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Biology subjects

Maurya, A.

Publications and source records attributed to Maurya, A..

2 recordsLinked to original sources

Discordance in Genotypic and Phenotypic anti-tuberculosis drug susceptibility results: time to reconsider critical concentration.

ObjectiveTo correlate rpoB mutations found on the sanger sequencing in Mycobacterium tuberculosis (MTB) isolates with Minimum Inhibitory Concentrations (MICs) to the rifampicin. MethodsWe assessed the minimum inhibitory concentrations (MICs) for 151 archived clinical MTB isolates that were determined phenotypically susceptible to RIF (101;66.89%) and remaining fifty (50;33.11%) were resistant to RIF by BACTEC MGIT SIRE DST. MIC values were determined using colorimetric redox indicator (Resazurin/REMA) method and results were correlated with rpoB gene mutations associate with rifampicin resistance found. ResultsComparing the MIC and critical concentration, we found that 15 of these 101 (14.85%) isolates were misclassified by MGIT-960 as sensitive at standard critical concentration (1.0{micro}g/mL) though these were found to have low-level RIF resistance by CRI assay (MIC 0.50{micro}g/mL to 1.0{micro}g/mL) and sanger sequencing. We found that all of 15 isolates contained non-synonymous mutations, the commonest being the Ile572Phe (7, 46.66%), followed by Leu533Pro (3, 20.0%), His526Leu (2, 13.33%), His526Asn+Ile572Phe (1), Asp516Tyr (1), and Leu533Pro+Pro564Arg (1). These mutations are reported to confer low-level RIF resistance. But we did not find any mutation at MIC <0.25g/mL. ConclusionWe found that a significant number of MTB isolates have phenotypic and genotypic discordance. Taking 1.0{micro}g/mL of rifampicin as critical concentration, isolates from approximately 15% patients are misidentified as susceptible to rifampicin, even when these strains carry low level drug resistance conferring mutations and have potential to develop clinical MDR-TB.

microbiology↗

Computational exploration of bio-remediation solution for mixed plastic waste

The plastic materials are recalcitrant in the open environment, surviving longer without complete remediation. The current disposal methods of used plastic material are not efficient; consequently, plastic wastes are infiltrating the natural resources of the biosphere. A sustaining solution for plastic waste is either recycling or making it part of the earths biogeochemical cycle. We have collected, manually mined, and analyzed the previous reports on plastic biodegradation. Our results demonstrate that the biodegradation pattern of plastics follows the chemical classification of plastic types. Based on clustering analysis, the distant plastic types are grouped into two broad categories of plastic types, C-C (non-hydrolyzable) and C-X (hydrolyzable). The genus enrichment analysis suggests that Pseudomonas and Bacillus from bacteria and Aspergillus and Penicillium from fungal are potential genera for bioremediation of mixed plastic waste. Overall results have pointed towards a possible solution of mixed plastic waste either in a circular economy or open remediation. The meta-analysis of the reports revealed a historical inclination of biodegradation studies towards C-X type of plastic; however, the C-C class is dominated in overall plastic production. An interactive web portal of reports is hosted at plasticbiodegradation.com for easy access by other researchers for future studies

microbiology↗