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Unravelling the Effects of the Mutation m.3571insC/MT-ND1 on Respiratory Complexes Structural Organization.
Iommarini, Luisa; Ghelli, Anna; Tropeano, Concetta Valentina; Kurelac, Ivana; Leone, Giulia; Vidoni, Sara; Lombes, Anne; Zeviani, Massimo; Gasparre, Giuseppe; Porcelli, Anna Maria.
Afiliação
  • Iommarini L; Dipartimento di Farmacia e Biotecnologie (FABIT), Università di Bologna, Via Francesco Selmi 3, 40126 Bologna, Italy. luisa.iommarini2@unibo.it.
  • Ghelli A; Dipartimento di Farmacia e Biotecnologie (FABIT), Università di Bologna, Via Francesco Selmi 3, 40126 Bologna, Italy. annamaria.ghelli@unibo.it.
  • Tropeano CV; Dipartimento di Farmacia e Biotecnologie (FABIT), Università di Bologna, Via Francesco Selmi 3, 40126 Bologna, Italy. concettavalentina.tropeano@gmail.com.
  • Kurelac I; Dipartimento Scienze Mediche e Chirurgiche (DIMEC), U.O. Genetica Medica, Pol. Universitario S. Orsola-Malpighi, Università di Bologna, via Massarenti 9, 40138 Bologna, Italy. ivana.kurelac@unibo.it.
  • Leone G; Dipartimento di Farmacia e Biotecnologie (FABIT), Università di Bologna, Via Francesco Selmi 3, 40126 Bologna, Italy. giulia.leone5@studio.unibo.it.
  • Vidoni S; Medical Research Council, Mitochondrial Biology Unit, Cambridge CB2 0XY, UK. Sara_Vidoni@dfci.harvard.edu.
  • Lombes A; Inserm U1016, Institut Cochin, F-75014 Paris, France. anne.lombes@inserm.fr.
  • Zeviani M; Medical Research Council, Mitochondrial Biology Unit, Cambridge CB2 0XY, UK. mdz21@mrc-mbu.cam.ac.uk.
  • Gasparre G; Dipartimento Scienze Mediche e Chirurgiche (DIMEC), U.O. Genetica Medica, Pol. Universitario S. Orsola-Malpighi, Università di Bologna, via Massarenti 9, 40138 Bologna, Italy. giuseppe.gasparre@gmail.com.
  • Porcelli AM; Dipartimento di Farmacia e Biotecnologie (FABIT), Università di Bologna, Via Francesco Selmi 3, 40126 Bologna, Italy. annamaria.porcelli@unibo.it.
Int J Mol Sci ; 19(3)2018 Mar 07.
Article em En | MEDLINE | ID: mdl-29518970
Mammalian respiratory complex I (CI) biogenesis requires both nuclear and mitochondria-encoded proteins and is mostly organized in respiratory supercomplexes. Among the CI proteins encoded by the mitochondrial DNA, NADH-ubiquinone oxidoreductase chain 1 (ND1) is a core subunit, evolutionary conserved from bacteria to mammals. Recently, ND1 has been recognized as a pivotal subunit in maintaining the structural and functional interaction among the hydrophilic and hydrophobic CI arms. A critical role of human ND1 both in CI biogenesis and in the dynamic organization of supercomplexes has been depicted, although the proof of concept is still missing and the critical amount of ND1 protein necessary for a proper assembly of both CI and supercomplexes is not defined. By exploiting a unique model in which human ND1 is allotopically re-expressed in cells lacking the endogenous protein, we demonstrated that the lack of this protein induces a stall in the multi-step process of CI biogenesis, as well as the alteration of supramolecular organization of respiratory complexes. We also defined a mutation threshold for the m.3571insC truncative mutation in mitochondrially encoded NADH:ubiquinone oxidoreductase core subunit 1 (MT-ND1), below which CI and its supramolecular organization is recovered, strengthening the notion that a certain amount of human ND1 is required for CI and supercomplexes biogenesis.
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Texto completo: 1 Bases de dados: MEDLINE Assunto principal: Complexo I de Transporte de Elétrons / Alelos / Mutação / NADH Desidrogenase Idioma: En Revista: Int J Mol Sci Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Itália

Texto completo: 1 Bases de dados: MEDLINE Assunto principal: Complexo I de Transporte de Elétrons / Alelos / Mutação / NADH Desidrogenase Idioma: En Revista: Int J Mol Sci Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Itália