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Biology subjects

Boevink, P.

Publications and source records attributed to Boevink, P..

3 recordsLinked to original sources

PaRXLR40, a broad cell death suppressor of the kauri dieback pathogen Phytophthora agathidicida, targets a plant ARM/BTB domain-containing protein

O_LIPhytophthora agathidicida, the causal agent of kauri dieback, secretes RXLR effector proteins to promote host colonisation. One of these, PaRXLR40, was previously shown to suppress immune responses in Nicotiana benthamiana, but its mechanism of action and contribution to virulence remained unclear. C_LIO_LITo investigate PaRXLR40 function, we used comparative approaches in N. benthamiana and Agathis australis (kauri), including RNA interference (RNAi), transient expression assays, confocal microscopy, yeast two-hybrid screens, and infection assays. We also examined host protein interactors and tested mutant variants to evaluate functional domains. C_LIO_LISilencing PaRXLR40 reduced P. agathidicida colonization in N. benthamiana and A. australis. PaRXLR40 interacted with a host BTB/ARM domain protein (ARIA), previously implicated in abscisic acid (ABA) signalling. ARIA suppressed immunity and promoted infection, while interacting with NbSOG1, a DNA damage-associated transcription factor that enhanced resistance when overexpressed. External application of ABA enhanced P. agathidicida infection in both hosts, supporting the hypothesis that PaRXLR40 may hijack host ABA signalling through ARIA to promote susceptibility. C_LIO_LIOur findings show that PaRXLR40 targets ARIA to manipulate host immunity and promote virulence. The interaction between ARIA and SOG1 suggests PaRXLR40 may interfere with host transcriptional reprogramming. PaRXLR40 represents a potential target for future RNAi-based strategies to reduce kauri dieback. C_LI

molecular biology↗

The RXLR-EER Motif Determines an Unconventional Secretion Pathway Associated with Extracellular Vesicle Production

Phytophthora infestans, the cause of potato late blight disease, delivers a suite of RXLR effectors into host plant cells to subvert immunity, whereas apoplastic effectors act extracellularly. Although the RXLR-EER motif in these effectors is critical for host translocation and is cleaved prior to secretion, the relevance of this processing is poorly understood. Prior evidence suggests RXLR effectors utilize a distinct, unconventional secretion pathway, raising the question of whether the RXLR-EER motif influences selection of the secretion route. Here, we combined genetic, molecular and cell biology approaches to investigate the secretion pathway of RXLR effectors. Confocal microscopy revealed that RXLR and apoplastic effectors localize to distinct vesicular compartments in cultured hyphae. Moreover, fusing the ER retention signal KDEL to RXLR effectors did not impair their secretion, in contrast to apoplastic effectors, which were retained in the endomembrane system, indicating that RXLR effectors bypass the canonical ER-to-Golgi pathway. Importantly, RXLR effectors associate with extracellular vesicles (EVs), whereas RXLR-EER motif mutants show reduced EV association and are rerouted through the ER-to-Golgi secretion pathway. These findings demonstrate that the RXLR-EER motif governs effector sorting into an unconventional, EV-linked secretion route. This study sheds light on the molecular basis of effector trafficking in P. infestans and underscores the potential role of EVs in delivering virulence factors during host colonization.

microbiology↗

Identification of MARVELlous Protein Markers for Phytophthora infestans Extracellular Vesicles

Extracellular vesicles (EVs) are released from cells by unconventional secretion, but little is known about the biogenesis routes, composition or cargoes of EVs from fungal or oomycete plant pathogens. We investigated the proteome of EV-associated proteins secreted by the oomycete Phytophthora infestans, cause of potato late blight disease. We found that vesicle-associated proteins, transmembrane proteins and RxLR effectors, which are delivered into host cells to suppress immunity, were enriched in the EV proteome. By contrast, the EV-independent secreted proteome was enriched in cell wall modifying enzymes and apoplastic effectors which act outside plant cells. Two proteins each containing two tetraspanning MARVEL domains, PiMDP1 and PiMDP2, were associated with P. infestans EVs. PiMDP1 and PiMDP2 were co-buoyant with RxLR effectors in sucrose density fractions containing EVs and co-localised frequently with each other and with RxLRs at vesicles within pathogen hyphae grown in vitro and during infection. Interestingly, PiMDP2, which is up-regulated during the early biotrophic phase of infection, accumulates at the haustorial interface, a major site of effector secretion during infection. We argue that PiMDP1 and PiMDP2 are molecular markers that will facilitate studies of the biogenesis and secretion of infection-associated P. infestans EVs.

plant biology↗