Horizontal gene transfer allowed the emergence of broad host range entomopathogens.

Zhang, Qiangqiang; Chen, Xiaoxuan; Xu, Chuan; Zhao, Hong; Zhang, Xing; Zeng, Guohong; Qian, Ying; Liu, Ran et al. · Proc Natl Acad Sci U S A · 2019

basic_science · Level V

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Abstract

The emergence of new pathogenic fungi has profoundly impacted global biota, but the underlying mechanisms behind host shifts remain largely unknown. The endophytic insect pathogen <i>Metarhizium robertsii</i> evolved from fungi that were plant associates, and entomopathogenicity is a more recently acquired adaptation. Here we report that the broad host-range entomopathogen <i>M. robertsii</i> has 18 genes that are derived via horizontal gene transfer (HGT). The necessity of degrading insect cuticle served as a major selective pressure to retain these genes, as 12 are up-regulated during penetration; 6 were confirmed to have a role in penetration, and their collective actions are indispensable for infection. Two lipid-carrier genes are involved in utilizing epicuticular lipids, and a third (MrNPC2a) facilitates hemocoel colonization. Three proteases degraded the procuticular protein matrix, which facilitated up-regulation of other cuticle-degrading enzymes. The three lipid carriers and one of the proteases are present in all analyzed <i>Metarhizium</i> species and are essential for entomopathogenicity. Acquisition of another protease (MAA_01413) in an ancestor of broad host-range lineages contributed to their host-range expansion, as heterologous expression in the locust specialist <i>Metarhizium acridum</i> enabled it to kill caterpillars. Our work reveals that HGT was a key mechanism in the emergence of entomopathogenicity in <i>Metarhizium</i> from a plant-associated ancestor and in subsequent host-range expansion by some <i>Metarhizium</i> lineages.

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