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CRISPR-Cas9-Mediated Genome Editing in the Filamentous Ascomycete Huntiella omanensis
Published on: June 9, 2020
CRISPR/Cas9 system is a suitable gene targeting editing tool to filamentous fungus Monascus pilosus
Yunxia Gong1, Shengfa Li1, Qianrui Liu1
1College of Food Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China.
Abstract:
Monascus pilosus has been used to produce lipid-lowering drugs rich in monacolin K (MK) for a long period. Genome mining reveals there are still many potential genes worth to be explored in this fungus. Thereby, efficient genetic manipulation tools will greatly accelerate this progress. In this study, we firstly developed the protocol to prepare protoplasts for recipient of CRISPR/Cas9 system. Subsequently, the vector and donor DNA were co-transformed into recipients (106 protoplasts/mL) to produce 60-80 transformants for one test. Three genes (mpclr4, mpdot1, and mplig4) related to DNA damage response (DDR) were selected to compare the gene replacement frequencies (GRFs) of Agrobacterium tumefaciens-mediated transformation (ATMT) and CRISPR/Cas9 gene editing system (CGES) in M. pilosus MS-1. The results revealed that GRF of CGES was approximately five times greater than that of ATMT, suggesting that CGES was superior to ATMT as a targeting gene editing tool in M. pilosus MS-1. The inactivation of mpclr4 promoted DDR via the non-homologous end-joining (NHEJ) and increased the tolerances to DNA damaging agents. The inactivation of mpdot1 blocked DDR and led to the reduced tolerances to DNA damaging agents. The inactivation of mplig4 mainly blocked the NHEJ pathway and led to obviously reduced tolerances to DNA damaging agents. The submerged fermentation showed that the ability to produce MK in strain Δmpclr4 was improved by 52.6% compared to the wild type. This study provides an idea for more effective exploration of gene functions in Monascus strains. KEY POINTS: • A protocol of high-quality protoplasts for CGES has been developed in M. pilosus. • The GRF of CGES was about five times that of ATMT in M. pilosus. • The yield of MK for Δmpclr4 was enhanced by 52.6% compared with the wild type.
Insights
We developed a CRISPR/Cas9 gene editing system (CGES) for Monascus pilosus, achieving higher gene replacement frequencies than traditional methods. This advancement enhances Monascus pilosus gene function exploration and Monacolin K production.
Area of Science:
- Mycology
- Molecular Biology
- Biotechnology
Background:
- Monascus pilosus is a fungus traditionally used for producing monacolin K (MK), a lipid-lowering compound.
- Exploring the genome of M. pilosus can reveal new genes for improved compound production.
- Efficient genetic manipulation tools are crucial for accelerating gene function discovery in M. pilosus.
Purpose of the Study:
- To develop an efficient CRISPR/Cas9 gene editing system (CGES) for Monascus pilosus.
- To compare the gene replacement frequencies (GRFs) of CGES with Agrobacterium tumefaciens-mediated transformation (ATMT).
- To investigate the roles of DNA damage response (DDR) genes (mpclr4, mpdot1, mplig4) in M. pilosus.
Main Methods:
- Developed a protocol for preparing protoplasts suitable for CGES in M. pilosus.
- Co-transformed vector and donor DNA into M. pilosus protoplasts.
- Compared GRFs of CGES and ATMT for three DDR genes (mpclr4, mpdot1, mplig4).
Main Results:
- CGES demonstrated approximately five times higher GRFs than ATMT in M. pilosus.
- Inactivation of mpclr4 enhanced DDR and increased tolerance to DNA damaging agents.
- Inactivation of mpdot1 and mplig4 blocked DDR pathways and reduced DNA damage tolerance.
- The Δmpclr4 strain showed a 52.6% increase in Monacolin K (MK) production compared to the wild type.
Conclusions:
- CGES is a superior gene editing tool for M. pilosus compared to ATMT.
- DNA damage response genes play critical roles in M. pilosus.
- Inactivating mpclr4 enhances MK production, offering a strategy for improved industrial application.
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