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Published on: June 2, 2022
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.
Abstract:
Primary mitochondrial respiratory chain (RC) diseases are heterogeneous in etiology and manifestations but collectively impair cellular energy metabolism. Mechanism(s) by which RC dysfunction causes global cellular sequelae are poorly understood. To identify a common cellular response to RC disease, integrated gene, pathway, and systems biology analyses were performed in human primary RC disease skeletal muscle and fibroblast transcriptomes. Significant changes were evident in muscle across diverse RC complex and genetic etiologies that were consistent with prior reports in other primary RC disease models and involved dysregulation of genes involved in RNA processing, protein translation, transport, and degradation, and muscle structure. Global transcriptional and post-transcriptional dysregulation was also found to occur in a highly tissue-specific fashion. In particular, RC disease muscle had decreased transcription of cytosolic ribosomal proteins suggestive of reduced anabolic processes, increased transcription of mitochondrial ribosomal proteins, shorter 5'-UTRs that likely improve translational efficiency, and stabilization of 3'-UTRs containing AU-rich elements. RC disease fibroblasts showed a strikingly similar pattern of global transcriptome dysregulation in a reverse direction. In parallel with these transcriptional effects, RC disease dysregulated the integrated nutrient-sensing signaling network involving FOXO, PPAR, sirtuins, AMPK, and mTORC1, which collectively sense nutrient availability and regulate cellular growth. Altered activities of central nodes in the nutrient-sensing signaling network were validated by phosphokinase immunoblot analysis in RC inhibited cells. Remarkably, treating RC mutant fibroblasts with nicotinic acid to enhance sirtuin and PPAR activity also normalized mTORC1 and AMPK signaling, restored NADH/NAD(+) redox balance, and improved cellular respiratory capacity. These data specifically highlight a common pathogenesis extending across different molecular and biochemical etiologies of individual RC disorders that involves global transcriptome modifications. We further identify the integrated nutrient-sensing signaling network as a common cellular response that mediates, and may be amenable to targeted therapies for, tissue-specific sequelae of primary mitochondrial RC disease.
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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