A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii.
Systematic gene disruption is a direct way to interrogate a fungal genome to functionally characterize the full suite of genes involved in various biological processes. Metarhizium robertsii is extraordinarily versatile, and it is a pathogen of arthropods, a saprophyte and a beneficial colonizer of...
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doaj-982904b60baa466a8cabf3251cd928172020-11-25T01:31:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0199e10765710.1371/journal.pone.0107657A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii.Chuan XuXing ZhangYing QianXiaoxuan ChenRan LiuGuohong ZengHong ZhaoWeiguo FangSystematic gene disruption is a direct way to interrogate a fungal genome to functionally characterize the full suite of genes involved in various biological processes. Metarhizium robertsii is extraordinarily versatile, and it is a pathogen of arthropods, a saprophyte and a beneficial colonizer of rhizospheres. Thus, M. robertsii can be used as a representative to simultaneously study several major lifestyles that are not shared by the "model" fungi Saccharomyces cerevisiae and Neurospora crassa; a systematic genetic analysis of M. robertsii will benefit studies in other fungi. In order to systematically disrupt genes in M. robertsii, we developed a high-throughput gene disruption methodology, which includes two technologies. One is the modified OSCAR-based, high-throughput construction of gene disruption plasmids. This technology involves two donor plasmids (pA-Bar-OSCAR with the herbicide resistance genes Bar and pA-Sur-OSCAR with another herbicide resistance gene Sur) and a recipient binary plasmid pPK2-OSCAR-GFP that was produced by replacing the Bar cassette in pPK2-bar-GFP with a ccdB cassette and recombination recognition sites. Using this technology, a gene disruption plasmid can be constructed in one cloning step in two days. The other is a highly efficient gene disruption technology based on homologous recombination using a Ku70 deletion mutant (ΔMrKu70) as the recipient strain. The deletion of MrKu70, a gene encoding a key component involved in nonhomologous end-joining DNA repair in fungi, dramatically increases the gene disruption efficiency. The frequency of disrupting the conidiation-associated gene Cag8 in ΔMrKu70 was 93% compared to 7% in the wild-type strain. Since ΔMrKu70 is not different from the wild-type strain in development, pathogenicity and tolerance to various abiotic stresses, it can be used as a recipient strain for a systematic gene disruption project to characterize the whole suite of genes involved in the biological processes of M. robertsii.http://europepmc.org/articles/PMC4164657?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Chuan Xu Xing Zhang Ying Qian Xiaoxuan Chen Ran Liu Guohong Zeng Hong Zhao Weiguo Fang |
spellingShingle |
Chuan Xu Xing Zhang Ying Qian Xiaoxuan Chen Ran Liu Guohong Zeng Hong Zhao Weiguo Fang A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii. PLoS ONE |
author_facet |
Chuan Xu Xing Zhang Ying Qian Xiaoxuan Chen Ran Liu Guohong Zeng Hong Zhao Weiguo Fang |
author_sort |
Chuan Xu |
title |
A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii. |
title_short |
A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii. |
title_full |
A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii. |
title_fullStr |
A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii. |
title_full_unstemmed |
A high-throughput gene disruption methodology for the entomopathogenic fungus Metarhizium robertsii. |
title_sort |
high-throughput gene disruption methodology for the entomopathogenic fungus metarhizium robertsii. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2014-01-01 |
description |
Systematic gene disruption is a direct way to interrogate a fungal genome to functionally characterize the full suite of genes involved in various biological processes. Metarhizium robertsii is extraordinarily versatile, and it is a pathogen of arthropods, a saprophyte and a beneficial colonizer of rhizospheres. Thus, M. robertsii can be used as a representative to simultaneously study several major lifestyles that are not shared by the "model" fungi Saccharomyces cerevisiae and Neurospora crassa; a systematic genetic analysis of M. robertsii will benefit studies in other fungi. In order to systematically disrupt genes in M. robertsii, we developed a high-throughput gene disruption methodology, which includes two technologies. One is the modified OSCAR-based, high-throughput construction of gene disruption plasmids. This technology involves two donor plasmids (pA-Bar-OSCAR with the herbicide resistance genes Bar and pA-Sur-OSCAR with another herbicide resistance gene Sur) and a recipient binary plasmid pPK2-OSCAR-GFP that was produced by replacing the Bar cassette in pPK2-bar-GFP with a ccdB cassette and recombination recognition sites. Using this technology, a gene disruption plasmid can be constructed in one cloning step in two days. The other is a highly efficient gene disruption technology based on homologous recombination using a Ku70 deletion mutant (ΔMrKu70) as the recipient strain. The deletion of MrKu70, a gene encoding a key component involved in nonhomologous end-joining DNA repair in fungi, dramatically increases the gene disruption efficiency. The frequency of disrupting the conidiation-associated gene Cag8 in ΔMrKu70 was 93% compared to 7% in the wild-type strain. Since ΔMrKu70 is not different from the wild-type strain in development, pathogenicity and tolerance to various abiotic stresses, it can be used as a recipient strain for a systematic gene disruption project to characterize the whole suite of genes involved in the biological processes of M. robertsii. |
url |
http://europepmc.org/articles/PMC4164657?pdf=render |
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