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Biology subjects

Chen, J.-W.

Publications and source records attributed to Chen, J.-W..

3 recordsLinked to original sources

Phage transcriptional regulator X (PtrX)-mediated augmentation of toxin production and virulence in Clostridioides difficile strain R20291

Clostridioides difficile is a Gram-positive, anaerobic, and spore-forming bacterial member of the human gut microbiome. The primary virulence factors of C. difficile are toxin A and toxin B. These toxins damage the cell cytoskeleton and cause various diseases, from diarrhea to severe pseudomembranous colitis. Evidence suggests that bacteriophages can regulate the expression of the pathogenic locus (PaLoc) genes of C. difficile. We previously demonstrated that the genome of the C. difficile strain RT027 (NCKUH-21) contains a prophage-like DNA sequence, which was found to be markedly similar to that of the {varphi}CD38-2 phage. In the present study, we investigated the mechanisms underlying the {varphi}NCKUH-21-mediated regulation of the pathogenicity and the PaLoc genes expression in the lysogenized C. difficile strain R20291. The carriage of {varphi}NCKUH-21 in R20291 cells substantially enhanced toxin production, bacterial motility, biofilm formation, and spore germination in vitro. Subsequent mouse studies revealed that the lysogenized R20291 strain caused a more severe infection than the wild-type strain. We screened three {varphi}NCKUH-21 genes encoding DNA-binding proteins to check their effects on PaLoc genes expression. The overexpression of NCKUH-21_03890, annotated as a transcriptional regulator (phage transcriptional regulator X, PtrX), considerably enhanced toxin production, biofilm formation, and bacterial motility of R20291. Transcriptome analysis further confirmed that the overexpression of ptrX led to the upregulation of the expression of toxin genes, flagellar genes, and csrA. In the ptrX-overexpressing R20291 strain, PtrX influenced the expression of flagellar genes and the sigma factor gene sigD, possibly through an increased flagellar phase ON configuration ratio. Author SummaryClostridioides difficile is a Gram-positive, spore-forming anaerobic bacterium that can lead to antibiotic-associated diarrhea and pseudomembranous colitis. During the C. difficile infection (CDI), the major virulence factor is the secretion of two exotoxins, toxin A and B, to destroy host intestinal epithelium cells. The investigation of bacteriophages affecting the toxicity of C. difficile has increasingly been research. We previously isolated a C. difficile clinical strain NCKUH-21, which carried a phage-like DNA sequence, and named it {varphi}NCKUH-21. However, whether this prophage could enhance the virulence of C. difficile and the mechanism for regulating the pathogenicity are still unclear. We successfully created a {varphi}NCKUH-21-lysogenized R20291 strain and showed that lysogenized R20291 performed stronger pathogenicity than the wild-type R20291. We found that a {varphi}NCKUH-21-specific protein (encoded by NCKUH-21_03890 gene) might influence C. difficile flagellar phase variation to promote toxin production further. These findings are expected to clarify the mechanism for controlling the pathogenicity of {varphi}NCKUH-21-infected C. difficile. Moreover, we also believe that the existence of hypervirulent C. difficile strains carrying a prophage should be monitored proactively in hospitals to prevent severe CDI.

microbiology↗

Mechanism of glucocorticoid receptor activation regulated expression of thrombospondin-1

Objective: Thrombospondin-1 (TSP-1) plays an important role in platelet activation and aggregation and aggravates thrombosis. Chronic stress can cause a variety of diseases, including coagulation disorders, increased thrombosis, atherosclerosis, and a series of cardiovascular and cerebrovascular diseases. However, it is still unknown how chronic stress regulates the expression of TSP-1 after glucocorticoid receptor activation. Approach and Results: rats chronic unpredictable mild stress model was applied and the changes of TSP-1 and microRNAs in plasma were examined. Effects of glucocorticoid receptor activation on human umbilical vein endothelial cells and platelets were observed. Glucocorticoid receptor (GR) activation upregulated the expression of TSP-1 and downregulated the expression of microRNA-1-3p accompanied with increase of phosphorylation of p38 mitogen-activated protein kinase (MAPK) and argonaute-2 (AGO-2). Blockade of p38 MAPK phosphorylation resulted in decrease of phosphorylation level of AGO-2, increase of microRNA-1-3p expression, and decrease of TSP-1 expression. Transfection of AGO-2 Y393F point mutant plasmid, increased microRNA-1-3p expression and decreased TSP-1 expression, transfection of microRNA-1-3p mimic also decreased TSP-1 expression, while transfection of microRNA-1-3p inhibitor increased TSP-1 expression. Finally, GR activation led to an increase in the phosphorylation level of p38 MAPK in platelets and an increase in the level of TSP-1 in the supernatant. Conclusions: our study demonstrates that GR activation in HUVEC stimulates the phosphorylation of p38 MAPK, which in turn promotes the phosphorylation of AGO-2 and inhibits the maturation of microRNA-1-3p, leading to elevated expression of TSP-1, GR activation in platelets leads to the release of TSP-1. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=147 SRC="FIGDIR/small/536820v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@86e8ecorg.highwire.dtl.DTLVardef@126094eorg.highwire.dtl.DTLVardef@2d13c3org.highwire.dtl.DTLVardef@16c79c3_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical AbstractC_FLOATNO HSS: Hydrocortisone sodium succinate C_FIG

pathology↗

Natural selection and neutral mutations through the lens of viruses

The Neutral Theory and the Modern Synthesis, a modified version of Darwins theory, have been arguing for decades about the influence of natural selection on molecular evolution1-10. Here we elucidate through the lens of viruses that a frequently used method11-17 employing the ratio of nonsynonymous versus synonymous substitution rates has dramatically underestimated the influence of natural selection on molecular evolution. We also find novel evidence from viral sequences to support the co-existence of the crucial role of natural selection in molecular evolution and the ubiquity of neutral mutations. The co-existence has perplexed biologists for decades2,5,7. We then elucidate for the first time the causality between natural selection and the ubiquity of neutral mutations with a novel interpretation of natural selection. This novel interpretation incorporates biochemistry, genetics, epigenetics, physiology, and dynamics. It holds that natural selection acts directly on the overall phenotypic performance of organisms and indirectly on each genomic site or phenotypic trait. It highlights not only restrictions and competitions but also freedom and diversity, besides the overall harmonious development of organisms and human societies. Therefore, this novel interpretation could have far-reaching implications in the natural and social sciences.

evolutionary biology↗