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Published on: November 13, 2014
Tissue-specific consequences of impaired RNA surveillance converge on mitochondrial homeostasis
Abstract:
RNA surveillance pathways maintain transcriptome integrity by eliminating aberrant, excess, and non-functional RNAs, yet it remains unclear whether distinct tissues exhibit equivalent requirements for RNA quality control. Here, we investigated the tissue-specific consequences of impaired RNA surveillance using a Drosophila allelic series of the RNA exosome subunit Rrp40. Comparative transcriptomic analyses revealed that neuronal-enriched head tissue and muscle-enriched thorax tissue exhibit largely distinct molecular programs following reduced RNA exosome activity despite disruption of the same RNA surveillance machinery. Antisense RNAs emerged as particularly sensitive targets of RNA exosome dysfunction, accumulating preferentially in neuronal tissue and largely independent of changes in overlapping sense host transcripts, indicating enhanced requirements for RNA-level quality control within the nervous system. Although tissue-specific transcriptomic alterations diverged substantially, multiple analyses converged on mitochondrial homeostasis as a shared vulnerability. Reduced RNA exosome activity was associated with widespread dysregulation of nuclear-encoded mitochondrial genes, mitochondrial dynamics pathways, and mitochondrial RNA regulatory programs, accompanied by progressive defects in mitochondrial organization, membrane potential, and ATP production. Mitochondrial dysfunction was further associated with activation of proteostatic stress pathways, including p62 accumulation and increased ubiquitination. Together, these findings demonstrate that tissue context shapes the molecular consequences of impaired RNA surveillance while revealing mitochondrial homeostasis as a convergent vulnerability arising from transcriptome instability. More broadly, our findings suggest that distinct tissue-specific defects in RNA regulation converge on common cellular vulnerabilities that ultimately govern tissue homeostasis.
Insights
RNA surveillance quality control impacts tissues differently. Impaired RNA exosome function in Drosophila reveals distinct molecular changes in neuronal and muscle tissues, converging on mitochondrial dysfunction.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- RNA surveillance pathways are crucial for maintaining transcriptome integrity by removing aberrant RNAs.
- The tissue-specific requirements for RNA quality control remain largely unexplored.
Purpose of the Study:
- To investigate the tissue-specific consequences of impaired RNA surveillance using Drosophila models.
- To identify common cellular vulnerabilities arising from transcriptome instability across different tissues.
Main Methods:
- Utilized a Drosophila allelic series of the RNA exosome subunit Rrp40 to impair RNA surveillance.
- Performed comparative transcriptomic analyses on neuronal-enriched head and muscle-enriched thorax tissues.
- Assessed mitochondrial function, proteostatic stress pathways, and RNA regulatory programs.
Main Results:
- Reduced RNA exosome activity led to distinct molecular programs in neuronal versus muscle tissues.
- Antisense RNAs accumulated preferentially in neuronal tissue, indicating heightened RNA quality control needs.
- Mitochondrial homeostasis was a shared vulnerability, with dysregulation of mitochondrial genes, dynamics, and RNA regulation observed.
- Mitochondrial dysfunction correlated with activation of proteostatic stress pathways.
Conclusions:
- Tissue context significantly shapes the molecular consequences of impaired RNA surveillance.
- Mitochondrial homeostasis represents a convergent vulnerability arising from transcriptome instability.
- Distinct tissue-specific RNA regulatory defects can converge on common cellular vulnerabilities impacting tissue homeostasis.
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