4.7 Article

Minocycline exerts uncoupling and inhibiting effects on mitochondrial respiration through adenine nucleotide translocase inhibition

期刊

PHARMACOLOGICAL RESEARCH
卷 65, 期 1, 页码 120-128

出版社

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.phrs.2011.08.007

关键词

Mitochondria; Respiration; ANT; VDAC

资金

  1. Ministerio de Sanidad y Consumo [04005-00]
  2. Junta de Comunidades de Castilla-La Mancha [PI2007/55]
  3. CICYT [SAF2008-05143-C03-1, SAF2008-05143-C03-2, PTDC/QUI-QUI/101409/2008]
  4. Incorporacion de grupos emergentes FIS CARLOS III
  5. Erasmus fellowship

向作者/读者索取更多资源

The present study was aimed to provide a better understanding of the mitochondria-targeted actions of minocycline (MC), a second-generation tetracycline which has cytoprotective effects. Although the specific mechanisms underlying its activity remained elusive, considerable amounts of data indicated mitochondria as the primary pharmacological target of MC. Previous reports have shown that MC affects the oxygen-uptake rate by isolated mitochondria in different respiratory states. Here, we report on the effect of MC, in the range 50-200 mu M, on mitochondrial respiration. State 3 respiration titration with carboxyatractyloside revealed that MC inhibits the adenine nucleotide translocase. Furthermore, we analyze MC channel-forming capacity in the lipid membrane bilayer. Our results confirmed the crucial role of Delta psi and showed a dependence on Ca2+ for MC to have an effect on mitochondria. Our data also indicated that outer and inner mitochondria] membranes contribute differently to this effect, involving the presence of Delta psi (the inner membrane) and VDAC (the outer membrane). Data from three isosmotic media indicate that MC does not increase the permeability of the inner membrane to protons or potassium. In addition, by using mitoplasts and ruthenium red, we showed that Ca2+ uptake is not involved in the MC effect, suggesting involvement of VDAC in the MC interaction with the outer membrane. Our data contribute to unravel the mechanisms behind the mitochondria-targeted activity of the cytoprotective drug MC. (C) 2011 Elsevier Ltd. All rights reserved.

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