Search bioRxiv⌕ Search

Biology subjects

Noeparvar, P.

Publications and source records attributed to Noeparvar, P..

3 recordsLinked to original sources

FRUCTOSE ACTIVATES A STRESS RESPONSE SHARED BY METHYLGLYOXAL AND HYDROGEN PEROXIDE IN STREPTOCOCCUS MUTANS

Fructose catabolism by Streptococcus mutans is initiated by three PTS transporters yielding fructose-1-phoshate (F-1-P) or fructose-6-phosphate. Deletion of one such F-1-P-generating PTS, fruI, was shown to reduce the cariogenicity of S. mutans in rats fed a high-sucrose diet. Moreover, a recent study linked fructose metabolism in S. mutans to a reactive electrophile species (RES) methylglyoxal. Here, we conducted a comparative transcriptomic analysis of S. mutans treated briefly with 50 mM fructose, 50 mM glucose, 5 mM methylglyoxal, or 0.5 mM hydrogen peroxide (H2O2). The results revealed a striking overlap between the fructose and methylglyoxal transcriptomes, totaling 176 genes, 61 of which were also shared with the H2O2 transcriptome. This core of 61 genes encompassed many of the same pathways affected by exposure to low pH or zinc intoxication. Consistent with these findings, fructose negatively impacted metal homeostasis of a mutant deficient in zinc expulsion and the growth of a mutant of the major oxidative stress regulator SpxA1. Importantly, fructose metabolism lowered culture pH at a faster pace, allowed better survival under acidic and nutrient-depleted conditions, and enhanced the competitiveness of S. mutans against Streptococcus sanguinis, although a moderated level of F-1-P might further boost some of these benefits. Conversely, several commensal streptococcal species displayed a greater sensitivity to fructose that may negatively affect their persistence and competitiveness in dental biofilm. In conclusion, fructose metabolism is integrated into the stress core of S. mutans and regulates critical functions required for survival and its ability to induce dysbiosis in the oral cavity. Importance.Fructose is a common monosaccharide in the biosphere, yet its overconsumption has been linked to various health problems in humans including insulin resistance, obesity, diabetes, non-alcoholic liver diseases, and even cancer. These effects are in large part attributable to the unique biochemical characteristics and metabolic responses associated with the degradation of fructose. Yet, an understanding of the effects of fructose on the physiology of bacteria and its implications to the human microbiome is severely lacking. Here we performed a series of analyses on the gene regulation of a dental pathogen Streptococcus mutans by exposing it to fructose and other important stress agents. Further supported by growth, persistence, and competition assays, our findings revealed the ability of fructose to activate a set of stress-related functions that may prove critical to the ability of the bacterium to persist and cause diseases both within and without of the oral cavity.

microbiology↗

Glycerol Metabolism Contributes to Competition by Oral Streptococci through Production of Hydrogen Peroxide

As a biological byproduct from both humans and microbes, glycerols contribution to microbial homeostasis in the oral cavity remains understudied. Here we examined glycerol metabolism by Streptococcus sanguinis, a commensal associated with oral health. Genetic mutants of glucose-PTS enzyme II (manL), glycerol metabolism (glp and dha pathways), and transcriptional regulators were characterized with regard to glycerol catabolism, growth, production of hydrogen peroxide (H2O2), transcription, and competition with Streptococcus mutans. Biochemical assays identified the glp pathway as a novel source of H2O2 production by S. sanguinis that is independent of pyruvate oxidase (SpxB). Genetic analysis indicated that the glp pathway requires glycerol and a transcriptional regulator, GlpR, for expression and is negatively regulated by PTS, but not the catabolite control protein, CcpA. Conversely, deletion of either manL or ccpA increased expression of spxB and a second, H2O2-non-producing glycerol metabolic pathway (dha), indicative of a mode of regulation consistent with conventional carbon catabolite repression (CCR). In a plate-based antagonism assay and competition assays performed with planktonic and biofilm-grown cells, glycerol greatly benefited the competitive fitness of S. sanguinis against S. mutans. The glp pathway appears to be conserved in several commensal streptococci and actively expressed in caries-free plaque samples. Our study suggests that glycerol metabolism plays a more significant role in the ecology of the oral cavity than previously understood. Commensal streptococci, though not able to use glycerol as a sole carbohydrate for growth, benefit from catabolism of glycerol through production of both ATP and H2O2. ImportanceGlycerol is an abundant carbohydrate found in oral cavity, both due to biological activities of humans and microbes, and as a common ingredient of foods and health care products. However, very little is understood regarding the metabolism of glycerol by some of the most abundant oral bacteria, commensal streptococci. This was in part because most streptococci cannot grow on glycerol as the sole carbon source. Here we show that Streptococcus sanguinis, an oral commensal associated with dental health, can degrade glycerol for persistence and competition through two independent pathways, one of which generates hydrogen peroxide at levels capable of inhibiting a dental pathobiont, Streptococcus mutans. Preliminary studies suggest that several other commensal streptococci are also able to catabolize glycerol, and glycerol-related genes are being actively expressed in human dental plaque samples. Our findings reveal the potential of glycerol to significantly impact microbial homeostasis which warrants further exploration.

microbiology↗

Genetic Characterization of Glyoxalase Pathway in Oral Streptococci and its Contribution to Interbacterial Competition

Substantial quantities of Reactive Electrophile Species (RES), including methylglyoxal and glyoxal, are generated by microbes and humans. To understand the impact of RES on oral microbial homeostasis, genetic analyses were performed on the glyoxalase pathway in Streptococcus mutans (SMU) and Streptococcus sanguinis (SSA). Loss of glyoxalase I (LguL), which catalyzes the rate-limiting reaction in RES degradation, reduced methylglyoxal and glyoxal tolerance to a far greater extent in SMU than in SSA, decreasing the competitiveness of SMU over SSA in planktonic cultures. MICs showed an overall greater RES tolerance by SMU than SSA; a finding consistent with the ability of methylglyoxal to induce the expression of lguL in SMU, but not in SSA. Computational analysis identified a novel paralogue of LguL in most streptococci represented by SMU.1112c in SMU. {Delta}SMU.1112c showed a minor decrease in methylglyoxal tolerance under certain conditions, but a significant growth defect on fructose; a phenotype reversed by the deletion of a fructose-1-phosphate-generating sugar: phosphotransferase system or addition of glutathione (GSH) to the medium. Further, deletion of the glucose-PTS in SMU increased RES tolerance partly through enhanced expression of the pyruvate-dehydrogenase complex. Consistent with the requirement of GSH for methylglyoxal detoxification, deletion of glutathione synthetase (gshAB) in SMU significantly reduced RES resistance. This study reveals the critical roles of RES in fitness and interbacterial competition and the effects of PTS in modulating RES metabolism. The fact that RES may impact the pathogenic potential of the oral microbiome via differential effects on beneficial and pathogenic species warrants further investigation. ImportanceAs highly reactive byproducts of sugar metabolism, very little is known regarding the contribution of methylglyoxal or related aldehyde compounds to oral health. The need to better understand the influence of these reactive electrophile species (RES) to microbial physiology and ecology is made more urgent by the widespread condition of hyperglycemia in humans, which is associated with elevated RES levels. Our study showed a significantly greater ability of a major caries pathobiont, Streptococcus mutans, to tolerate methylglyoxal and glyoxal than many commensal oral streptococci. Genetic analysis of methylglyoxal degradation in the pathobiont and commensals identified significant differences in genetic structure and gene regulation patterns that could contribute to differential fitness by constituents of the dental microbiota and ecologic shift in the presence of RES.

microbiology↗