15 research outputs found

    Relationship between nitrate and nitrite stress responses of Desulfovibrio vulgaris Hildenborough and Desulfovibrio alaskensis G20

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    Many heavy metal-contaminated sites where nuclear weapons have been produced contain high concentrations of nitrate. Nitrate inhibits dissimilatory sulfate-reducing bacteria (SRB), bacteria known to precipitate heavy metals. An understanding of nitrate stress responses in SRB is necessary to predict responses in environmental settings. Desulfovibrio vulgaris Hildenborough and Desulfovibrio alaskensis G20, model SRB, offer the opportunity to identify the physiological and genetic changes that confer nitrate resistance. It is currently thought that nitrite production mediates nitrate inhibition of SRB (He et al., 2010). However, microarray studies have revealed few gene expression changes in common between nitrate- and nitrite-inhibited D. vulgaris cells (He et al., 2010). Since it has been shown that nitrite interacts with the dissimilatory sulfite reductase (Wolfe et al., 1994), it has been assumed that sulfite reduction is the sole target of nitrite inhibition (Haveman et al., 2004). Our results point to inhibition and resistance mechanisms for both nitrate and nitrite that are independent of sulfite reduction

    Identification of regulatory variants associated with genetic susceptibility to meningococcal disease.

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    Non-coding genetic variants play an important role in driving susceptibility to complex diseases but their characterization remains challenging. Here, we employed a novel approach to interrogate the genetic risk of such polymorphisms in a more systematic way by targeting specific regulatory regions relevant for the phenotype studied. We applied this method to meningococcal disease susceptibility, using the DNA binding pattern of RELA - a NF-kB subunit, master regulator of the response to infection - under bacterial stimuli in nasopharyngeal epithelial cells. We designed a custom panel to cover these RELA binding sites and used it for targeted sequencing in cases and controls. Variant calling and association analysis were performed followed by validation of candidate polymorphisms by genotyping in three independent cohorts. We identified two new polymorphisms, rs4823231 and rs11913168, showing signs of association with meningococcal disease susceptibility. In addition, using our genomic data as well as publicly available resources, we found evidences for these SNPs to have potential regulatory effects on ATXN10 and LIF genes respectively. The variants and related candidate genes are relevant for infectious diseases and may have important contribution for meningococcal disease pathology. Finally, we described a novel genetic association approach that could be applied to other phenotypes

    Plasma lipid profiles discriminate bacterial from viral infection in febrile children

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    Fever is the most common reason that children present to Emergency Departments. Clinical signs and symptoms suggestive of bacterial infection ar

    Genetic basis for nitrate resistance in Desulfovibrio strains.

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    Independence of Nitrate and Nitrite Inhibition of <i>Desulfovibrio vulgaris</i> Hildenborough and Use of Nitrite as a Substrate for Growth

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    Sulfate-reducing microbes, such as Desulfovibrio vulgaris Hildenborough, cause “souring” of petroleum reservoirs through produced sulfide and precipitate heavy metals, either as sulfides or by alteration of the metal reduction state. Thus, inhibitors of these microbes, including nitrate and nitrite ions, are studied in order to limit their impact. Nitrite is a potent inhibitor of sulfate reducers, and it has been suggested that nitrate does not inhibit these microbes directly but by reduction to nitrite, which serves as the ultimate inhibitor. Here we provide evidence that nitrate inhibition of D. vulgaris can be independent of nitrite production. We also show that D. vulgaris can use nitrite as a nitrogen source or terminal electron acceptor for growth. Moreover, we report that use of nitrite as a terminal electron acceptor requires nitrite reductase (<i>nrfA</i>) as a D. vulgaris <i>nrfA</i> mutant cannot respire nitrite but remains capable of utilizing nitrite as a nitrogen source. These results illuminate previously uncharacterized metabolic abilities of D. vulgaris that may allow niche expansion in low-sulfate environments. Understanding these abilities may lead to better control of sulfate-reducing bacteria in industrial settings and more accurate prediction of their interactions in the environment
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