海洋源真菌地曲霉RA2905多功能高效遗传工具的开发。

IF 1.8 4区 生物学 Q3 GENETICS & HEREDITY Current Genetics Pub Date : 2022-04-01 Epub Date: 2022-01-19 DOI:10.1007/s00294-021-01218-8
Guangshan Yao, Xiaofeng Chen, Yijuan Han, Huawei Zheng, Zonghua Wang, Jianming Chen
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引用次数: 11

摘要

海洋来源的土曲霉产生多种结构新颖的次生代谢物,其中大部分具有独特的生物活性。然而,缺乏有效的遗传工具限制了新化合物的发现、生物合成机制的阐明以及菌株工程的努力。因此,在本研究中,我们首先在海洋源真菌a . terreus RA2905中建立了一个有效的peg介导的原生质体化学转化系统和分生孢子电穿孔系统。为克服RA2905对杀菌剂不敏感的问题,利用PEG介导的转化体系构建尿嘧啶营养不良菌株(pyrG基因缺失突变体ΔpyrG),并以ΔpyrG为遗传背景,通过PEG介导和电孔介导的转化进一步构建甲基转移酶基因laea -过表达转化子,其terrein产量均有所提高。此外,本研究首次在地黄中建立了高效的CRISPR/Cas9基因组编辑系统,与传统的长同源臂相比,使用短同源臂对APSES转录因子基因stuA的基因删除效率高达71%。此外,利用非整合性Cas9质粒,建立了另一个高效且无标记的基因组编辑系统,该系统可以在土拟南芥中进行可重复和无限制的遗传操作。利用无标记基因组编辑系统,我们成功开发了RA2905的ΔpyrGΔku70双缺失突变体,进一步提高了基因缺失效率。综上所述,本研究开发了高效的遗传操作系统和多种功能突变体,这将极大地促进土生假单胞菌以及其他海洋丝状真菌的理论和应用研究。
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Development of versatile and efficient genetic tools for the marine-derived fungus Aspergillus terreus RA2905.

Marine-derived Aspergillus terreus produces a variety of structurally novel secondary metabolites, most of which show unique biological activities. However, the lack of efficient genetic tools limits the discovery of new compounds, the elucidation of involved biosynthesis mechanism, as well as the strain engineering efforts. Therefore, in this study, we first established both an effective PEG-mediated chemical transformation system of protoplasts and an electroporation system of conidia in a marine-derived fungus A. terreus RA2905. To overcome the insensitivity of RA2905 to fungicides, the uracil auxotrophy strain (pyrG gene deletion mutant, ΔpyrG) was constructed using PEG-mediated transformation system, and using ΔpyrG as the genetic background, the methyltransferase gene laeA-overexpression transformants were further constructed through both PEG- and electroporation-mediated transformations, which showed enhanced terrein production. Besides, in this study, an efficient CRISPR/Cas9 genome-editing system was established for the first time in A. terreus, and a higher gene deletion efficiency of 71% for APSES transcription factor gene stuA could be achieved when using short homologous arms compared with conventional long homologous ones. In addition, using a non-integrative Cas9 plasmid, another efficient and marker-free genome-editing system was established, which allowing repeatable and unlimited genetic manipulation in A. terreus. Using the marker-free genome-editing system, we successfully developed the ΔpyrGΔku70 double-deletion mutant in RA2905, which could further improve gene deletion efficiency. In conclusion, efficient genetic manipulation systems along with a variety of functional mutants were developed in this study, which would significantly expedite both theoretical and applied researches in not only A. terreus but also other marine-derived filamentous fungi.

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来源期刊
Current Genetics
Current Genetics 生物-遗传学
CiteScore
6.00
自引率
0.00%
发文量
34
审稿时长
1 months
期刊介绍: Current Genetics publishes genetic, genomic, molecular and systems-level analysis of eukaryotic and prokaryotic microorganisms and cell organelles. All articles are peer-reviewed. The journal welcomes submissions employing any type of research approach, be it analytical (aiming at a better understanding), applied (aiming at practical applications), synthetic or theoretical. Current Genetics no longer accepts manuscripts describing the genome sequence of mitochondria/chloroplast of a small number of species. Manuscripts covering sequence comparisons and analyses that include a large number of species will still be considered.
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