A combined transcriptomic and physiological approach to understanding the adaptive mechanisms to cope with oxidative stress in Fusarium graminearum

被引:4
|
作者
Park, Jiyeun [1 ]
Lee, Hyun-Hee [2 ]
Moon, Heeji [1 ]
Lee, Nahyun [1 ]
Kim, Sieun [1 ]
Kim, Jung-Eun [3 ]
Lee, Yoonji [1 ]
Min, Kyunghun [1 ]
Kim, Hun [4 ]
Choi, Gyung Ja [4 ]
Lee, Yin-Won [1 ]
Seo, Young-Su [2 ]
Son, Hokyoung [1 ,5 ]
机构
[1] Seoul Natl Univ, Dept Agr Biotechnol, Seoul, South Korea
[2] Pusan Natl Univ, Dept Integrated Biol Sci, Busan, South Korea
[3] Natl Inst Hort & Herbal Sci, Res Inst Climate Change & Agr, Jeju, South Korea
[4] Korea Res Inst Chem Technol, Ctr Eco friendly New Mat, Daejeon, South Korea
[5] Seoul Natl Univ, Res Inst Agr & Life Sci, Seoul, South Korea
来源
MICROBIOLOGY SPECTRUM | 2023年 / 11卷 / 05期
基金
新加坡国家研究基金会;
关键词
oxidative stress response; Fusarium graminearum; DNA damage response; autophagy; ubiquitin-proteasome pathway; heme biosynthesis; FUNCTIONAL-CHARACTERIZATION; ASEXUAL DEVELOPMENT; HEME-BIOSYNTHESIS; GENE; VIRULENCE; ELONGATOR; EXPRESSION; RESPONSES; PATHOGENICITY; PEROXIDASE;
D O I
10.1128/spectrum.01485-23
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
In plant-pathogen interactions, oxidative bursts are crucial for plants to defend themselves against pathogen infections. Rapid production and accumulation of reactive oxygen species kill pathogens directly and cause local cell death, preventing pathogens from spreading to adjacent cells. Meanwhile, the pathogens have developed several mechanisms to tolerate oxidative stress and successfully colonize plant tissues. In this study, we investigated the mechanisms responsible for resistance to oxidative stress by analyzing the transcriptomes of six oxidative stress-sensitive strains of the plant pathogenic fungus Fusarium graminearum. Weighted gene co-expression network analysis identified several pathways related to oxidative stress responses, including the DNA repair system, autophagy, and ubiquitin-mediated proteolysis. We also identified hub genes with high intramodular connectivity in key modules and generated deletion or conditional suppression mutants. Phenotypic characterization of those mutants showed that the deletion of FgHGG4, FgHGG10, and FgHGG13 caused sensitivity to oxidative stress, and further investigation on those genes revealed that transcriptional elongation and DNA damage responses play roles in oxidative stress response and pathogenicity. The suppression of FgHGL7 also led to hypersensitivity to oxidative stress, and we demonstrated that FgHGL7 plays a crucial role in heme biosynthesis and is essential for peroxidase activity. This study increases the understanding of the adaptive mechanisms to cope with oxidative stress in plant pathogenic fungi. IMPORTANCE Fungal pathogens have evolved various mechanisms to overcome host-derived stresses for successful infection. Oxidative stress is a representative defense system induced by the host plant, and fungi have complex response systems to cope with it. Fusarium graminearum is one of the devastating plant pathogenic fungi, and understanding its pathosystem is crucial for disease control. In this study, we investigated adaptive mechanisms for coping with oxidative stress at the transcriptome level using oxidative stress-sensitive strains. In addition, by introducing genetic modification technique such as CRISPR-Cas9 and the conditional gene expression system, we identified pathways/genes required for resistance to oxidative stress and also for virulence. Overall, this study advances the understanding of the oxidative stress response and related mechanisms in plant pathogenic fungi.
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页数:19
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