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Mohanta, Y. K.

Publications and source records attributed to Mohanta, Y. K..

3 recordsLinked to original sources

Multilevel computational approach to unlock the potential inhibitors of biofilm-EPS, persistence and quinolone signalling in Pseudomonas aeruginosa using mangrove-derived bioactive phytochemicals

Pseudomonas aeruginosa, a Gram-negative opportunistic pathogen is well known for life-threatening acute infections among the human population. The bacterium can withstand most antibiotics by using their high levels of inherent and acquired resistance mechanisms such as Biofilm-EPS, Persistence, and Quorum sensing (QS). Owing to the importance of adaptive antibiotic multi-drug resistance of P. aeruginosa, the current investigation is aimed to explore the phytochemicals derived from mangrove plants as potential agents to control biofilm and drug resistance mechanisms through a multi-mechanistic computational approach. For identifying potential compounds and target, In-silico drug repurposing technique is implemented by docking/virtual screening of 49 phytochemical compounds against 18 proteins involved in the Persister Cell formation, QS, and EPS synthesis in P. aeruginosa which resulted the proteins RelA and SpoT (persistence), PqsA, and PqSR (QS), and PelA and PelB (EPS synthesis) and compounds Taraxerone and Taraxerol to be potential. The results of docking were well corroborated with MD simulations. These targets and compounds explored through in-silico approach, are found to target potential antimicrobial pathways involving EPS synthesis, persistence genes, and QS, aiming to enhance antibiotic efficacy. Further, this study could be reference for in-vivo and in-vitro investigations to evaluate the further effectiveness of the compounds and potentiality of the proteins for MDR therapeutics of P. aeruginosa.

microbiology↗

Anticodon Table of the Chloroplast Genome and Identification of Putative Quadruplet Anticodons in Chloroplast tRNAs

The chloroplast genome of 5959 species was analyzed to construct the anticodon table of the chloroplast genome. Analysis of the chloroplast transfer ribonucleic acid (tRNA) revealed the presence of a putative quadruplet anticodon containing tRNAs in the chloroplast genome. The tRNAs with putative quadruplet anticodons were UAUG, UGGG, AUAA, GCUA, and GUUA, where the GUUA anticodon putatively encoded tRNAAsn. The study also revealed the complete absence of tRNA genes containing ACU, CUG, GCG, CUC, CCC, and CGG anticodons in the chloroplast genome from the species studied so far. The chloroplast genome was also found to encode tRNAs encoding N-formylmethionine (fMet), Ile2, selenocysteine, and pyrrolysine. The chloroplast genomes of mycoparasitic and heterotrophic plants have had heavy losses of tRNA genes. Furthermore, the chloroplast genome was also found to encode putative spacer tRNA, tRNA fragments (tRFs), tRNA-derived, stress-induced RNA (tiRNAs), and group I introns. An evolutionary analysis revealed that chloroplast tRNAs had evolved via multiple common ancestors and the GC% had more influence toward encoding the tRNA number in the chloroplast genome compared to the genome size.

genomics↗

In silico analysis of Bacopa monnieri (L.) Wettst. compounds for drug development against Neurodegenerative Disorders

Neurotrophins play a crucial role in the development and regulation of neurons. Alterations in the functioning of these Neurotrophins leads to several Neurodegenerative Disorders. Albeit engineered medications which are accessible for the treatment of Neurodegenerative Disorders, due to their numerous side-effects, it becomes imperative to formulate and synthesize novel drug candidates. Plants could be utilized as an alternative for these manufactured medications because of their low incidental effects in contrast with the engineered drugs. Bacopa monnieri has been traditionally known to be utilized to treat Neurodegenerative Disorders. Therefore, in current study an in-silico based study was carried out to evaluate the pharmacological effect of Bacopa monnieri. Molecular Docking was carried out to screen the active phytochemicals of Bacopa monnieri which can act as potential drug candidates against the causative proteins of Neurodegenerative Disorders. A total of 105 biologically active phytochemicals from Bacopa monnieri were docked against the receptors of brain-derived neurotrophic factor, neurotrophin-3, neurotrophin-4, and nerve growth factor. Based on molecular docking study it was observed that the phytocompounds Vitamin E, Benzene propanoic acid, 3,5-bis(1,1dimethylethyl)4-hydroxy-, methyl ester (BPA), Stigmasterol, and Nonacosane of Bacopa monnieri significantly fits to the active residues of the four selected drug targets. Further Molecular Dynamics simulation study was performed to examine the stability of the binding of these phytochemicals with the selected targets. Drug likeness properties as well as related physico-chemical properties were analyzed through ADMETox study. Our findings suggested that the phytocompounds Vitamin E, BPA, Stigmasterol and Nonacosane significantly bind against brain-derived neurotrophic factor, neurotrophin-3, neurotrophin4, and nerve growth factor, respectively which may be the potential drug candidates for the treatment of neurodegenerative disorders. Graphic Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=140 SRC="FIGDIR/small/486025v1_ufig1.gif" ALT="Figure 1"> View larger version (55K): org.highwire.dtl.DTLVardef@2c39aforg.highwire.dtl.DTLVardef@17f4fd9org.highwire.dtl.DTLVardef@1534e13org.highwire.dtl.DTLVardef@2ad383_HPS_FORMAT_FIGEXP M_FIG C_FIG

pharmacology and toxicology↗