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  The formation of respiratory chain complexes in mitochondria is under the proteolytic control of the m-AAA protease

Arlt, H., Steglich, G., Perryman, R., Guiard, B., Neupert, W., & Langer, T. (1998). The formation of respiratory chain complexes in mitochondria is under the proteolytic control of the m-AAA protease. EMBO J, 17(16), 4837-47. doi:10.1093/emboj/17.16.4837.

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Arlt, H., Author
Steglich, G., Author
Perryman, R., Author
Guiard, B., Author
Neupert, W., Author
Langer, T.1, Author           
Affiliations:
1Department Langer - Mitochondrial Proteostasis, Max Planck Institute for Biology of Ageing, Max Planck Society, ou_3393994              

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Free keywords: Adenosine Triphosphatases/genetics/metabolism Cyclooxygenase 1 Electron Transport Electron Transport Complex IV/genetics/metabolism Fungal Proteins/genetics/metabolism Hydrolysis Introns Isoenzymes/genetics/metabolism Metalloendopeptidases/genetics Mitochondria/enzymology/*metabolism Mutation Phenotype Prostaglandin-Endoperoxide Synthases/genetics/metabolism Protease Inhibitors Protein Processing, Post-Translational RNA Splicing *Saccharomyces cerevisiae Proteins Substrate Specificity
 Abstract: Yta10p (Afg3p) and Yta12p (Rcal1p), members of the conserved AAA family of ATPases, are subunits of the mitochondrial m-AAA protease, an inner membrane ATP-dependent metallopeptidase. Deletion of YTA10 or YTA12 impairs degradation of non-assembled inner membrane proteins and assembly of respiratory chain complexes. Mutations of the proteolytic sites in either YTA10 or YTA12 have been shown to inhibit proteolysis of membrane-integrated polypeptides but not the respiratory competence of the cells, suggesting additional activities of Yta10p and Yta12p. Here we demonstrate essential proteolytic functions of the m-AAA protease in the biogenesis of the respiratory chain. Cells harbouring proteolytically inactive forms of both Yta10p and Yta12p are respiratory deficient and exhibit a pleiotropic phenotype similar to Deltayta10 and Deltayta12 cells. They show deficiencies in expression of the intron-containing mitochondrial genes COX1 and COB. Splicing of COX1 and COB transcripts is impaired in mitochondria lacking m-AAA protease, whilst transcription and translation can proceed in the absence of Yta10p or Yta12p. The function of the m-AAA protease appears to be confined to introns encoding mRNA maturases. Our results reveal an overlapping substrate specificity of the subunits of the m-AAA protease and explain the impaired assembly of respiratory chain complexes by defects in expression of intron-containing genes in mitochondria lacking m-AAA protease.

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 Dates: 1998-08-171998-08-26
 Publication Status: Issued
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 Rev. Type: -
 Identifiers: Other: 9707443
DOI: 10.1093/emboj/17.16.4837
ISSN: 0261-4189 (Print)0261-4189 (Linking)
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Title: EMBO J
Source Genre: Journal
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Pages: - Volume / Issue: 17 (16) Sequence Number: - Start / End Page: 4837 - 47 Identifier: -