Search bioRxiv⌕ Search

Biology subjects

Mandal, S. K.

Publications and source records attributed to Mandal, S. K..

3 recordsLinked to original sources

Commensal to pathogen switch in Streptococcus pneumoniae is governed by a thermosensing master regulator

Opportunistic pathogens switch from a commensal to pathogenic state by sensing and responding to a variety of environmental cues, including temperature fluctuations. Minor temperature oscillations can alert the pathogen to a changing niche ecosystem, necessitating efficient sensing and rapid integration to trigger behavioral change. This is typically achieved through master regulators, which act as umbrella systems dictating pleiotropic phenotypes. Here, we uncover a pivotal role of minor temperature shifts in transition of Streptococcus pneumoniae (SPN) from commensal to virulent lifestyles, mediated via an RNA thermosensing (RNAT) element within the untranslated region of the global regulator CiaR. By positively regulating the expression of the surface adhesin, Phosphorylcholine (PCho), in response to elevated temperature, CiaR potentiates pneumococcal infection. Engineering the RNAT structure to create translation restrictive or permissive versions allowed us to demonstrate how modulation in expression of CiaR could alter pneumococcal invasion capability, influencing infection outcomes. Moreover, intranasal administration of PCho mitigated SPN-induced bacteraemic pneumonia. Since a majority of opportunistic respiratory bacterial pathogens decorate their surface with PCho, this signaling arm could be exploited for anti-infective interventions. Significance statementOur nasopharyngeal area is dominated by opportunistic pathogens, such as Streptococcus pneumoniae (SPN), which typically reside as harmless bystanders. However, in individuals with heightened nasopharyngeal inflammation, resulting from allergy, viral infection or an immature or senescent immune system, these seemingly innocuous microbes, including SPN, switch to virulent lifestyles. We reveal an elegant mechanism for rewiring of SPN virulence genes upon sensing temperature oscillations in the nasopharynx by the master regulator CiaR. Elevated nasopharyngeal temperatures due to pathologic conditions is sensed by thermosensing ciaR mRNA. This primarily promotes SPN surface decoration by PCho which facilitates improved invasion, triggering virulence phenotypes. Our findings point towards adoption of a common mechanism for switch to virulent lifestyles by variety of microbes sharing the specific respiratory niche.

microbiology↗

Differentiating the mechanism of antibacterial activities of nano and ionic copper by using Escherichia coli as a model microorganism

In this study, the effect of polymer stabilized copper nanoparticles and ionic copper on the growth, nucleic acid pool, reactive oxygen species generation, cell surface lipopolysaccharide, outer membrane protein profile and cell surface morphology of Escherichia coli were investigated. Copper nanoparticles exhibited a superior bactericidal activity associated with increased nucleic acid degradation, reactive oxygen species generation and change in the outer membrane protein profile compared to ionic copper in a concentration dependent manner. Although, there was no change in the outer membrane lipopolysaccharide profile, inductively coupled plasma mass spectrometry analysis of nano- and ionic copper treated Escherichia coli cells revealed that more amounts of copper nanoparticles were transported inside the cells compared to the ionic counterpart up to 500 M concentrations. Interestingly, copper nanoparticles at 1000 M concentration could induce membrane pit formation whereas ionic copper failed to exhibit such property under the same experimental conditions. Based on these observations it can be concluded that both nano- and ionic copper exert their antibacterial action through the generation of reactive oxygen species, degradation of cellular nucleic acids and alteration of membrane protein profile, but with a significant difference in the effective concentration range due to the differential cellular transport.

microbiology↗

Genomic sequencing and neutralizing serological profiles during acute dengue infection: A 2017 cohort study in Nepal

Dengue virus (DENV) is a mosquito-borne flavivirus that poses a threat to nearly 50% of the global population. DENV has been endemic in Nepal since 2006; however, little is known about how DENV is evolving or the prevalence of anti-DENV immunity within the Nepalese population. To begin to address these gaps, we performed a serologic and genetic study of 49 patients from across Nepal who presented at central hospitals during the 2017 dengue season with suspected DENV infection. Of the 49 subjects assessed, 21 (43%) were positive for DENV NS1 antigen; of these; 5 were also anti-DENV IgM+ IgG+; 7 were DENV IgM+ IgG-, 2 were IgM- IgG+, and 7 were IgM- IgG- by specific ELISAs. Seven of the 21 NS1+ sera were RNA+ by RT-PCR (six DENV2, one DENV3), suggesting that DENV2 was the dominant serotype in our cohort. Whole-genome sequencing of two DENV2 isolates showed similarity with strains circulating in Singapore in 2016, and the envelope genes were also similar to strains circulating in India in 2017. DENV-neutralizing antibodies (nAbs) were present in 31 of 47 sera tested (66%); among these, 20, 24, 26, and 12 sera contained nAbs against DENV1, 2, 3, and 4 serotypes, respectively. Serology analysis suggested that 12 (26%) and 19 (40%) of the 49 subjects were experiencing primary and secondary DENV infections, respectively. Collectively, our results provide evidence for current and/or past exposure to multiple DENV serotypes in our cohort, and the RNA analyses further indicate that DENV2 was the likely dominant serotype circulating in Nepal in 2017. These data suggest that expanded local surveillance of circulating DENV genotypes and population immunity will be important to effectively manage and mitigate future dengue outbreaks in Nepal.

genomics↗