Susanne Fritsche, Aline Reinfurt, Felix Fronek, Matthias G Steiger
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引用次数: 0
摘要
非同源末端连接(NHEJ)和同源定向修复(HDR)是丝状真菌修复 DNA 损伤的两种机制。NHEJ 是快速连接 DNA 双链断裂的主要反应途径,但往往会导致插入或缺失。另一方面,HDR 更为精确,它利用同源 DNA 模板来恢复受损序列。在本研究中,我们评估了基于 HDR 的基因整合系统的效率,该系统是为黑曲霉 pyrG 基因座设计的。在基因整合率达到 91.4% 的同时,我们还发现了一种混合型修复(MTR)机制,即通过 NHEJ 和 HDR 同时修复 Cas9 介导的双链断裂。在 20.3% 的分析转化子中,供体 DNA 在双链断裂的 3' 端通过 NHEJ 进行整合,在 5' 端通过 HDR 进行整合。总之,这些结果证明了基因组整合系统和新型 DNA 修复类型的适用性,并对丝状真菌遗传修饰的多样性产生了影响。
NHEJ and HDR can occur simultaneously during gene integration into the genome of Aspergillus niger.
Non-homologous end joining (NHEJ) and homology-directed repair (HDR) are two mechanisms in filamentous fungi to repair DNA damages. NHEJ is the dominant response pathway to rapidly join DNA double-strand breaks, but often leads to insertions or deletions. On the other hand, HDR is more precise and utilizes a homologous DNA template to restore the damaged sequence. Both types are exploited in genetic engineering approaches ranging from knock-out mutations to precise sequence modifications.In this study, we evaluated the efficiency of an HDR based gene integration system designed for the pyrG locus of Aspergillus niger. While gene integration was achieved at a rate of 91.4%, we also discovered a mixed-type repair (MTR) mechanism with simultaneous repair of a Cas9-mediated double-strand break by both NHEJ and HDR. In 20.3% of the analyzed transformants the donor DNA was integrated by NHEJ at the 3' end and by HDR at the 5' end of the double-strand break. Furthermore, sequencing of the locus revealed different DNA repair mechanisms at the site of the NHEJ event.Together, the results support the applicability of the genome integration system and a novel DNA repair type with implication on the diversity of genetic modifications in filamentous fungi.