub>O <sub>2</sub> emission and lipid peroxidation compared to TAZKD littermates, indicating decreased oxidative stress. Despite the improvements in oxidative stress, TAZKD+MCAT mice developed cardiomyopathy and mild muscle weakness similar to TAZKD littermates. These findings indicate that resolving oxidative stress is not sufficient to suppress cardioskeletal myopathy associated with BTHS. </p>

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          Author and article information

          Journal
          Journal of Molecular and Cellular Cardiology
          Journal of Molecular and Cellular Cardiology
          Elsevier BV
          00222828
          August 2018
          August 2018
          : 121
          : 94-102
          Article
          10.1016/j.yjmcc.2018.07.001
          6178222
          30008435
          4768f0e0-392d-4235-9f9a-756e847de0ac
          © 2018

          https://www.elsevier.com/tdm/userlicense/1.0/

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