Transcription Factor MaHMG, the High-Mobility Group Protein, Is Implicated in Conidiation Pattern Shift and Stress Tolerance in Metarhizium acridum.

IF 4.2 2区 生物学 Q2 MICROBIOLOGY
Rongrong Qiu, Jinyuan Zhou, Tingting Cao, Yuxian Xia, Guoxiong Peng
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Abstract

Conidiation and stress tolerance are pivotal traits in entomopathogenic fungi, critically influencing their production costs and environmental tolerance. While the transcription factor high-mobility group protein (HMG), characterized by a conserved HMG-box domain, has been extensively studied for its role in sexual development, its functions in entomopathogenic fungi remain largely unexplored. This study employed gene knockout to investigate the role of MaHMG in Metarhizium acridum. The deletion of MaHMG delayed conidiation initiation and caused a highly significant 58% reduction in conidial yield versus that of the wild type (WT) after 15 days. Furthermore, the conidiation pattern on microcycle induction medium (SYA) shifted from microcycle to normal conidiation. The ΔMaHMG mutant exhibited decreased conidial germination rates and markedly reduced tolerance following UV-B irradiation and heat-shock treatments, alongside increased sensitivity to the cell wall perturbant calcofluor white (CFW). RNA-seq analysis during this conidiation shift identified 88 differentially expressed genes (DEGs), with functional annotation implicating their predominant association with hyphal development, cell wall biogenesis, cell cycle progression, and conidiation. In conclusion, MaHMG functions as a critical positive regulator governing both conidiation and stress tolerance in M. acridum, underscoring its fundamental role in fungal biology and potential as a target for enhancing biocontrol agent performance.

转录因子MaHMG是一种高迁移率基团蛋白,参与了绿僵菌的分生模式转变和胁迫耐受。
条件和胁迫耐受性是昆虫病原真菌的关键性状,对其生产成本和环境耐受性有重要影响。虽然转录因子高迁移率基团蛋白(HMG -box)在性发育中的作用已被广泛研究,但其在昆虫病原真菌中的功能仍未被广泛探索。本研究采用基因敲除的方法研究MaHMG在酸疽绿僵菌中的作用。MaHMG的缺失延迟了分生孢子的产生,15天后,与野生型(WT)相比,分生孢子的产量显著降低了58%。此外,微循环诱导培养基(SYA)上的孢子萌发模式由微循环转变为正常孢子萌发。ΔMaHMG突变体在UV-B照射和热休克处理后,分生孢子发芽率下降,耐受性明显降低,同时对细胞壁扰动钙氟白(CFW)的敏感性增加。RNA-seq分析鉴定出88个差异表达基因(deg),其功能注释表明它们与菌丝发育、细胞壁生物发生、细胞周期进程和分生有关。综上所述,MaHMG在真菌生物学中发挥着重要的正调控作用,调控着m.a ridum的条件和胁迫耐受性,这表明MaHMG在真菌生物学中的重要作用以及作为提高生物防治剂性能的潜在靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Fungi
Journal of Fungi Medicine-Microbiology (medical)
CiteScore
6.70
自引率
14.90%
发文量
1151
审稿时长
11 weeks
期刊介绍: Journal of Fungi (ISSN 2309-608X) is an international, peer-reviewed scientific open access journal that provides an advanced forum for studies related to pathogenic fungi, fungal biology, and all other aspects of fungal research. The journal publishes reviews, regular research papers, and communications in quarterly issues. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on paper length. Full experimental details must be provided so that the results can be reproduced.
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