Translin facilitates RNA polymerase II dissociation and suppresses genome instability during RNase H2- and

Natalia Gomez-Escobar1, Ahad A A Alsaiari1, Hanadi A S Alahamadi1

  • 1North West Cancer Research Institute, School of Medical Sciences, Bangor University, Bangor, United Kingdom.

Plos Genetics
|June 17, 2022
PubMed

Insights

Translin, a nucleic acid binding protein, has a newly discovered role in genome stability. Loss of Translin function increases transcription-associated recombination and genome instability, offering insights into genetic diseases.

Area of Science:

  • Molecular Biology
  • Genetics
  • Cancer Biology

Background:

  • Translin is a conserved nucleic acid binding protein involved in mammalian biology and genetic diseases.
  • It forms a complex with Trax, exhibiting functions in RNA interference (RNAi) and microRNA processing.
  • The Translin-Trax complex has been investigated as a therapeutic target due to its oncogenic activities.

Purpose of the Study:

  • To investigate a novel, Trax- and RNAi-independent function of Translin.
  • To elucidate Translin's role in genome stability and transcription.

Main Methods:

  • Investigated Translin's function in dissociating RNA polymerase II from genomic templates.
  • Assessed the impact of Translin loss on transcription-associated recombination and genome instability.

Main Results:

  • Translin plays a role in dissociating RNA polymerase II from its genomic template.
  • Loss of Translin function leads to increased transcription-associated recombination.
  • Elevated genome instability is observed in the absence of functional Translin.

Conclusions:

  • Translin has a Trax- and RNAi-independent function critical for maintaining genome stability.
  • This finding provides genetic insight into Translin's role in chromosomal rearrangements and human genetic diseases.
  • Understanding this function enhances the comprehension of Translin as an oncological therapeutic target.

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