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Updated: Dec 21, 2025

Substrate Generation for Endonucleases of CRISPR/Cas Systems
Published on: September 8, 2012
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.
Abstract:
CRISPRs are a promising tool being explored in combating exogenous retroviral pathogens and in disabling endogenous retroviruses for organ transplantation. The Cas12a and Cas13a systems offer novel mechanisms of CRISPR actions that have not been evaluated for retrovirus interference. Particularly, a latest study revealed that the activated Cas13a provided bacterial hosts with a "passive protection" mechanism to defend against DNA phage infection by inducing cell growth arrest in infected cells, which is especially significant as it endows Cas13a, a RNA-targeting CRISPR effector, with mount defense against both RNA and DNA invaders. Here, by refitting long terminal repeat retrotransposon Tf1 as a model system, which shares common features with retrovirus regarding their replication mechanism and life cycle, we repurposed CRISPR-Cas12a and -Cas13a to interfere with Tf1 retrotransposition, and evaluated their different mechanisms of action. Cas12a exhibited strong inhibition on retrotransposition, allowing marginal Tf1 transposition that was likely the result of a lasting pool of Tf1 RNA/cDNA intermediates protected within virus-like particles. The residual activities, however, were completely eliminated with new constructs for persistent crRNA targeting. On the other hand, targeting Cas13a to Tf1 RNA intermediates significantly inhibited Tf1 retrotransposition. However, unlike in bacterial hosts, the sustained activation of Cas13a by Tf1 transcripts did not cause cell growth arrest in S. pombe, indicating that virus-activated Cas13a likely acted differently in eukaryotic cells. The study gained insight into the actions of novel CRISPR mechanisms in combating retroviral pathogens, and established system parameters for developing new strategies in treatment of retrovirus-related diseases.
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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