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Abubakar, Y. S.

Publications and source records attributed to Abubakar, Y. S..

2 recordsLinked to original sources

Rab7/Retromer-based endolysosomal trafficking facilitates effector secretion and host invasion in rice blast

Secretion is a fundamental process in all living organisms. Using conventional secretion pathways, many plant pathogens release effectors into the host plants to downregulate immunity and promote infection. However, this does not always constitute the only way that effectors are sorted and tracked to their final destination such as the biotrophic interfacial complex-associated effectors produced by the blast fungus Magnaporthe oryzae. Here, we uncover a novel unconventional route originating from fungal vacuolar membrane to the host interface and plasma membrane. We found that a GFP-MoRab7 labeled vacuole is closely associated with the interface structure throughout M. oryzae invasive growth. Conditional inactivation of MoRab7 impaired the establishment of the biotrophy interface and secretion of Pwl2 effector. To perform the vacuolar trafficking pathway, MoRab7 first recruits the retromer complex to the vacuole membrane, enabling it recognizes a batch of SNARE proteins, including the v-SNARE MoSnc1. Live-cell imaging supports both retromer complex component and MoSnc1 protein labeled vesicles showing the trafficking dynamics toward the interface or plasma membrane, and then fusion with target membranes. Lastly, disruption of the MoRab7/Retromer/MoSnc1-based endolysosomal cascade affects effector secretion and fungal pathogenicity. Taken together, we discovered an unconventional protein and membrane trafficking route starting from the fungal endolysosomes to the M. oryzae-rice interaction interface, and dissect the role of MoRab7/Retromer/MoSnc1 constituent sorting machinery in effector secretion during invasive growth in M. oryzae.

plant biology↗

MoIsw2 activity could be the missing link between adaptation and mutation instrumental for natural adaptation-directed fast evolution (NADFE) of Magnaporthe oryzae

Isw2 proteins are conserved in eukaryotes and are known to bind to DNA and dynamically influence local chromosome condensation close to their DNA binding site in an ATP-dependent manner making genes close to the binding sites more accessible for transcription and repression. A putative MoISW2 gene was deleted with large effects on plant pathogenicity as a result. The gene was complemented and a ChIP-sec was performed to identify binding sites. RNAsec showed effects on the overall regulation of genes along the chromosomes for mutant and background strains and this was compared with RNAseq from 55 downloaded RNA-seq datasets from the same strain and found similar. MoIsw2 binding and activities create genomic regions affected by MoIsw2 with high gene expression variability close to the MoIsw2 binding sites while surrounding regions have lower gene expression variability. The genes affected by the MoIsw2 activity are niche-determinant genes (secreted proteins, secondary metabolites and stress-coping genes) and avirulence genes. We further show that MoIsw2 binding sites with the DNA binding motifs coincide with known transposable elements (TE) making it likely that TE-transposition at the binding sites can affect the transcription profile of M. oryze in a strain-specific manner. We conclude that MoIsw2 is a likely candidate for a master regulator, regulating the dynamic balance between biomass growth genes (like housekeeping genes) and nich-determinant genes important for ecological fitness. Stress-induced TE transposition is together with MoIsw2 activity a likely mechanism creating more mutations and faster evolution of the niche-determinant genes than for housekeeping genes.

evolutionary biology↗