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Efficient homologous replacement and deletion of large genomic fragments through template-jumping prime editing in rice.

Abstract

Homologous replacement of genomic sequences with large DNA fragments (> 100 bp) holds great potential for crop breeding, yet an efficient method to achieve such edits is lacking in plants. Here, in rice, we developed template-jumping prime editing (TJ-PE), a recently reported PE strategy for large targeted insertion, as an efficient tool for homologous replacement with DNA fragments ranging from dozens to hundreds of base pairs, and using TJ-PE, we replaced genomic fragments of up to 340 bp with homologous fragments of the same length. In addition, our TJ-PE tool also enabled precise deletion of 944- to 2024-bp fragments in rice, with efficiencies of up to 34.6% for c. 2000-bp precise deletions. Collectively, this study expands the editing scope of PE in rice and establishes TJ-PE as a generalist tool for precise deletion and replacement of large DNA fragments.

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Huixia Liu, Yu Wang, Shuhui Guan, Zhenfei Zhang, Zhaohui Qin, Dan Zhao, Fei Li, Min Zhang, Wentian Zhang, Yanxiu Du, Junzhou Li, Zhen Chen, Chunbo Miao. 2026-07-28. Efficient homologous replacement and deletion of large genomic fragments through template-jumping prime editing in rice.. https://doi.org/10.1111/nph.71470

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