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The Pxp Complex Detoxifies 5-Oxoproline and Promotes the Growth of Clostridioides difficile.

Clostridioides difficile is an anaerobic enteric pathogen that disseminates in the environment as a dormant spore. For C. difficile and other sporulating bacteria, the initiation of sporulation is a regulated process that prevents spore formation under favorable growth conditions. In Bacillus subtilis, one such mechanism for preventing sporulation is the prokaryotic 5-oxoprolinase, PxpB (KipI), which impedes the activation of the main sporulation kinase. In addition, PxpB functions as part of a complex that detoxifies the intermediate metabolite, 5-oxoproline (OP), a harmful by-product of glutamic acid and its derivatives. In this study, we investigate the orthologous Pxp proteins in C. difficile to determine their roles in the regulation of sporulation and metabolism. Through deletion of the pxpAGBC operon, we show that, unlike in B. subtilis, the Pxp (Kip) proteins have no significant impact on sporulation. However, we found that the pxp operon encodes a functional oxoprolinase that facilitates detoxification of OP. Furthermore, our data demonstrate that PxpAGBC not only detoxifies OP but also allows OP to be used as a nutrient source that supports the growth of C. difficile, thereby facilitating the conversion of a toxic by-product of metabolism into an energy source.

Clostridioides difficile↗

The glycosylated cell surface protein Rpf2, containing a resuscitation-promoting factor motif, is involved in intercellular communication of Corynebacterium glutamicum.

The genome of Corynebacterium glutamicum ATCC 13032 contains two genes, rpf1 and rpf2, encoding proteins with similarities to the essential resuscitation-promoting factor (Rpf) of Micrococcus luteus. Both the Rpf1 (20.4 kDa) and Rpf2 (40.3 kDa) proteins share the so-called Rpf motif, a highly conserved protein domain of approximately 70 amino acids, which is also present in Rpf-like proteins of other gram-positive bacteria with a high G+C content of the chromosomal DNA. Purification of the C. glutamicum Rpf2 protein from concentrated supernatants, SDS-PAGE and matrix-assisted laser desorption/ionization time-of-flight mass spectrometry identified modified Rpf2 variants with increased or reduced mobility when compared with the calculated size of Rpf2. A Western blot-based enzyme immunoassay demonstrated glycosylation of the Rpf2 variants with higher molecular masses. Galactose and mannose were identified as two components of the oligosaccharide portion of the Rpf2 glycoprotein by capillary gas chromatography coupled to mass spectrometry. The Rpf2 protein was localized on the surface of C. glutamicum with the use of immuno-fluorescence microscopy. C. glutamicum strains with defined deletions in the rpf1 or rpf2 gene or simultaneous deletions in both rpf genes were constructed, indicating that the rpf genes are neither individually nor collectively essential for C. glutamicum. The C. glutamicum rpf double mutant displayed slower growth and a prolonged lag phase after transfer of long-stored cells into fresh medium. The addition of supernatant from exponentially growing cultures of the rpf double mutant, the wild type or C. glutamicum strains with increased expression of the rpf1 or rpf2 gene significantly reduced the lag phase of long-stored wild-type and rpf single mutant strains, but addition of purified His-tagged Rpf1 or Rpf2 did not. In contrast, the lag phase of the C. glutamicum rpf double mutant was not affected upon addition of these culture supernatants.

Amino Acid Motifs↗

Lung fluid and protein flux during postoperative sepsis.

Pulmonary microvascular injury during sepsis after injury appears to be amplified with plasma fibronectin deficiency, but the degree of injury relative to the extent of sepsis has not been defined. We evaluated pulmonary vascular permeability in sheep as influenced by various levels of postoperative Pseudomonas sepsis during a period of plasma fibronectin deficiency. The hemodynamic response to Pseudomonas was very similar regardless of the intensity of septic challenge and characterized by systemic arterial hypotension, decreased cardiac output, and pulmonary arterial hypertension. In contrast, increased pulmonary microvascular permeability was observed with increments in the bacterial challenge. Thus, lung protein clearance (LPC) or so called pulmonary transvascular protein clearance (TPC) used as an index of lung vascular permeability was 9.1 +/- 1.9 ml/hr, 15.1 +/- 1.7 ml/hr, and 19.3 +/- 3.0 ml/hr 2 hr after low (3 X 10(9) i.v.; 1 X 10(10) i.p.), medium (3 X 10(9) i.v.; 3 X 10(10) i.p.), and high (5 X 10(9) i.v.; 5 X 10(10) i.p.) dose Pseudomonas challenges, respectively. Thus, the extent of the altered pulmonary microvascular integrity in sheep during sepsis after surgery in the presence of fibronectin deficiency is dependent on the degree of bacterial sepsis. In addition, infusion of cryoprecipitate was an effective means of reversing the plasma fibronectin deficiency. Accordingly, this may be used as a model to investigate the mechanism of altered lung fluid balance during postoperative septic shock and the effect of fibronectin on this response.

Animals↗