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Endeshaw, A. B.

Publications and source records attributed to Endeshaw, A. B..

3 recordsLinked to original sources

Host-adapted enzymatic deconstruction of acetylated xylan enables mutualistic colonization of monocot roots

Intracellular accommodation of mutualistic fungi in plant roots depends on selective remodeling of host cell walls while minimizing activation of plant immune responses. In this study, we identify a host-adapted enzymatic module in the root endophyte Serendipita indica that targets acetylated xylan, a major structural component of monocot cell walls. The glycoside hydrolase SiGH11 cleaves the xylan backbone and releases O-acetylated oligosaccharides, which are subsequently deacetylated by the XynE-like esterase SiAXE. These enzymes are co-expressed within a monocot-specific transcriptional program that is enriched in carbohydrate-active enzymes and sugar transporters. Their combined activity enhances enzymatic degradation and facilitates downstream hydrolysis by exo-xylanases, which reduces the production of apoplastic reactive oxygen species triggered by damage-associated molecular patterns. Functional analysis shows that overexpression of SiAXE promotes early root colonization, while deletion of the gene compromises fungal proliferation during later stages. These findings define a coordinated and immune-compatible strategy for host cell wall deconstruction that enables fungal adaptation and endophytic colonization of monocot roots. In BriefSerendipita indica utilizes a transcriptionally coordinated xylanase and esterase module to degrade acetylated xylan in monocot roots. This enzyme cooperation enhances substrate breakdown, suppresses immune responses, and enables endophytic colonization, illustrating how mutualistic fungi adapt saprotrophic enzymes for host-specific intracellular accommodation. HighlightsO_LIMutualistic fungal endophyte repurposes saprotrophic enzymes to enable monocot-specific intracellular root colonization C_LIO_LICoordinated xylanase and esterase activity remodels host cell walls and dampens immune responses C_LIO_LIExpression of cell wall degrading enzymes is regulated by host species and colonization stage C_LIO_LIResults reveal fungal adaptation to monocot roots along the saprotrophy to symbiosis transition C_LI

plant biology↗

Domain gain or loss in fungal chitinases drives ecological specialization toward antagonism or immune suppression

The evolutionary origins of fungal effector proteins remain poorly understood, particularly how structural changes reprogram antimicrobial enzymes into host-adapted immune suppressors. Here, we show that domain modularity drives ecological specialization in chitinase effectors of the beneficial root endophyte Serendipita indica. The GH18 chitinase SiCHIT, which carries a C-terminal carbohydrate-binding module (CBM5), is expressed during fungal competition and antagonizes the fungal pathogen Bipolaris sorokiniana in the rhizosphere, thereby protecting plant roots. Deletion of the CBM5 abolishes this antifungal activity, while fusion of CBM5 to the CBM5-lacking paralog SiCHIT2 restores pathogen inhibition. In contrast, SiCHIT2 is induced during root colonization and suppresses chitin-triggered reactive oxygen species production, promoting immune evasion and host compatibility. These results identify CBM5 as a modular determinant of effector function, switching chitinase activity between microbial antagonism and host immune suppression. Our findings support an evolutionary scenario in which effector function in planta arises through domain loss and transcriptional divergence from an antimicrobial precursor, consistent with transitions along the saprotrophy-to-symbiosis continuum. Significance StatementEffector proteins play key roles in shaping fungal interactions with both plant hosts and microbial competitors, yet how these functions evolve remains unclear. Here, we show that structural domain modularity enables ecological specialization of two paralogous chitinases arising from gene duplication in the root endophyte Serendipita indica. Through domain deletion and fusion, we demonstrate that a carbohydrate-binding module (CBM5) determines whether a chitinase functions in microbial antagonism or immune evasion. Our findings provide mechanistic evidence for effector diversification via domain loss and transcriptional divergence, supporting an evolutionary trajectory from antimicrobial activity to host adaptation. This work advances our understanding of how modular architecture drives effector evolution and niche specialization in symbiotic fungi. HighlightsO_LIGain or loss of a CBM5 binding domain drives effector specialization between fungal antagonism and immune suppression C_LIO_LICBM5 acts as a modular determinant enabling antifungal activity in the GH18 chitinase SiCHIT C_LIO_LIThe CBM5-lacking paralog SiCHIT2 suppresses host immunity and promotes root colonization C_LIO_LIFunctional divergence following gene duplication illustrates evolutionary repurposing of an antimicrobial enzyme into an immune-suppressive effector C_LI

plant biology↗

Time-resolved transcriptomics reveal a mechanism of host niche defense: beneficial root endophytes deploy a host-protective antimicrobial GH18-CBM5 chitinase

Associations between plants and beneficial root-endophytic fungi enhance plant performance by improving nutrient uptake, abiotic stress tolerance and disease resistance. To successfully colonize different host plants and defend their host niche against competing microbes, but also to cooperate with beneficial bacterial members of the microbiota, root endophytes such as Sebacinales secrete a multitude of tightly regulated effector-proteins and carbohydrate-active enzymes. However, the functions, specificity, and regulation of these proteins remain poorly understood. In this study, we employ time-resolved transcriptomics to analyse the gene expression profiles of two Sebacinales members interacting with organisms from different kingdoms of life. We identified crucial genes for plant colonization and intermicrobial competition, including a fungal GH18-CBM5 chitinase specifically upregulated in response to the phytopathogenic fungus Bipolaris sorokiniana. This chitinase protects the plant hosts against the pathogen, reducing fungal biomass and disease symptoms in barley and Arabidopsis thaliana. Our findings shed light on interaction partner specific gene expression in Sebacinales endophytes, with potential applications in enhancing plant health and resilience. Bullet pointsO_LIBoth Serendipita indica (Si) and Serendipita vermifera (Sv) show similar transcriptional responses to three host species and the phytopathogen Bipolaris sorokiniana (Bs), indicating common interaction principles between Sebacinales and plant hosts or fungi. C_LIO_LIThese shared mechanisms involve the activation of effector genes like small secreted proteins and carbohydrate-active enzymes. C_LIO_LICooperation with beneficial bacteria elicits only minimal transcriptomic alterations in Sebacinales compared to plants and Bs. C_LIO_LISebacinales respond to Bs by upregulating a specific GH18-CBM5 chitinase unique to Basidiomycota within the fungal kingdom, inhibiting Bs growth and reducing disease symptoms in Arabidopsis thaliana and barley. C_LI

microbiology↗