Primary respiratory chain disease causes tissue-specific dysregulation of the global transcriptome and

Zhe Zhang1, Mai Tsukikawa, Min Peng

  • 1Center for Biomedical Informatics, The Children's Hospital of Philadelphia, Philadelphia, Pennsylvania, United States of America.

Plos One
|July 30, 2013
PubMed

Insights

Primary mitochondrial respiratory chain (RC) diseases impair cellular energy. This study reveals common transcriptome and nutrient-sensing network dysregulation across RC disorders, suggesting potential therapeutic targets for these conditions.

Area of Science:

  • Cellular Biology
  • Genetics
  • Metabolic Disorders

Background:

  • Primary mitochondrial respiratory chain (RC) diseases are a group of disorders that impair cellular energy metabolism.
  • The precise mechanisms by which RC dysfunction leads to widespread cellular problems are not fully understood.
  • Identifying common cellular responses could reveal shared pathogenic pathways and therapeutic strategies.

Purpose of the Study:

  • To identify a common cellular response to primary mitochondrial RC diseases.
  • To investigate the role of gene and pathway dysregulation in RC disorders.
  • To explore potential therapeutic interventions targeting common cellular pathways.

Main Methods:

  • Integrated gene, pathway, and systems biology analyses of human primary RC disease skeletal muscle and fibroblast transcriptomes.
  • Analysis of transcriptional and post-transcriptional modifications, including RNA processing and translation efficiency.
  • Validation of nutrient-sensing signaling network alterations using phosphokinase immunoblot analysis and treatment with nicotinic acid.

Main Results:

  • Significant, tissue-specific transcriptome dysregulation was observed in RC disease muscle and fibroblasts, affecting RNA processing, protein translation, and cellular structure.
  • RC disease altered the integrated nutrient-sensing signaling network (FOXO, PPAR, sirtuins, AMPK, mTORC1).
  • Nicotinic acid treatment in RC mutant fibroblasts normalized signaling pathways, restored redox balance, and improved cellular respiratory capacity.

Conclusions:

  • Primary mitochondrial RC diseases share a common pathogenesis involving global transcriptome modifications and dysregulation of the nutrient-sensing signaling network.
  • The nutrient-sensing network acts as a common cellular response mediating tissue-specific sequelae of RC diseases.
  • Targeting the nutrient-sensing network may offer a therapeutic strategy for primary mitochondrial RC diseases.

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