ゲノム工学の精度と範囲を拡大(Yale genome engineers expand the reach and precision of human gene editing)

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2025-06-09 イェール大学

イェール大学の研究チームは、CRISPR-Cas12aを用いてヒト細胞内のDNAを高精度かつ同時に最大15箇所まで編集可能な新技術を開発した。従来のベースエディターでは限られていた編集箇所数を約3倍に拡大。Cas12aの特徴である複数のガイドRNA処理機能を活用し、ガイドRNAを短縮・改良することで不要な変異を抑制。がんなど多遺伝子関連疾患の解析や合成ゲノム設計、創薬への応用が期待される。研究成果は『Nature Communications』に掲載。

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Cas12a由来ベースエディターを用いたヒト細胞における精密多重塩基編集 Precision multiplexed base editing in human cells using Cas12a-derived base editors

Anabel Y. Schweitzer,Etowah W. Adams,Michael T. A. Nguyen,Monkol Lek & Farren J. Isaacs
Nature Communications  Published:31 May 2025
DOI:https://doi.org/10.1038/s41467-025-59653-x

ゲノム工学の精度と範囲を拡大(Yale genome engineers expand the reach and precision of human gene editing)

Abstract

Base editors enable the direct conversion of target nucleotides without introducing DNA double strand breaks, making them a powerful tool for creating point mutations in a human genome. However, current Cas9-derived base editing technologies have limited ability to simultaneously edit multiple loci with base-pair level precision, hindering the generation of polygenic phenotypes. Here, we test the ability of six Cas12a-derived base editing systems to process multiple gRNAs from a single transcript. We identify base editor variants capable of multiplexed base editing and improve the design of the respective gRNA array expression cassette, enabling multiplexed editing of 15 target sites in multiple human cell lines, increasing state-of-the-art in multiplexing by three-fold in the field of mammalian genome engineering. To reduce bystander mutations, we also develop a Cas12a gRNA engineering approach that directs editing outcomes towards a single base-pair conversion. We combine these advances to demonstrate that both strategies can be combined to drive multiplex base editing with greater precision and reduced bystander mutation rates. Overcoming these key obstacles of mammalian genome engineering technologies will be critical for their use in studying single nucleotide variant-associated diseases and engineering synthetic mammalian genomes.

細胞遺伝子工学
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