Literature DB >> 22045337

LRPPRC is necessary for polyadenylation and coordination of translation of mitochondrial mRNAs.

Benedetta Ruzzenente1, Metodi D Metodiev, Anna Wredenberg, Ana Bratic, Chan Bae Park, Yolanda Cámara, Dusanka Milenkovic, Volker Zickermann, Rolf Wibom, Kjell Hultenby, Hediye Erdjument-Bromage, Paul Tempst, Ulrich Brandt, James B Stewart, Claes M Gustafsson, Nils-Göran Larsson.   

Abstract

Regulation of mtDNA expression is critical for maintaining cellular energy homeostasis and may, in principle, occur at many different levels. The leucine-rich pentatricopeptide repeat containing (LRPPRC) protein regulates mitochondrial mRNA stability and an amino-acid substitution of this protein causes the French-Canadian type of Leigh syndrome (LSFC), a neurodegenerative disorder characterized by complex IV deficiency. We have generated conditional Lrpprc knockout mice and show here that the gene is essential for embryonic development. Tissue-specific disruption of Lrpprc in heart causes mitochondrial cardiomyopathy with drastic reduction in steady-state levels of most mitochondrial mRNAs. LRPPRC forms an RNA-dependent protein complex that is necessary for maintaining a pool of non-translated mRNAs in mammalian mitochondria. Loss of LRPPRC does not only decrease mRNA stability, but also leads to loss of mRNA polyadenylation and the appearance of aberrant mitochondrial translation. The translation pattern without the presence of LRPPRC is misregulated with excessive translation of some transcripts and no translation of others. Our findings point to the existence of an elaborate machinery that regulates mammalian mtDNA expression at the post-transcriptional level.

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Year:  2011        PMID: 22045337      PMCID: PMC3261557          DOI: 10.1038/emboj.2011.392

Source DB:  PubMed          Journal:  EMBO J        ISSN: 0261-4189            Impact factor:   11.598


  60 in total

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  129 in total

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7.  Fiber-specific and whole-muscle LRP130 expression in rested, exercised, and fasted human skeletal muscle.

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Review 9.  Mitochondrial Diseases Part II: Mouse models of OXPHOS deficiencies caused by defects in regulatory factors and other components required for mitochondrial function.

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10.  Copper supplementation restores cytochrome c oxidase assembly defect in a mitochondrial disease model of COA6 deficiency.

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