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Wahengbam, R.

Publications and source records attributed to Wahengbam, R..

3 recordsLinked to original sources

Whole-Genome Characterization of Proteus mirabilis Isolated from Fermented Soybean, hawaijar: Insights into Foodborne Virulence and Antimicrobial Resistance Determinants

Proteus mirabilis is a well-known opportunistic pathogen primarily associated with urinary tract and wound infections in humans; however, its presence in fermented foods has rarely been documented. This study reports the first whole-genome characterization of P. mirabilis strain FFPR3MR5, isolated from traditionally fermented soybean (hawaijar) produced in Moirang, Manipur, India, to evaluate its genomic features, virulence potential, and evolutionary relationship with clinical isolates. The draft genome comprised 3.74 Mb with a GC content of 38.56%, assembled into 109 contigs and encoding 3,317 coding sequences, with 100% completeness and 0.17% contamination. Functional annotation identified 3,282 KEGG orthologs mapped to 40 metabolic pathways, with metabolism-related genes predominating (75.05%). Genome screening revealed 35 virulence-associated genes involved in adherence, motility, biofilm formation, and immune evasion, along with four antimicrobial resistance genes conferring resistance to {beta}-lactams, fluoroquinolones, tetracyclines, and macrolides. Phylogenetic analysis showed that FFPR3MR5 clustered closely with the clinical reference strain P. mirabilis NC_010554, supported by a high OrthoANIu value of 99.39%. Genome-wide variant analysis identified approximately 27,000 polymorphisms, including deleterious nonsynonymous substitutions in genes associated with stress response (cpxA, kdpD), biofilm formation (bcsA), DNA repair (recB, recC, ssb), and metabolism (metH), suggesting niche-specific adaptation to the fermentation environment. The coexistence of virulence and antimicrobial resistance determinants in this food-derived strain underscores its potential as a reservoir of clinically relevant traits, highlighting the need for genomic surveillance of traditional fermented foods within a One Health framework. ImportanceThis study offers a comprehensive whole-genome analysis of a P. mirabilis strain isolated from fermented soybean food, broadening current knowledge of how opportunistic pathogens survive outside clinical settings. Integrated genomic, phylogenetic, and variant analyses revealed the coexistence of virulence and antimicrobial resistance determinants, highlighting fermented foods as potential reservoirs of clinically relevant bacteria. Deleterious mutations in genes linked to biofilm formation, stress response, metabolism, and DNA repair suggest adaptation to fermentation environments, while close relatedness to a clinical reference strain underscores public health relevance. These findings emphasize the need for genomic surveillance of traditional fermented foods within a One Health framework.

microbiology↗

Optimization of denoising and filtering parameters of DADA2 for QIIME2 amplicon metagenomics data analysis

BackgroundHigh-throughput sequencing generates vast data, often containing low-quality bases, chimeras, and artifacts that can mislead taxonomic classification and diversity assessments. DADA2 enhances taxonomic resolution by excluding low-quality bases and optimizing ASV inference. Proper truncation reduces computational load while maintaining key hypervariable regions for accurate classification. In this study, we examine the effect of various truncation lengths during the DADA2 analysis in ensuring statistical robustness and improving the reliability of microbial community profiling in ecological and environmental studies. ResultsTruncation of read length improves the quality reads recovery rate, and preserves microbial diversity in the V4 hypervariable region of Illumina paired-end reads. ConclusionIncorporating the best truncation length strategy optimizes the reads recovery and preserves the richness and evenness of microbial communities.

bioinformatics↗

Shift in gut microbiota composition and mitigation of diet-induced atherogenesis in mice after prolonged consumption of a traditionally fermented soybean

Dietary choices and gut microbiota alterations are linked to the rising prevalence of cardiovascular diseases, including atherosclerosis. Fermented foods, recognized for their health benefits, are known for maintaining cardiovascular health, yet their impact on atherogenesis and associated gut microbiota changes is poorly understood. Here, we showed the restorative potential of long-term dietary supplementation with a traditional Indian fermented soybean, hawaijar, in mitigating atherogenic lesions formation and gut microbiota alteration induced by an atherogenic diet in C57BL/6 mice. The diet caused atherogenesis, characterized by increased inflammatory gene expression (IL-1{beta}, ICAM-1, CD4, FoxP3), elevated serum LPS endotoxin levels, and compromised gut health, indicated by increased permeability and decreased expression of tight junction and mucin-producing genes essential for gut barrier integrity (Ocln, Cldn-1, Cldn-4, Muc-2). Metagenomic analysis revealed diet-induced gut dysbiosis, evidenced by an elevated Firmicutes-to-Bacteroidetes ratio, reduced bacterial diversity, and a shift in bacterial composition, including a loss of beneficial Ligilactobacillus spp. while pathogenic Romboutsia spp., Escherichia spp., and Clostridium spp. emerged. Conversely, feeding hawaijar for sixteen weeks significantly improved atherogenesis, reducing atherosclerotic lesions, serum endotoxins, and inflammatory gene expression. It corrected dysbiosis, restoring gut microbiota to a healthy composition and enhancing gut barrier integrity by reducing permeability and increasing tight junction gene expression. Core beneficial bacteria such as Phocaeicola sartorii, Faecalibaculum rodentium, and Akkermansia muciniphila resurged, alongside the recovery of Muribaculum gordoncarteri and Duncaniella dubosii, which were lost in the atherogenic condition. Gut eubiosis upon fermented soybean supplementation was also linked with a predicted reduction in major metabolic pathways and a distinct increase in terpenoids and polyketide metabolism. The study highlights the importance of traditional fermented soybean in restoring gut microbiota diversity and gut health against dietary-induced dysbiosis, providing insights into its role in modulating atherogenesis in a gut microbiota-dependent manner. Highlights of findingsO_LIMetagenomics reveals changes in gut microbiota composition associated with diet-induced atherogenesis and consumption of traditional fermented soybean, hawaijar, in C57BL/6 mice. C_LIO_LIFermented soybean supplementation in atherogenic diet reduces atherogenic lesions, expression of genes associated with inflammatory response (IL-1{beta}, ICAM-1, CD4, and FoxP3), and serum LPS endotoxin level. C_LIO_LIFermented soybean consumption improves gut barrier integrity, indicated by decreased gut permeability and elevated expressions of tight junction genes (Ocln, Cldn-1, Cldn-4). C_LIO_LIDietary fermented soybean supplementation promotes eubiosis of atherogenic diet-induced dysbiotic microbiota with a profile characteristic of a normal diet. C_LIO_LIFive core microbiota members, including Ligilactobacillus spp., CAG-485 sp002493045 and others, are lost under atherogenic diet regime; however, only Muribaculum gordoncarteri and Duncaniella dubosii are restored with fermented soybean supplementation. C_LIO_LIEubiosis of diet-induced dysbiotic microbiota upon fermented soybean supplementation is associated with a predicted reduction in major metabolic pathways and a distinct increase in terpenoids and polyketide metabolism. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=197 SRC="FIGDIR/small/649253v1_ufig1.gif" ALT="Figure 1"> View larger version (79K): org.highwire.dtl.DTLVardef@77bf59org.highwire.dtl.DTLVardef@1b38d1forg.highwire.dtl.DTLVardef@f62a97org.highwire.dtl.DTLVardef@1665035_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗