生物
耐盐性
适应(眼睛)
利基
酿酒酵母
生态位
基因
遗传学
生态学
木霉菌
种间竞争
酵母
cDNA文库
拉伤
环境生物技术
进化生物学
转录调控
转基因
生物技术
生态位分化
极端环境
局部适应
竞赛(生物学)
遗传多样性
可塑性
基因表达调控
突变体
植物
基因簇
转录因子
调节基因
作者
Mingyue Ding,Guan Pang,Mengting Huang,Yujie Shi,Fan Yi,Paolo Wong,Dongxin Shi,Zhilin Yuan,Lanxi Su,Junjie Guo,Weixiang Wang,Oded Yarden,Feng Cai,Irina S. Druzhinina,Qirong Shen
标识
DOI:10.1093/ismejo/wrag162
摘要
Stress tolerance underpins ecological plasticity and niche expansion in fungi. Although Trichoderma is best known from sylvan, mycoparasitic, soil-, and plant-associated habitats, its occasional recovery from saline soils raises questions about the molecular basis of this adaptation. A coastal survey revealed limited but persistent Trichoderma diversity with frequent recovery of halotolerant Trichoderma asperelloides. Screening a salt-stressed T. asperelloides cDNA library in Saccharomyces cerevisiae identified 62 inserts, of which 12 were salt responsive in vivo. Among then, deletion of gld1, encoding an aldo-keto reductase, impaired halotolerance and glycerol accumulation. In a 27-species synthetic community, the Δgld1 mutant was competitively displaced by other species under salinity. Cross-species promoter replacement in a salinity-sensitive strain Trichoderma atroviride increased its halotolerance. A global tef1 haplotype network placed the coastal isolates within broader T. asperelloides diversity, consistent with recurrent expansion into saline/coastal soils. Together, these findings link accessory-gene regulation to niche expansion in fungi.
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