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Sahani, A.

Publications and source records attributed to Sahani, A..

2 recordsLinked to original sources

Global Proteome Remodelling in Rhodococcus jialingiae RS1 to Decipher its Plant Growth-Promoting and Biofertilizer Properties: Gene Identification for Transgenics

1.Abiotic stresses like nitrogen deficiency and soil salinity are major factors contributing to low crop yields. The use of selective biofertilizers alleviates both types of stress. In this study, we investigated the biofertilizer activity and plant growth-promoting properties (PGP) of Rhodococcus jialingiae RS1 through cytosolic proteome remodelling. We cultured RS1 under two conditions, i) without and ii) with 6% NaCl, in nitrogen-deficient defined Burks medium. Under dual stress of nitrogen limitation and salt stress, Orbitrap LC-MS/MS proteomics revealed one-quarter of the proteome remodelling, particularly the upregulation of ribosomal synthesis and protein repair systems. As expected, we found high expression of EctC, an ectoine synthase, a key enzyme in osmolyte biosynthesis. Additionally, ribosomal and translational-associated factors, including RpsL, RpsS, RpsT, RpsR1, RplV, RplL, RplA, and elongation factor Tuf, were highly expressed, suggesting enhanced translational fidelity under dual stress. High levels of DNA protection protein, Dps suggest dual stress may lead to DNA damage. Upregulation of chaperones, environmental sensors (KinE), and redox transcriptional factors like WhiB3, Hsp18, AhpC, and MetE suggests protein misfolding and oxidative stress. Metabolic modulations were evident through high expression of IlvA, NAD-dependent glutamate dehydrogenase, lipid/envelope-remodelling enzymes, cutinase/esterases, lipases, endopeptidases like NlpC/P60 and transport systems. In contrast, proteins involved in urease structural components (urea-G), nitrogen regulators and ammonium transporters (GlnK and Amt) were downregulated. Dual stress may lead to an energy crisis, prompting strategic shifts away from high-ATP-dependent ureolytic nitrogen-scavenging pathways towards lower-energy nitrogen-assimilating routes, such as IlvA-mediated deamination and NAD-dependent glutamate dehydrogenation. Genetic manipulations of the above-mentioned genes or their homologues across the genera of microbes, plants, and crops may enhance resilience to abiotic stresses. Our studies reveal stress-responsive genes and biochemical pathways that could be used to improve transgenic efficacy in nitrogen-limited, saline soil and other (a)biotic stresses. Global Proteome Profiling of Rhodococcus jialingiae RS1 to Develop Transgenics O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=109 SRC="FIGDIR/small/724437v1_ufig1.gif" ALT="Figure 1"> View larger version (19K): org.highwire.dtl.DTLVardef@1f29783org.highwire.dtl.DTLVardef@1b953e6org.highwire.dtl.DTLVardef@335951org.highwire.dtl.DTLVardef@12ce661_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗

Association of haplotypes of AAP family amino acid transporters with nitrogen response and nitrogen use efficiency in rice grown under hydroponics and field conditions

The low nitrogen use efficiency (NUE) of staple food crops like rice has both economic and environmental impact. Amino acids taken up from soil or synthesized in source tissues and transported to sink tissues influence plant development and NUE. Amino acid permeases (AAPs) mediate amino acid uptake and transport and influence plant development, yield and NUE. NUE is a complex trait critical for improving rice productivity under variable N supply. Amino acid permeases such as OsAAP3, OsAAP5, and OsAAP11 have been shown to function as negative regulators of NUE in Japonica rice, yet their roles in Indica rice remain to be fully elucidated. In this study, we evaluated selected Indica genotypes under contrasting N regimes--seedlings were tested under high nitrate (HN), high ammonium (HA), and low N (LN) conditions, and field performance was assessed under N120 (optimum N) and N0 (low N). Our aim was to relate performance differences to the SNP status in these three genes, thereby clarifying their influence on N uptake, assimilation, yield potential, and N stress adaptation. ARC 10799 had non-synonymous SNP in OsAAP3, OsAAP5 and OsAAP11. Rice accessions like "Local," "NCS901," and "Bhainsa Mundariya," showed superior biomass accumulation relative to MTU1010. Interestingly, the trend observed in the NUE calculated in seedling stage was similar to those proven in field evaluation and this proves that in general, genotypes with non-synonymous mutation in AAP3, AAP5 and AAP11 in comparison to Japonica showed better growth and N content. Data suggests an N induced regulation of physiological parameters and the changes in NUE parameters was at least in part, related to variation in biomass, plant height, photosynthesis and pigment content related parameters. The comparatively dissimilar trends in shown by different AAP haplotypes indicates the possibility of high or low correlation trait-wise, offering an opportunity to identify significant contrasts in a divergent set of AAP haplotypes. The previous reports and current findings opens new avenues and insights for improving rice yield, quality and NUE by changes in AAP haplotypes that occur naturally or created by precise genome editing.

plant biology↗