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Bagale, K.

Publications and source records attributed to Bagale, K..

3 recordsLinked to original sources

Glycosuria alters uropathogenic Escherichia coli global gene expression and virulence

Uropathogenic Escherichia coli (UPEC) is the principal etiology of more than half of urinary tract infections (UTI) in humans with diabetes mellitus. Epidemiological data and studies in mouse model of ascending UTI have elucidated various host factors responsible for increasing the susceptibility of diabetic hosts to UPEC-UTI. In contrast, the nature of alterations in UPEC physiology mediated by diabetic urinary microenvironment and the contributions of altered UPEC physiology in shaping UPEC-UTI pathogenesis in diabetes have not been examined. Our central hypothesis is that glycosuria directly induces urinary virulence of UPEC. We compared virulence characteristics and gene expression in human UPEC strains UTI89 (cystitis) and CFT073 (pyelonephritis) exposed for 2h, in vitro to human urine either in the presence or absence of glycosuria (600mg/dl glucose). Compared to control UPEC exposed to nutrient-rich culture medium LB, glycosuria-exposed UPEC exhibited significant increase in biofilm formation and reduction in the hemagglutination of Guinea pig erythrocytes (a surrogate measure of type 1 piliation). In addition, analysis of UTI89 transcriptome by RNA sequencing revealed that 2h-long, in vitro exposure to glycosuria also significantly alters expression of virulence and metabolic genes central to urinary virulence of UPEC. In summary, our results provide novel insights into how glycosuria-mediated early changes in UPEC fitness may facilitate UTI pathogenesis in the diabetic urinary microenvironment. IMPORTANCEUropathogenic Escherichia coli (UPEC) is an important causative agent of urinary tract infections in diabetic humans. We examined the effects of in vitro exposure to glycosuria (presence of glucose in urine) on the virulence and gene expression by UPEC. Our results show that glycosuria rapidly (in 2h) alters UPEC gene expression, induces biofilm formation, and suppresses hemagglutination. These results offer a novel insight into the pathogenesis of UPEC in the urinary tract.

microbiology

Human urine alters methicillin-resistant Staphylococcus aureus virulence and transcriptome

Gram-positive methicillin-resistant Staphylococcus aureus (MRSA) is an emerging cause of hospital-associated urinary tract infections, especially in catheterized individuals. Despite being rare, MRSA-UTI are prone to potentially life-threatening exacerbations such as bacteremia that can be refractory to routine antibiotic therapy. Hence, MRSA-UTI is an important of research topic. To delineate molecular mechanisms governing MRSA urinary pathogenesis, we exposed three S. aureus strains, of which two were MRSA, to human urine and analyzed virulence characteristics and gene expression. We also analyzed MRSA-1369 transcriptome following cultivation in human urine for 2h. Our results reveal that human urine induces global changes in MRSA transcriptome, marked by changes in genes encoding proteins involved in metabolic pathways, virulence, and transcriptional regulators. In addition, in vitro assays also showed that human urine alters, in a strain-specific manner, adherence to human bladder epithelial cells and fibronectin, hemolysis of sheep RBCs, and surface hydrophobicity. In summary, our results provide first important insights into how the urine may specifically alter MRSA physiology in turn facilitating MRSA survival in the nutrient-limiting and hostile urinary microenvironment. ImportanceMethicillin-resistant Staphylococcus aureus (MRSA) is an uncommon cause of urinary tract infections (UTI) in the general population. However, it is important to understand MRSA pathophysiology in the urinary tract because isolation of MRSA in urine samples is often secondary to potentially life-threatening MRSA bacteremia. In this report, we describe that cultivation in human urine alters MRSA global gene expression and virulence. We hypothesize that these alterations may aid MRSA adapt to the nutrient-limiting, immunologically hostile conditions within the urinary tract.

microbiology

The effects of e-cigarette vapor exposure on the transcriptome and virulence of Streptococcus pneumoniae

The effects of e-cigarette vapor (EV) exposure on the physiology of respiratory microflora are not fully defined. We analyzed the effects of exposure to vapor from nicotine-containing and nicotine-free e-liquid formulations on virulence and transcriptome of Streptococcus pneumoniae strain TIGR4, a pathogen that asymptomatically colonizes human nasopharyngeal mucosa. TIGR4 was pre-exposed for 2h to nicotine-containing EV extract (EVE+NIC), nicotine-free EV extract (EVE-NIC), cigarette smoke extract (CSE), or nutrient-rich TS broth (control). The differences in the treatment and control TIGR4 were explored using transcriptome sequencing, in vitro virulence assays, and in vivo mouse model of acute pneumonia. The analysis of RNASeq profiles revealed modest changes in the expression of 14 genes involved in sugar transport and metabolism in EVE-NIC pre-exposed TIGR4 compared to the control. While, EVE+NIC or CSE exposure altered expression of 264 and 982 genes, respectively, most of which were involved in metabolism and stress response. Infection in a mouse model of acute pneumonia with control TIGR4 or with TIGR4 pre-exposed to EVE+NIC, EVE-NIC, or CSE did not show significant differences in disease parameters, such as bacterial organ burden and respiratory cytokine response. Interestingly, TIGR4 exposed to CSE or EVE+NIC (but not EVE-NIC) exhibited moderate induction of biofilm formation. However, none of the treatment groups showed significant alterations in pneumococcal hydrophobicity or epithelial cell adherence. In summary, our study reports that exposure to EV significantly alters the S. pneumoniae transcriptome in a nicotine-dependent manner without affecting pneumococcal virulence.\n\nImportanceWith the increasing popularity of e-cigarettes amongst cigarette smoking and non-smoking adults and children, and the recent reports of vaping related lung illnesses and deaths, further analysis of the adverse health effects of e-cigarette vapor (EV) exposure is warranted. Since pathogenic bacteria such as Streptococcus pneumoniae can colonize the human nasopharynx as commensals, they may be affected by the exposure to bioactive chemicals in EV. Hence in this study we examined the effects of EV exposure on the physiology of S. pneumoniae strain TIGR4. In order to differentiate between the effects of nicotine and non-nicotine components, we specifically compared RNASeq profiles and virulence of TIGR4 exposed to vapor from nicotine-containing and nicotine-free e-liquid formulations. We observed that nicotine-containing EV augmented TIGR4 biofilms and altered expression of TIGR4 genes predominantly involved in metabolism and stress response. However, neither nicotine-containing nor nicotine-free EV affected TIGR4 virulence in a mouse model.

microbiology