Interfering with retrotransposition by two types of CRISPR effectors: Cas12a and Cas13a

Niubing Zhang1,2, Xinyun Jing1, Yuanhua Liu3

  • 11Key Laboratory of Synthetic Biology, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, 200032 China.

Cell Discovery
|May 22, 2020
PubMed

Insights

CRISPR-Cas12a and CRISPR-Cas13a systems show promise in combating retroviruses. Cas12a strongly inhibited retrotransposition, while Cas13a also interfered, though its cell-cycle arrest mechanism differed in eukaryotes.

Area of Science:

  • Molecular Biology
  • Gene Editing Technologies
  • Retrovirus Research

Background:

  • CRISPR systems offer potential for combating retroviral pathogens.
  • Cas12a and Cas13a are novel CRISPR effectors with uncharacterized roles in retrovirus interference.
  • Cas13a's RNA-targeting ability was previously shown to provide defense against DNA phage infections in bacteria.

Purpose of the Study:

  • To repurpose CRISPR-Cas12a and CRISPR-Cas13a systems to interfere with retrotransposition.
  • To evaluate the distinct mechanisms of action of Cas12a and Cas13a against retrotransposons.
  • To establish parameters for developing new therapeutic strategies against retrovirus-related diseases.

Main Methods:

  • Utilized the long terminal repeat retrotransposon Tf1 as a model system, sharing similarities with retroviruses.
  • Engineered constructs for persistent crRNA targeting to enhance Cas12a efficacy.
  • Assessed the impact of Cas12a and Cas13a targeting on Tf1 retrotransposition in *S. pombe*.

Main Results:

  • Cas12a demonstrated strong inhibition of Tf1 retrotransposition, with residual activity attributed to virus-like particles.
  • Persistent crRNA targeting completely eliminated residual Cas12a activity.
  • Cas13a targeting of Tf1 RNA intermediates significantly inhibited retrotransposition, but did not induce cell growth arrest in *S. pombe*, unlike in bacterial hosts.

Conclusions:

  • CRISPR-Cas12a and -Cas13a are effective tools for interfering with retrotransposition.
  • Cas12a provides robust inhibition, while Cas13a's mechanism differs in eukaryotic cells compared to bacteria.
  • Findings provide insights into novel CRISPR mechanisms for combating retroviral pathogens and inform future therapeutic strategies.

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