生物
水平基因转移
蜜环菌
毒力
子囊菌纲
基因
植物
致病岛
殖民地化
系统发育树
生物量(生态学)
微生物学
系统发育学
遗传学
生态学
作者
Neha Sahu,Boris Inđić,Johanna Wong‐Bajracharya,Zsolt Merényi,Huei‐Mien Ke,Steven Ahrendt,Tori-Lee Monk,Sándor Kocsubé́,Élodie Drula,Anna Lipzen,Balázs Bálint,Bernard Henrissat,Bill Andreopoulos,Francis Martin,Christoffer Bugge Harder,Daniel Rigling,Kathryn Ford,Gary D. Foster,Jasmyn Pangilinan,Alexie Papanicolaou
标识
DOI:10.1038/s41564-023-01448-1
摘要
The fungal genus Armillaria contains necrotrophic pathogens and some of the largest terrestrial organisms that cause tremendous losses in diverse ecosystems, yet how they evolved pathogenicity in a clade of dominantly non-pathogenic wood degraders remains elusive. Here we show that Armillaria species, in addition to gene duplications and de novo gene origins, acquired at least 1,025 genes via 124 horizontal gene transfer events, primarily from Ascomycota. Horizontal gene transfer might have affected plant biomass degrading and virulence abilities of Armillaria, and provides an explanation for their unusual, soft rot-like wood decay strategy. Combined multi-species expression data revealed extensive regulation of horizontally acquired and wood-decay related genes, putative virulence factors and two novel conserved pathogenicity-induced small secreted proteins, which induced necrosis in planta. Overall, this study details how evolution knitted together horizontally and vertically inherited genes in complex adaptive traits of plant biomass degradation and pathogenicity in important fungal pathogens.
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