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CRISPR/Cas9 介导的腐皮镰刀菌内源基因标记。

CRISPR/Cas9-mediated endogenous gene tagging in Fusarium oxysporum.

机构信息

Department of Entomology and Plant Pathology, Auburn University, Auburn Alabama 36849, United States.

Department of Entomology and Plant Pathology, Auburn University, Auburn Alabama 36849, United States.

出版信息

Fungal Genet Biol. 2019 May;126:17-24. doi: 10.1016/j.fgb.2019.02.002. Epub 2019 Feb 6.

Abstract

Fusarium oxysporum is an economically important pathogen that widely exists in the environment and is capable of causing serious problems in crop production and animal/human health. One important step for characterization of a fungal protein with an unknown function is to determine its subcellular localization within the cell. To facilitate the study of important functional regulators or key virulence factors, we developed a CRISPR/Cas9-mediated endogenous gene tagging (EGT) system based on two different strategies, homology-independent targeted integration (HITI) and homology-dependent recombination integration (HDRI). The HITI strategy was able to facilitate integration of a large DNA fragment, ∼8 kb in length, into the genome of F. oxysporum at the sgRNA cleavage site, and was used to insert a C-terminal 3×sGFP tag to the FoCHS5 gene and a N-terminal mCherry tag to the FoSSO2 gene. The HDRI strategy was used to tag the paralogous gene, FoSSO1, with a C-terminal mCherry marker. FoChs5-3×sGFP localized to conidia, some septa, and fungal tips. A majority of the FoSso1-mCherry was distributed in the conidia, septum, and hyphae that were distal from the fungal tips. While FoSso1-mCherry showed a very weak fluorescent signal at the fungal tips, mCherry-FoSso2 accumulated in the plasma membrane of conidia, germlings, fungal tips, hyphae, and phialides, suggesting FoSSO1 and FoSSO2 are regulated differently during fungal development. These results indicate this EGT system is efficient and can be another molecular tool to resolve the function(s) of proteins and infection strategies of F. oxysporum.

摘要

尖孢镰刀菌是一种经济上重要的病原体,广泛存在于环境中,能够对作物生产和动物/人类健康造成严重问题。鉴定具有未知功能的真菌蛋白的一个重要步骤是确定其在细胞内的亚细胞定位。为了便于研究重要的功能调节剂或关键毒力因子,我们开发了一种基于两种不同策略的 CRISPR/Cas9 介导的内源性基因标记 (EGT) 系统,即非同源性靶向整合 (HITI) 和同源依赖性重组整合 (HDRI)。HITI 策略能够将长约 8kb 的大片段 DNA 整合到尖孢镰刀菌基因组的 sgRNA 切割位点,用于将 FoCHS5 基因的 C 端 3×sGFP 标签和 FoSSO2 基因的 N 端 mCherry 标签插入到靶基因中。HDRI 策略用于用 C 端 mCherry 标记标记 FoSSO1 的同源基因。FoChs5-3×sGFP 定位于分生孢子、一些隔膜和真菌顶端。FoSso1-mCherry 的大部分分布在远离真菌顶端的分生孢子、隔膜和菌丝中。虽然 FoSso1-mCherry 在真菌顶端显示出非常弱的荧光信号,但 mCherry-FoSso2 积累在分生孢子、芽管、真菌顶端、菌丝和产孢细胞的质膜中,表明 FoSSO1 和 FoSSO2 在真菌发育过程中受到不同的调控。这些结果表明,该 EGT 系统是高效的,可以成为另一种分子工具,用于解决尖孢镰刀菌蛋白的功能和感染策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/492f/6456373/da8afc7eb5c2/nihms-1520967-f0001.jpg

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