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开发用于在酿酒酵母中多拷贝整合的 GDi-CRISPR 系统。

Developing GDi-CRISPR System for Multi-copy Integration in Saccharomyces cerevisiae.

机构信息

School of Food Science and Pharmaceutical Engineering, Nanjing Normal University, 2 Xuelin Road, Qixia District, Nanjing, Jiangsu Province, China.

出版信息

Appl Biochem Biotechnol. 2021 Jul;193(7):2379-2388. doi: 10.1007/s12010-021-03532-w. Epub 2021 Mar 3.

Abstract

In recent years, Saccharomyces cerevisiae has been widely used in the production of biofuels and value-added chemicals. To stably express the target products, it is necessary to integrate multiple target genes into the chromosome of S. cerevisiae. CRISPR multi-copy integration technology relying on delta sites has been developed, but it often requires the help of high-throughput screening or resistance markers, resulting in non-replicability and high cost. This study aims to develop a low-cost and easy-to-use multi-copy integration tool in S. cerevisiae. Firstly, twenty-one Cas proteins from different microorganisms were tested in S. cerevisiae to find the functional Cas proteins with optimal cleavage ability. Results showed that eight Cas proteins can complete gene editing. However, most of the transformants have low copy numbers, which may be caused by high cutting efficiency exceeding the repair rate. Therefore, the effect of donor translocation order was further investigated. Results showed that 4 copies were obtained by donor first translocation. Then, the gene drive delta site integration system by the CRISPR system (GDi-CRISPR) was developed by combining gene drive principle and CRISPR system. To be clear, the gRNA was put into donor fragments. Then, both of them were integrated into the genome, which can drive further cutting and repair due to increasing number of gRNA. Instead of high-throughput screening or resistance pressure, 6 copies were obtained in only 5-6 days using the GDi-CRISPR system. It is expected to further advance the development of S. cerevisiae multi-copy integration tools.

摘要

近年来,酿酒酵母已广泛应用于生物燃料和高附加值化学品的生产。为了稳定表达目标产物,有必要将多个目标基因整合到酿酒酵母的染色体中。已经开发了依赖于δ位点的 CRISPR 多拷贝整合技术,但它通常需要高通量筛选或抗性标记物的帮助,导致不可复制性和高成本。本研究旨在开发一种低成本且易于使用的酿酒酵母多拷贝整合工具。首先,在酿酒酵母中测试了来自不同微生物的二十一个 Cas 蛋白,以找到具有最佳切割能力的功能性 Cas 蛋白。结果表明,有八种 Cas 蛋白可以完成基因编辑。然而,大多数转化子的拷贝数较低,这可能是由于切割效率过高,超过了修复率。因此,进一步研究了供体易位顺序的效果。结果表明,通过供体首次易位获得了 4 个拷贝。然后,通过将基因驱动原理与 CRISPR 系统相结合,开发了由 CRISPR 系统驱动的德尔塔位点整合系统(GDi-CRISPR)。更确切地说,gRNA 被放入供体片段中。然后,它们都被整合到基因组中,由于 gRNA 的数量增加,可以驱动进一步的切割和修复。无需高通量筛选或抗性压力,仅使用 GDi-CRISPR 系统在 5-6 天内就获得了 6 个拷贝。预计这将进一步推进酿酒酵母多拷贝整合工具的发展。

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