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Periplasm, periplasmic spaces, and their relation to bacterial wall structure: novel secretion of selected periplasmic proteins from Pseudomonas aeruginosa.

A brief overview of thin sections of cryopreserved walls from select eubacteria will be presented to suggest that all bacteria have functional periplasms, but that these are not necessarily confined to a periplasmic space such as found in typical gram-negative bacteria. Pseudomonas aeruginosa contains many components in its periplasmic space, some of which are required for infection. Throughout its growth cycle, P. aeruginosa blebs-off membrane vesicles that can possess DNA, endotoxin, phospholipase, protease, hemolysin, alkaline phosphatase, and autolysin, each of which must have a molecular phase that resides in the periplasm. These membrane packets make good delivery systems to convey these components to other bacteria and, possibly, tissue. Aminoglycoside antibiotics, such as gentamicin, produce a serious perturbation on the bacterium's surface (separate from the ribosomal effect), which contributes to the killing of the microorganism. Antibiotics such as this increase the size and number of the membrane blebs, which could contribute to septic shock of patients under drug therapy.

Aminoglycosides↗

The effect of bacterial surface structures on the pathogenesis of Salmonella typhimurium infection in chickens.

Mutants of Salmonella typhimurium strain SR11 containing Tn10 insertions in genes encoding for the motility and fimbriation phenotypes were evaluated for adhesion, invasion, and virulence in avian models. Mutations abolishing mannose-sensitive or mannose-resistant hemagglutination did not influence adherence or invasion in epithelial cells in vitro. A double hemagglutinin-deficient mutant, lacking both mannose-sensitive and mannose-resistant hemagglutinins, was diminished in ability to adhere to chick kidney epithelial cells in vitro, but invasion in vitro was not significantly affected. Compared with the wild-type parent, mutations that decreased motility reduced invasion levels in vitro and increased the peroral LD50 in one-day-old chicks. A mutant deficient in both motility and mannose-sensitive hemagglutination was greatly reduced in its ability to invade epithelial cells in vitro and persist in the liver and spleen of orally challenged chicks. Results of this study indicate that loss of motility in S. typhimurium attenuates peroral virulence in chicks.

Animals↗

Oral mucosal endotoxin tolerance induction in chronic periodontitis.

The oral mucosa is exposed to a high density and diversity of gram-positive and gram-negative bacteria, but very little is known about how immune homeostasis is maintained in this environment, particularly in the inflammatory disease chronic periodontitis (CP). The cells of the innate immune response recognize bacterial structures via the Toll-like receptors (TLR). This activates intracellular signaling and transcription of proteins essential for the induction of an adaptive immune response; however, if unregulated, it can lead to destructive inflammatory responses. Using single-immunoenzyme labeling, we show that the human oral mucosa (gingiva) is infiltrated by large numbers of TLR2(+) and TLR4(+) cells and that their numbers increase significantly in CP, relative to health (P < 0.05, Student's t test). We also show that the numbers of TLR2(+) but not TLR4(+) cells increase linearly with inflammation (r(2) = 0.33, P < 0.05). Double-immunofluorescence analysis confirms that TLR2 is coexpressed by monocytes (MC)/macrophages (mphi) in situ. Further analysis of gingival tissues by quantitative real-time PCR, however, indicates that despite a threefold increase in the expression of interleukin-1beta (IL-1beta) mRNA during CP, there is significant (30-fold) downregulation of TLR2 mRNA (P < 0.05, Student's t test). Also showing similar trends are the levels of TLR4 (ninefold reduction), TLR5 (twofold reduction), and MD-2 (sevenfold reduction) mRNA in CP patients compared to healthy persons, while the level of CD14 was unchanged. In vitro studies with human MC indicate that MC respond to an initial stimulus of lipopolysaccharide (LPS) from Porphyromonas gingivalis (PgLPS) or Escherichia coli (EcLPS) by upregulation of TLR2 and TLR4 mRNA and protein; moreover, IL-1beta mRNA is induced and tumor necrosis factor alpha (TNF-alpha), IL-10, IL-6, and IL-8 proteins are secreted. However, restimulation of MC with either PgLPS or EcLPS downregulates TLR2 and TLR4 mRNA and protein and IL-1beta mRNA and induces a ca. 10-fold reduction in TNF-alpha secretion, suggesting the induction of endotoxin tolerance by either LPS. Less susceptible to tolerance than TNF-alpha were IL-6, IL-10, and IL-8. These studies suggest that certain components of the innate oral mucosal immune response, most notably TLRs and inflammatory cytokines, may become tolerized during sustained exposure to bacterial structures such as LPS and that this may be one mechanism used in the oral mucosa to attempt to regulate local immune responses.

Chronic Disease↗

Dynamic structure of bacterial ribosomal 5S RNA helices II and III of B. megaterium 5S RNA.

A possible switch between two conformations, previously observed in an enzymatically cleaved fragment of E. coli 5S ribosomal RNA (a Gram-negative bacterium) containing helices II and III, has been examined by means of proton nuclear magnetic resonance spectroscopy (10-15 ppm) as a function of [Mg2+] and temperature for an RNase-T1 digested fragment of Bacillus megaterium 5S rRNA (a Gram-positive bacterium) containing the same helices II and III. The conformational changes induced in the fragment are not accompanied by breakage of some base-pairs and formation of others, but rather consist simply of tightening or loosening of helices with retention of existing base-pairs. Helix III is found to be more flexible than helix II. Finally, the loop conformation is conserved over a wide range of Mg2+ concentration, suggesting that the loop may serve an important role in the biological function of 5S rRNA in ribosomes.

Bacillus megaterium↗

Characterisation of bacterially expressed structural protein E2 of hepatitis C virus.

The E2 glycoprotein is a structural component of the hepatitis C virus (HCV) virion. It interacts with putative cellular receptors, elicits production of neutralising antibodies against the virus, and is involved in viral morphogenesis. The protein is considered as a major candidate for anti-HCV vaccine. Despite this, relatively little is known about this protein. Previous studies have focused on the antigenic and functional analysis of the glycosylated forms. This report describes expression of the ectodomain of E2 (recE2) in Escherichia coli cells, its purification, and initial characterisation of its structural and functional properties. It is demonstrated that the purified protein forms small soluble aggregates, which retain functional characteristics of its native counterpart, i.e., it interacts with a putative cellular receptor, CD81, and is recognised by both conformation-dependent and -independent anti-E2 monoclonal antibodies.

Animals↗

ORF2 gene involves in the construction of high-order structure of bacterial cellulose.

An ORF2 gene located upstream of the cellulose synthase (bcs) operon of Acetobacter xylinum BPR2001 was disrupted and a mutant (M2-2) was constructed. In static cultivation, the parent strain produced a tough, colorless, and insoluble cellulose pellicle, whereas M2-2 culture produced a thin, yellow, and fragile pellicle. The results of X-ray diffraction and 13C solid-state NMR indicated that the product of M2-2 is a mixture of cellulose I, cellulose II, and amorphous cellulose. The cellulose I to cellulose II ratio of the mixture was evaluated from the signal areas of C6 to be about 1:2. Electron microscopy revealed that the product of M2-2 included ribbon-like cellulose and irregularly shaped particles attached to the ribbons. On the other hand, the mutant complemented with plasmid pSA-ORF2/k containing the ORF2 gene and BPR2001 produced only cellulose I. These results indicate that the ORF2 gene is involved in the production and crystallization of cellulose I microfibrils by this microorganism.

Acetobacter↗