Javascript must be enabled to continue!
A putative N-BAR-domain protein is crucially required for the development of hyphae tip appressorium-like structure and its plant infection in Magnaporthe oryzae
View through CrossRef
Abstract
Membrane remodeling modulates many biological processes. The binding of peripheral proteins to lipid membranes results in membrane invaginations and protrusions, which regulate essential intra-cellular membrane and extra-cellular trafficking events. Proteins that bind and re-shape bio-membranes have been identified and extensively investigated. The Bin/Amphiphysin/Rvs (BAR) domain proteins are crescent-shape and play a conserved role in tubulation and sculpturing of cell membranes. We deployed targeted gene replacement technique to functionally characterize two hypothetical proteins (MoBar-A and MoBar-B) containing unitary N-BAR domain in Magnaporthe oryzae. The results obtained from phenotypic examinations showed that MoBAR-A deletion exerted a significant reduction in the growth of the defective ∆Mobar-A strain. Also, MoBAR-A disruption exclusively compromised hyphae-mediated infection. Additionally, the targeted replacement of MoBAR-A suppressed the expression of genes associated with the formation of hyphae tip appressorium-like structure in M. oryzae. Furthermore, single as well as combined deletion of MoBAR-A and MoBAR-B down-regulated the expression of nine different membrane-associated genes. From these results, we inferred that MoBAR-A plays a key and unique role in the pathogenesis of M. oryzae through direct or indirect regulation of the development of appressorium-like structures developed by hyphae tip. Taken together, these results provide unique insights into the direct contribution of the N-BAR domain proteins to morphological, reproduction, and infectious development of M. oryzae.
Springer Science and Business Media LLC
Title: A putative N-BAR-domain protein is crucially required for the development of hyphae tip appressorium-like structure and its plant infection in Magnaporthe oryzae
Description:
Abstract
Membrane remodeling modulates many biological processes.
The binding of peripheral proteins to lipid membranes results in membrane invaginations and protrusions, which regulate essential intra-cellular membrane and extra-cellular trafficking events.
Proteins that bind and re-shape bio-membranes have been identified and extensively investigated.
The Bin/Amphiphysin/Rvs (BAR) domain proteins are crescent-shape and play a conserved role in tubulation and sculpturing of cell membranes.
We deployed targeted gene replacement technique to functionally characterize two hypothetical proteins (MoBar-A and MoBar-B) containing unitary N-BAR domain in Magnaporthe oryzae.
The results obtained from phenotypic examinations showed that MoBAR-A deletion exerted a significant reduction in the growth of the defective ∆Mobar-A strain.
Also, MoBAR-A disruption exclusively compromised hyphae-mediated infection.
Additionally, the targeted replacement of MoBAR-A suppressed the expression of genes associated with the formation of hyphae tip appressorium-like structure in M.
oryzae.
Furthermore, single as well as combined deletion of MoBAR-A and MoBAR-B down-regulated the expression of nine different membrane-associated genes.
From these results, we inferred that MoBAR-A plays a key and unique role in the pathogenesis of M.
oryzae through direct or indirect regulation of the development of appressorium-like structures developed by hyphae tip.
Taken together, these results provide unique insights into the direct contribution of the N-BAR domain proteins to morphological, reproduction, and infectious development of M.
oryzae.
Related Results
Mechanisms of regulated cell death during plant infection by the rice blast fungus Magnaporthe oryzae
Mechanisms of regulated cell death during plant infection by the rice blast fungus Magnaporthe oryzae
Abstract
Fungi are the most important group of plant pathogens, responsible for many of the world’s most devastating crop diseases. One of the reasons they are such succe...
Uji Antagonisme Bakteri Endofit dengan Cercospora oryzae Miyake dan Bipolaris oryzae (Breda de Haan) Shoemaker
Uji Antagonisme Bakteri Endofit dengan Cercospora oryzae Miyake dan Bipolaris oryzae (Breda de Haan) Shoemaker
ABSTRACTAntagonism test between Endophytic Bacteria and Cercospora oryzae Miyake and Bipolaris oryzae (Breda de Haan) ShoemakerCercospora oryzae Miyake dan Bipolaris oryzae (Breda ...
Direct measurement of appressorium turgor using a molecular mechanosensor in the rice blast fungus
Magnaporthe oryzae
Direct measurement of appressorium turgor using a molecular mechanosensor in the rice blast fungus
Magnaporthe oryzae
Abstract
Many plant pathogenic fungi forcibly enter their hosts to cause disease. The rice blast fungus
Magnaporthe oryzae
...
Transposable elements impact the population divergence of rice blast fungus
Magnaporthe oryzae
Transposable elements impact the population divergence of rice blast fungus
Magnaporthe oryzae
ABSTRACT
Dynamic transposition of transposable elements (TEs) in fungal pathogens have significant impact on genome stability, gene expression, a...
In Vitro and Ex Vivo Antifungal Activities of Metconazole against the Rice Blast Fungus Pyricularia oryzae
In Vitro and Ex Vivo Antifungal Activities of Metconazole against the Rice Blast Fungus Pyricularia oryzae
Rice blast, caused by the filamentous fungus Pyricularia oryzae, has long been one of the major threats to almost all rice-growing areas worldwide. Metconazole, 5-(4-chlorobenzyl)-...
2,6‐Dimethoxy‐1,4‐Benzoquinone Enhances Resistance Against the Rice Blast Fungus Magnaporthe oryzae
2,6‐Dimethoxy‐1,4‐Benzoquinone Enhances Resistance Against the Rice Blast Fungus Magnaporthe oryzae
AbstractWe investigated the effect of 2,6‐dimethoxy‐1,4‐benzoquinone (DMBQ) on induced resistance to Magnaporthe oryzae in rice. DMBQ concentrations greater than 50 μg/ml inhibited...
eIF3k Domain-Containing Protein Regulates Conidiogenesis, Appressorium Turgor, Virulence, Stress Tolerance, and Physiological and Pathogenic Development of Magnaporthe oryzae Oryzae
eIF3k Domain-Containing Protein Regulates Conidiogenesis, Appressorium Turgor, Virulence, Stress Tolerance, and Physiological and Pathogenic Development of Magnaporthe oryzae Oryzae
The eukaryotic translation initiation factor 3 (eIF3) complex consists of essential and non-essential sub-complexes. Non-essential eIF3 complex subunits, such as eIF3e, eIF3j, eIF3...
Magnaporthe Oryzae Chloroplast-Targeting Endo-β-1,4-Xylanase I MoXYL1A Regulates Conidiation, Appressorium Maturation and Virulence of the Rice Blast Fungus
Magnaporthe Oryzae Chloroplast-Targeting Endo-β-1,4-Xylanase I MoXYL1A Regulates Conidiation, Appressorium Maturation and Virulence of the Rice Blast Fungus
Abstract
Endo-β-1,4-Xylanases are a group of extracellular enzymes that catalyze the hydrolysis of xylan, a principal constituent of the plant pr...

