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利用 CRISPR-Cpf1 在棉子瓶霉中进行多重基因组编辑。

Multiplex genome editing in Ashbya gossypii using CRISPR-Cpf1.

机构信息

Metabolic Engineering Group, Department of Microbiology and Genetics, University of Salamanca, Campus Miguel de Unamuno, E-37007 Salamanca, Spain.

BASF SE, White Biotechnology Research, Ludwigshafen, Germany.

出版信息

N Biotechnol. 2020 Jul 25;57:29-33. doi: 10.1016/j.nbt.2020.02.002. Epub 2020 Mar 16.

Abstract

CRISPR/Cas technologies constitute essential tools for rapid genome engineering of many organisms, including fungi. The CRISPR/Cas9 system adapted for the industrial fungus Ashbya gossypii enables efficient genome editing for the introduction of deletions, insertions and nucleotide substitutions. However, the Cas9 system is constrained by the existence of a specific 5'-NGG-3' PAM sequence in the target site. Here we present a new CRISPR/Cas system for A. gossypii that expands the molecular toolbox available for microbial engineering of this fungus. The use of Cpf1 nuclease from Lachnospiraceae bacterium allows a T-rich PAM sequence (5'-TTTN-3') to be employed and facilitates implementation of a multiplexing CRISPR/Cpf1 system adapted for A. gossypii. The system has been validated for the introduction of large deletions with five different auxotrophic markers (HIS3, ADE2, TRP1, LEU2 and URA3). The use of both crRNA and dDNA arrays in a multi-CRISPR/Cpf1 system is demonstrated to be an efficient strategy for multiplex gene deletion of up to four genes using a single multi-CRISPR/Cpf1 plasmid. Our results also suggest that the selection of the target sequence may affect significantly the editing efficiency of the system.

摘要

CRISPR/Cas 技术是许多生物体(包括真菌)快速基因组工程的重要工具。适应工业真菌棉阿舒囊霉的 CRISPR/Cas9 系统可用于高效基因组编辑,实现缺失、插入和核苷酸替换。然而,Cas9 系统受到目标位点特定的 5'-NGG-3' PAM 序列的限制。在这里,我们为棉阿舒囊霉介绍了一种新的 CRISPR/Cas 系统,该系统扩展了用于该真菌微生物工程的分子工具包。来自 Lachnospiraceae 细菌的 Cpf1 核酸内切酶的使用允许使用富含 T 的 PAM 序列(5'-TTTN-3'),并促进了适应棉阿舒囊霉的多路复用 CRISPR/Cpf1 系统的实施。该系统已通过使用五个不同营养缺陷型标记物(HIS3、ADE2、TRP1、LEU2 和 URA3)对大片段缺失的引入进行了验证。使用 crRNA 和 dDNA 阵列在多 CRISPR/Cpf1 系统中被证明是一种有效的策略,可使用单个多 CRISPR/Cpf1 质粒对多达四个基因进行多路基因缺失。我们的结果还表明,目标序列的选择可能会显著影响系统的编辑效率。

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