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Biology subjects

Shen, Y.-L.

Publications and source records attributed to Shen, Y.-L..

2 recordsLinked to original sources

Two pore domain THIK2 channel is involved in acute and chronic pain signal regulation

Two-pore domain potassium channels (K2P) regulate neuronal excitability by acting as hyperpolarizing leak channels. Among them, THIK2 remain poorly characterized. Although no study has yet clearly linked them to excitability or pain, their selective expression in nociceptive neurons of the Dorsal Root Ganglia (DRG) suggests a role in nociception and pain regulation. This project investigates THIK2 channels in pain pathophysiology through molecular, electrophysiological, and behavioral approaches. We mapped THIK expression patterns and in THIK2 knock-out mice, we examined DRG neuron excitability and pain sensitivity. Results reveal thermal hypersensitivity under both naive and inflammatory conditions, indicating that THIK2 normally limits neuronal hyperexcitability. These findings position THIK2 as a potential therapeutic target in chronic inflammatory pain, with peripheral inhibition potentially offering analgesia without central opioid side effects.

neuroscience↗

Roles of Lipopolysaccharide Glycosyltransferases in Maintenance of Helicobacter pylori Morphology, Cell Wall Permeability, and Antimicobial Susceptibilities

Helicobacter pylori unique lipopolysaccharide structure is essential in maintaining the cell envelop integrity and renders the bacterium natural resistance to cationic antimicrobial peptides (CAMPs). Our group has recently elucidated the complete set of LPS glycosyltransferase genes in H. pylori reference strain G27. Here, with a series of 8 systematically constructed LPS glycosyltransferase gene mutants (G27{Delta}HP1578, G27{Delta}HP1283, G27{Delta}HP0159, G27{Delta}HP0479, G27{Delta}HP0102, G27{Delta}wecA, G27{Delta}HP1284 and G27{Delta}HP1191), we investigated the roles of H. pylori LPS glycosyltransferases in maintenance of cell morphology, cell wall permeability, and antimicrobial susceptibilities. We demonstrated that deletion of these LPS glycosyltransferase genes did not interfere with bacterial cell wall permeability, but resulted in significant morphological changes (coccoid, coiled "c"-shape, and irregular shapes) after 48 h growth as compared to the rod-like cell shape of the wild-type strain. Moreover, as compared with the wild-type, none of the LPS mutants had altered susceptibility against clarithromycin, levofloxacin, amoxicillin, tetracycline, and metronidazole. However, the deletion of the conserved LPS glycosyltransferases, especially the O-antigen initiating enzyme WecA displayed a dramatic increase in susceptibility to the CAMP polymyxin B and rifampicin. Taken together, our findings suggest that the LPS glycosyltransferases play critical roles in the maintenance of the typical spiral morphology of H. pylori, as well as resistance to CAMPs and rifampicin. The LPS glycosyltransferases could be promising targets for developing novel anti-H. pylori drugs. ImportanceH. pylori typical helical morphology, cell wall integrity, as well as resistance to cationic CAMPs and antimicrobials are significant factors for its long-term colonization and persistent infection in human gastric mucosa. Our results show that each of the 8 LPS glycosyltransferase genes (HP1578, HP1283, HP0159, HP0479, HP0102, wecA, HP1284 and HP1191) deletion did not interfere with bacterial cell wall permeability, but resulted in significant loss of H. pylori typical helical shape. Furthermore, deletion of the conserved LPS glycosyltransferases, especially the O-antigen initiating enzyme WecA displayed a dramatic increase in susceptibility to the CAMP polymyxin B and rifampicin. Taken together, we believe that the LPS glycosyltransferases are good targets for developing novel anti-H. pylori drugs.

microbiology↗