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Mandi, R.

Publications and source records attributed to Mandi, R..

3 recordsLinked to original sources

Agroforestry reshapes soil bacterial communities to enhance Ricinus communis oil quality and bioactivity over monocropping: comparative metagenomics and culture-dependent insights

An agroforestry (AF) system improves crop quality, ecosystem services, and microbial resilience, but its effects on oilseed bioactivity and soil microbiomes are still underexplored. This study compared AF and monocropping systems for castor (Ricinus communis L.) grown in Rajasthan, India, to evaluate plant productivity, seed oil composition, antimicrobial properties, and soil bacterial communities. AF enhanced seed morphology and germination. Castor oil from agroforestry had a 2.4-fold higher phenolic content, 2% more ricinoleic acid, and lower levels of oleic and linoleic acids compared to monocropping, confirmed by infrared spectroscopy and gas chromatography, along with increased expression of the RcDGAT2 gene involved in fatty acid biosynthesis. This led to improved antimicrobial activity against Bacillus mobilis and Pseudomonas fluorescens. Full-length 16S rRNA gene sequencing on the Nanopore platform identified 17 bacterial phyla in soil microbiomes, with Proteobacteria and Firmicutes as the dominant phyla. While alpha diversity was similar, AF soils showed distinct taxonomic shifts, enriching bacteria such as Alkalimonas, Aureimonas, Blastopirellula, Glutamicibacter, Rhizobium, Rhizomicrobium, and Rhodovulum, linked to nutrient cycling and plant growth promotion. Isolated rhizospheric/root endophytic Bacillus safensis and Enterobacter cloacae from AF castor exhibited plant growth-promoting traits via biochemical tests and whole-genome sequencing; their oil biosynthesis genes likely contribute to host oil quality by enhancing precursor supply and phenolic pathways. These isolates enhanced the growth of the model plant Arabidopsis thaliana. In summary, AF enhances the bioactivity of castor oil and microbial functions by modulating plant-soil-microbe interactions, thereby supporting sustainable crop quality and soil health.

microbiology↗

Genome-wide association study and transcriptomics reveal the genetic architecture of alkalinity tolerance in Arabidopsis thaliana

Alkalinity stress significantly restricts global plant productivity, yet the genetic basis for plant tolerance remains largely uncharacterized. In this study, a genome-wide association study was performed using 218 diverse natural Arabidopsis thaliana ecotypes to identify the top 73 SNPs associated with alkalinity tolerance, measured by relative root length in hydroponic growth media containing NaHCO3 at pH 8.0. Prominent association peaks were localized near genes involved in lipid metabolism (GGL20), protein degradation (AT3G17570), and vesicle-mediated protein sorting (VPS13B and AT5G57210). Expression level and protein polymorphisms in these genes were associated with alkalinity tolerance. T-DNA mutants of GGL20, AT3G17570, and the chromatin-modifying gene AFR1 showed alkaline hypersensitivity, reduced root length, iron content, and rosette size, and elevated hydrogen peroxide. Conversely, mutants of the DNA repair gene ETG1 exhibited greater tolerance than wild type in hydroponics, solid media, and soil assays, confirming their role in alkalinity tolerance. Transcriptome and network analyses revealed that alkalinity responses significantly overlap with iron deficiency pathways, identifying hub genes involved in ribosome assembly and translation control. These findings provide a comprehensive map of the genetic and transcriptional landscape of alkalinity adaptation and offer promising candidate genes for engineering crops resilient to alkaline soil conditions.

plant biology↗

A desert endophyte, Priestia megaterium SI1-IITJ, improves fluoride stress tolerance by reducing fluoride content of plant tissues and perturbing salt tolerance and defense genes of Arabidopsis thaliana

We isolated a fluoride (F-)-resistant bacterium, Priestia megaterium SI1-IITJ, from thse internal root tissues of several Thar Desert plants, Aerva javanica, Cyperus conglomeratus, Senna tora, and Tephrosia purpurea, tolerating up to 100 mM NaF. The root endophytic behavior of the isolate was confirmed by scanning electron microscopy. SI1-IITJ possesses plant growth-promoting properties, including auxin production (19.8 g mL-1), phosphate solubilization (index 3.64), ACC deaminase (0.54 mmol -ketobutyrate mL-1) and nitrate reductase (0.65 mol mL-1 nitrite) activities, revealed by biochemical tests and whole genome sequencing. SI1-IITJ extrudes F- from the cell, possibly through an F- efflux transporter, CrcB, identified in its genome. Significant growth improvements were observed in Arabidopsis thaliana under F- stress in hydroponics and soil culture upon coculture with SI1-IITJ, which improved the chlorophyll content by 1.6%, total nitrogen by 30.4%, and reduced reactive oxygen species by 48.9% and F- content by 63.9% in plant tissues. A differential gene expression analysis of A. thaliana by transcriptome sequencing indicated an unperturbed F- exporter, AtFEX1, but up-regulation of 55 genes regulating root meristem growth, cell wall modification, chlorophyll biosynthesis, Fe homeostasis, and high salt- and abiotic stress-responsive genes. On the other hand, 103 genes were down-regulated, suppressing systemic acquired resistance, plant defense, and H2O2 production. In conclusion, our results provide genomic insights into the mechanisms of F- toxicity alleviation and plant growth enhancement by a desert PGPR, highlighting Priestia megaterium SI1-IITJ as a potential biofertilizer for mitigating F- stress in plants.

plant biology↗