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Kurthkoti, K.

Publications and source records attributed to Kurthkoti, K..

2 recordsLinked to original sources

dnaE2 expression promotes genetic diversity and bacterial persistence in mycobacterial biofilms

The complex cellular architecture and the microenvironments within the biofilm give rise to a population that is both physiologically and genetically heterogeneous. Transcriptome analysis of Mycobacterium smegmatis in biofilm culture and its transition phase into planktonic growth was performed to identify the genetic basis of heterogeneity in the biofilm. While there was an increase in the expression of mycobacterial mutasome consisting of dnaE2, imuA, and imuB in the biofilm, the mutation burden was less compared to the planktonic culture. Deletion of dnaE2 causes lower mutation frequency and bacterial fitness in comparison to the parental strain in biofilm culture. The expression of dnaE2 contributes to a slower bacterial growth rate, potentially promoting persister formation. Our study uncovers the multiple benefits of dnaE2 expression in biofilm such as increasing genetic diversity and reducing growth rate; both of which are necessary for mycobacterial survival and adaptation.

microbiology↗

Prevalence and heterogeneity of antibiotic-resistant genes in Orientia tsutsugamushi and other rickettsial genomes

Despite a million infections every year and an estimated one billion people at risk, scrub typhus is regarded as a neglected tropical disease. The causative bacterium Orientia tsutsugamushi, a member of rickettsiae, seems to be intrinsically resistant to several classes of antibiotics. The emergence of antibiotic-resistant scrub typhus is likely to become a global public health concern. Yet, it is unknown as to how common antibiotic-resistant genes are in O. tsutsugamushi, and how variable these loci are among the genomes of rickettsiae. By using the comprehensive antibiotic resistance database, we explored 79 complete genomes from 24 species of rickettsiae for putative antibiotic-resistant loci. There were 244 unique antibiotic-resistant genes in rickettsiae. Both the total and unique antibiotic-resistant genes in O. tsutsugamushi were significantly less compared to other members of rickettsiae. However, antibiotic-resistant genes in O. tsutsugamushi genomes were more unique and highly variable. Many genes such as resistant versions of evgS, and vanS A/G were present in numerous copies. These results will have important implications in the context of antibiotic-resistant scrub typhus.

bioinformatics↗