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Chi, G.

Publications and source records attributed to Chi, G..

2 recordsLinked to original sources

Alnustone inhibits Streptococcus pneumoniae virulence by targeting pneumolysin and sortase A

Streptococcus pneumoniae (S. pneumoniae) is a significant Gram-positive opportunistic pathogen responsible for a variety of lethal infections. This bacterium accounts for more deaths from diseases than any other single pathogen worldwide. Distinctively, these symptoms arise despite effective antibiotic therapy. This study unveiled a novel mechanism of resistance to S. pneumoniae infection by targeting pneumolysin (PLY) and sortase A (Srt A), the key virulence factors of S. pneumoniae. Through protein phenotype assays, we found alnustone to be a potent drug that inhibits both PLY and Srt A. Using a PLY-mediated hemolysis assay, we found that albumin can effectively reduce Srt A peptidase activity by blocking PLY oligomerization, thereby directly inhibiting PLY-expressing cytolysis. Co-incubation of S. pneumoniae D39 Srt A with small-molecule inhibitors reduces cell wall-bound Nan A (pneumococcal-anchored surface protein Srt A), inhibits biofilm formation, and significantly reduces biomass. But more interestingly, the protective effect of invasive pneumococcal disease (IPD) on murine streptococcus pneumoniae was further demonstrated. Our study proposes a detailed bacteriostatic mechanism of pneumococcal and highlights the major translational potential of targeting circulating PLY and Srt A to protect against pneumococcal infections. Our results suggest that the antiviral strategy of directly targeting PLY and Srt A with alnustone is a promising treatment option for Streptococcus pneumoniae and that alnustone can be used as an effective inhibitor of PLY and Srt A.

microbiology↗

Snapshots of actin and tubulin folding inside the TRiC chaperonin

The integrity of a cells proteome depends on correct folding of polypeptides by chaperonins. The TCP-1 ring chaperonin (TRiC) acts as obligate folder for >10% of cytosolic proteins, including cytoskeletal proteins actin and tubulin. While its architecture and how it recognises folding substrates is emerging from structural studies, the subsequent fate of substrates inside the TRiC chamber is not defined. We trapped endogenous human TRiC with substrates (actin, tubulin) and co-chaperone (PhLP2A) at different folding stages, for structure determination by cryogenic electron microscopy. The already-folded regions of client proteins are anchored at the chamber wall, positioning unstructured regions towards the central space to achieve their folding. Substrates engage with different sections of the chamber during the folding cycle, coupled to TRiC open-and-close transitions. Furthermore, the cochaperone PhLP2A modulates folding, acting as a molecular strut between substrate and TRiC chamber. Our structural snapshots piece together an emerging atomistic model of client protein folding through TRiC.

biochemistry↗