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Badar, A.

Publications and source records attributed to Badar, A..

3 recordsLinked to original sources

DMC1 and RAD51 bind FxxA and FxPP motifs of BRCA2 via two separate interfaces

In vertebrates, the BRCA2 protein is essential for meiotic and somatic homologous recombination (HR) due to its interaction with RAD51 and DMC1 strand exchange proteins (recombinases). The interaction is mediated by FxxA and FxPP motifs, whose defining feature is the invariant phenylalanine. The FxxA motifs, present in the eight BRC repeats in the central region of BRCA2, compete with the FxxA motif of the linker region of RAD51 that is responsible for recombinase self-oligomerization. In vitro, BRCs disrupt RAD51 nucleoprotein filaments, but they are essential for RAD51 function in the context of the full-length BRCA2 protein. The role of the FxPP motifs is poorly studied but they also contribute to BRCA2 function in cells. In particular, the C-terminal TR2/CTRB domain of BRCA2, which contains an FxPP motif, is required for stabilization of RAD51 filament and replication fork protection. We recently found that deletion of the BRCA2 PhePP domain, which contains another FxPP motif, disrupts DMC1 but not RAD51 function in meiosis. Here we provide a mechanistic explanation for this phenotype by solving the crystal structure of the complex between DMC1 and the PhePP domain of BRCA2. Our structure reveals that, despite sequence similarity, the A-motifs (FxxA) and P-motifs (FxPP) bind to distinct and contiguous sites on the recombinases. The PhePP P-motif binding site is mostly located at the ATPase domain surface of a DMC1 monomer, but also extends to the linker region of the adjacent monomer, thus engaging two adjacent protomers in the DMC1 oligomer. Our structural analysis provides a mechanism explaining how PhePP favors the formation of the DMC1 nucleoprotein filament and stabilizes it. It corroborates and explains the stabilizing effect of the P-motif from BRCA2 TR2/CTRB on RAD51.

biochemistry↗

Disease Resistance correlates with Core Microbiome Diversity in Cotton

Understanding the resident microbial communities and their above and below ground interactions with plants will provide necessary information for crop disease protection and stress management. In this study, we show how diversity of core microbiome varies with disease susceptibility of a crop. To test this hypothesis, we have focused on identifying the core microbial species of Cotton Leaf Curl Disease (CLCuD) susceptible Gossypium hirsutum and CLCuD resistant Gossypium arboreum under viral infestation. Derivation of core membership is challenging as it depends on an occupancy threshold of microbial species in a sampling pool, whilst accounting for different plant compartments. We have used an abundance-occupancy distribution approach where we dynamically assess the threshold for core membership, whilst marginalizing for occupancy in four compartments of the cotton plant, namely, leaf epiphyte, leaf endophyte, rhizosphere, and root endophyte. Additionally, we also fit a neutral model to the returned core species to split them into three groups, those that are neutral, those that are selected by the plant environment, and finally those that are dispersal limited. We have found strong inverse relationship between diversity of core microbiome and disease susceptibility. A deeper understanding of this association will aid in the development of biocontrol agents for improving plant immunity against biotrophic pathogens.

microbiology↗

Cotton Microbiome Profiling and Cotton Leaf Curl Disease (CLCuD) Suppression through Microbial Consortia associated with Gossypium arboreum

The failure of breeding strategies has caused scientists to shift to other means where the new approach involves exploring the microbiome to modulate plant defense mechanisms against CLCuD. The cotton microbiome of CLCuD-resistant varieties may harbor a multitude of bacterial genera that significantly contribute to disease resistance and provide information on metabolic pathways that differ between the susceptible and resistant varieties. The current study aimed to explore the microbiome of CLCuD-susceptible Gossypium hirsutum and CLCuD-resistant Gossypium arboreum. Microbial community surveys performed using 16S rRNA gene amplification revealed that Pseudomonas inhabited the rhizosphere while Bacillus was predominantly found in the phyllosphere of CLCuV-tolerant G. arboreum. The study was done for the leaf endophyte, leaf epiphyte, rhizosphere, and root endophyte of the two cotton species. Furthermore, our disease incidence assay using pot experiments has revealed mechanistic insights through salicylic acid-producing Serratia spp. and Fictibacillus spp. isolated from CLCuD-resistant G. arboreum, which exhibited viral disease suppression and induced systemic resistance in CLCuD susceptible G. hirsutum.

plant biology↗