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Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research

Many applications in plant biology requires editing genomes accurately including correcting point mutations, incorporation of single-nucleotide polymorphisms (SNPs), and introduction of multinucleotide insertion/deletions (indels) into a predetermined position in the genome. These types of modificat...

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Autores principales: Hassan, Md. Mahmudul, Yuan, Guoliang, Chen, Jin-Gui, Tuskan, Gerald A., Yang, Xiaohan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10530660/
https://www.ncbi.nlm.nih.gov/pubmed/37849904
http://dx.doi.org/10.34133/2020/9350905
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author Hassan, Md. Mahmudul
Yuan, Guoliang
Chen, Jin-Gui
Tuskan, Gerald A.
Yang, Xiaohan
author_facet Hassan, Md. Mahmudul
Yuan, Guoliang
Chen, Jin-Gui
Tuskan, Gerald A.
Yang, Xiaohan
author_sort Hassan, Md. Mahmudul
collection PubMed
description Many applications in plant biology requires editing genomes accurately including correcting point mutations, incorporation of single-nucleotide polymorphisms (SNPs), and introduction of multinucleotide insertion/deletions (indels) into a predetermined position in the genome. These types of modifications are possible using existing genome-editing technologies such as the CRISPR-Cas systems, which require induction of double-stranded breaks in the target DNA site and the supply of a donor DNA molecule that contains the desired edit sequence. However, low frequency of homologous recombination in plants and difficulty of delivering the donor DNA molecules make this process extremely inefficient. Another kind of technology known as base editing can perform precise editing; however, only certain types of modifications can be obtained, e.g., C/G-to-T/A and A/T-to-G/C. Recently, a new type of genome-editing technology, referred to as “prime editing,” has been developed, which can achieve various types of editing such as any base-to-base conversion, including both transitions (C→T, G→A, A→G, and T→C) and transversion mutations (C→A, C→G, G→C, G→T, A→C, A→T, T→A, and T→G), as well as small indels without the requirement for inducing double-stranded break in the DNA. Because prime editing has wide flexibility to achieve different types of edits in the genome, it holds a great potential for developing superior crops for various purposes, such as increasing yield, providing resistance to various abiotic and biotic stresses, and improving quality of plant product. In this review, we describe the prime editing technology and discuss its limitations and potential applications in plant biology research.
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spelling pubmed-105306602023-10-17 Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research Hassan, Md. Mahmudul Yuan, Guoliang Chen, Jin-Gui Tuskan, Gerald A. Yang, Xiaohan Biodes Res Review Article Many applications in plant biology requires editing genomes accurately including correcting point mutations, incorporation of single-nucleotide polymorphisms (SNPs), and introduction of multinucleotide insertion/deletions (indels) into a predetermined position in the genome. These types of modifications are possible using existing genome-editing technologies such as the CRISPR-Cas systems, which require induction of double-stranded breaks in the target DNA site and the supply of a donor DNA molecule that contains the desired edit sequence. However, low frequency of homologous recombination in plants and difficulty of delivering the donor DNA molecules make this process extremely inefficient. Another kind of technology known as base editing can perform precise editing; however, only certain types of modifications can be obtained, e.g., C/G-to-T/A and A/T-to-G/C. Recently, a new type of genome-editing technology, referred to as “prime editing,” has been developed, which can achieve various types of editing such as any base-to-base conversion, including both transitions (C→T, G→A, A→G, and T→C) and transversion mutations (C→A, C→G, G→C, G→T, A→C, A→T, T→A, and T→G), as well as small indels without the requirement for inducing double-stranded break in the DNA. Because prime editing has wide flexibility to achieve different types of edits in the genome, it holds a great potential for developing superior crops for various purposes, such as increasing yield, providing resistance to various abiotic and biotic stresses, and improving quality of plant product. In this review, we describe the prime editing technology and discuss its limitations and potential applications in plant biology research. AAAS 2020-06-26 /pmc/articles/PMC10530660/ /pubmed/37849904 http://dx.doi.org/10.34133/2020/9350905 Text en Copyright © 2020 Md. Mahmudul Hassan et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Nanjing Agricultural University. Distributed under a Creative Commons Attribution License (CC BY 4.0). (https://creativecommons.org/licenses/by/4.0/)
spellingShingle Review Article
Hassan, Md. Mahmudul
Yuan, Guoliang
Chen, Jin-Gui
Tuskan, Gerald A.
Yang, Xiaohan
Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research
title Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research
title_full Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research
title_fullStr Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research
title_full_unstemmed Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research
title_short Prime Editing Technology and Its Prospects for Future Applications in Plant Biology Research
title_sort prime editing technology and its prospects for future applications in plant biology research
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10530660/
https://www.ncbi.nlm.nih.gov/pubmed/37849904
http://dx.doi.org/10.34133/2020/9350905
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