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Updated: Jul 5, 2025

Studying Age-dependent Genomic Instability using the S. cerevisiae Chronological Lifespan Model
Published on: September 29, 2011
Yeast EndoG prevents genome instability by degrading cytoplasmic DNA
Yang Yu1, Xin Wang2,3, Jordan Fox1
1Baylor College of Medicine, Department of Molecular and Human Genetics, One Baylor Plaza, Houston, TX 77030, USA.
Abstract:
In metazoans release of mitochondrial DNA or retrotransposon cDNA to cytoplasm can cause sterile inflammation and disease 1. Cytoplasmic nucleases degrade these DNA species to limit inflammation 2,3. It remains unknown whether degradation these DNA also prevents nuclear genome instability. To address this question, we decided to identify the nuclease regulating transfer of these cytoplasmic DNA species to the nucleus. We used an amplicon sequencing-based method in yeast enabling analysis of millions of DSB repair products. Nuclear mtDNA (NUMTs) and retrotransposon cDNA insertions increase dramatically in nondividing stationary phase cells. Yeast EndoG (Nuc1) nuclease limits insertions of cDNA and transfer of very long mtDNA (>10 kb) that forms unstable circles or rarely insert in the genome, but it promotes formation of short NUMTs (~45-200 bp). Nuc1 also regulates transfer of cytoplasmic DNA to nucleus in aging or during meiosis. We propose that Nuc1 preserves genome stability by degrading retrotransposon cDNA and long mtDNA, while short NUMTs can originate from incompletely degraded mtDNA. This work suggests that nucleases eliminating cytoplasmic DNA play a role in preserving genome stability.
Insights
Yeast Nuc1 nuclease prevents nuclear genome instability by degrading cytoplasmic DNA like mitochondrial DNA (mtDNA) and retrotransposon cDNA. This enzyme limits harmful DNA insertions, preserving genome stability.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Release of mitochondrial DNA (mtDNA) and retrotransposon cDNA into the cytoplasm can trigger sterile inflammation and disease in metazoans.
- Cytoplasmic nucleases degrade these DNA species to mitigate inflammation, but their role in preventing nuclear genome instability is unclear.
Conclusions:
- Nuc1 preserves genome stability by degrading potentially harmful retrotransposon cDNA and long mtDNA fragments.
- Short NUMTs may arise from incompletely degraded mtDNA, suggesting a link between nuclease activity and NUMT formation.
- Nucleases that eliminate cytoplasmic DNA play a crucial role in maintaining overall genome stability.
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