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Shah, B. S.

Publications and source records attributed to Shah, B. S..

2 recordsLinked to original sources

The Acinetobacter baumannii virulence factor Omp33 is important for tolerance to benzalkonium chloride

Benzalkonium chloride (BAC) is widely used in many disinfectant solutions in clinical settings to eradicate potential bacterial pathogens, such as Acinetobacter baumannii. We sought to investigate the transcriptomic response of a drug resistant A. baumannii isolate, AB5075-UW, on exposure to a sub-inhibitory concentration of BAC. Our transcriptomic analysis found that BAC caused an increase in the expression of genes associated with protein synthesis, such as translation initiation factors, ribosomal proteins and tRNA synthetases. It also induced the expression of genes associated with energy production and central carbon metabolism. We also observed increased expression of peptidoglycan and rod shape determining genes, which may provide increased mechanical strength to withstand osmotic challenges posed by compounds such as BAC. The most highly expressed genes under BAC stress include those that encode the RND efflux pump AdeABC and the A. baumannii porin Omp33. Mutants of adeABC and its regulator genes adeRS had a higher susceptibility to BAC. Disruption of the gene encoding Omp33 also resulted in higher susceptibility to BAC, and complementation of the mutant with omp33 together with a 450bp upstream region restored tolerance to BAC to parental strain levels (AB5075-UW). Site directed mutagenesis of amino acids associated with Omp33 periplasmic turn (T1), which folds into the lumen of the porin and blocks the channel, suggests that Omp33 may act to prevent entry of BAC into the cell. In previous studies, Omp33 has been described as an important virulence factor in A. baumannii. The results presented in this study describe a novel role for Omp33 in BAC tolerance and reveal that A. baumannii tolerates BAC stress through a combination of mechanisms.

microbiology↗

Recent emergence of cephalosporin resistant Salmonella Typhi carrying IncFIB(K) plasmid encoding blaCTX-M-15 gene in India

The emergence and spread of Salmonella Typhi (S. Typhi) resistant to third-generation cephalosporins is a serious global health concern. In this study, we genomically characterized 142 cephalosporin-resistant S. Typhi strains isolated from India. Comparative genome analysis revealed the emergence of a new clone of ceftriaxone-resistant S. Typhi harboring three plasmids of the incompatibility groups IncFIB(K), IncX1, and IncFIB(pHCM2). Among these, the IncFIB(K) plasmid confers resistance to third-generation cephalosporins through the blaCTX-M-15 gene, along with other resistance determinants such as aph(3"), aph(6), sul2, dfrA14, qnrS, and tetA. Phylogenetic analysis showed that the isolates from Gujarat (n=140/142) belong to a distinct subclade (genotype 4.3.1.2.2) within genotype 4.3.1.2 (H58 lineage II). SNP-based phylogenetic analysis of the core genes in IncFIB(K) reveals a close genetic relationship between the plasmid backbone and that of IncFIB(K) from other Enterobacterales, suggesting that the H58 lineage II possesses the capability to acquire MDR plasmids from these organisms. This could indicate the potential onset of a new wave of ceftriaxone-resistant S. Typhi in India. The implementation of control measures such as vaccination, and improved water, sanitation, and hygiene (WASH) systems, is crucial in areas where MDR or XDR S. Typhi strains are prevalent to curb the spread and impact of these resistant strains. ImportanceTyphoid fever remains a significant public health problem in many parts of the world, particularly in resource-limited settings with inadequate sanitation and limited access to clean water. The emergence of MDR S. Typhi resistant to first-line antibiotics (chloramphenicol, ampicillin, and cotrimoxazole) and fluoroquinolones marked the initial treatment challenge, leading to reliance on azithromycin and third-generation cephalosporins. Recently, researchers identified the emergence of XDR typhoid in Pakistan that is resistant to five classes of antibiotics including third-generation cephalosporins. In this study, we report a recent emergence of S. Typhi isolates resistant to third-generation cephalosporins. Genomic characterization and evolutionary analysis of the new strains revealed a recent acquisition of blaCTX-M carrying IncFIB(K) plasmid led to the emergence of ceftriaxone-resistant S. Typhi. Due to the ongoing nature of this outbreak, the data from this study deserves further consideration in order to control its spread in India.

genomics↗