Human mitochondrial complex I assembles through the combination of evolutionary conserved modules: a framework to interpret complex I deficiencies
Open Access
- 18 August 2004
- journal article
- research article
- Published by Oxford University Press (OUP) in Human Molecular Genetics
- Vol. 13 (20) , 2461-2472
- https://doi.org/10.1093/hmg/ddh262
Abstract
With 46 subunits, human mitochondrial complex I is the largest enzyme of the oxidative phosphorylation system. We have studied the assembly of complex I in cultured human cells. This will provide essential information about the nature of complex I deficiencies and will enhance our understanding of mitochondrial disease mechanisms. We have found that 143B206 rho zero cells, not containing mitochondrial DNA, are still able to form complex I subcomplexes. To further address the nature of these subcomplexes, we depleted 143B osteosarcoma cells of complex I by inhibiting mitochondrial protein translation with doxycycline. After removing this drug, complex I formation resumes and assembly intermediates were observed by two-dimensional blue native electrophoresis. Analysis of the observed subcomplexes indicates that assembly of human complex I is a semi-sequential process in which different preassembled subcomplexes are joined to form a fully assembled complex. The membrane part of the complex is formed in distinct steps. The B17 subunit is part of a subcomplex to which ND1, ND6 and PSST are subsequently added. This is bound to a hydrophilic subcomplex containing the 30 and 49 kDa subunits, to which a subcomplex including the 39 kDa subunit is incorporated, and later on the 18 and 24 kDa subunits. At a later stage more subunits, including the 15 kDa, are added and holo-complex I is formed. Our results suggest that human complex I assembly resembles that of Neurospora crassa, in which a membrane arm is formed and assembled to a preformed peripheral arm, and support ideas about modular evolution.Keywords
This publication has 50 references indexed in Scilit:
- Function and dysfunction of the oxidative phosphorylation systemPublished by Springer Nature ,2004
- Differences in assembly or stability of complex I and other mitochondrial OXPHOS complexes in inherited complex I deficiencyHuman Molecular Genetics, 2004
- Mutant NDUFS3 subunit of mitochondrial complex I causes Leigh syndromeJournal of Medical Genetics, 2004
- Impaired complex I assembly in a Leigh syndrome patient with a novel missense mutation in the ND6 geneAnnals of Neurology, 2003
- Identification and Characterization of a Common Set of Complex I Assembly Intermediates in Mitochondria from Patients with Complex I DeficiencyJournal of Biological Chemistry, 2003
- The nuclear encoded subunits of complex I from bovine heart mitochondriaBiochimica et Biophysica Acta (BBA) - Bioenergetics, 2003
- Mitochondrial Respiratory-Chain DiseasesNew England Journal of Medicine, 2003
- Cytochrome oxidase in health and diseaseGene, 2002
- The genetics and pathology of oxidative phosphorylationNature Reviews Genetics, 2001
- Respiratory chain complex I deficiencyAmerican Journal of Medical Genetics, 2001