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◆ Bioorganic chemistry2026-08-29

Turning a biochemical GatCAB inhibitor into a live-cell active antibacterial probe through lipid and trehalose conjugation.

Chawarat Isarangkool Na Ayutthaya, Anon Boonkerd, Wanchat Sirisarn, Nattanan Panjaworayan T-Thienprasert, Borvornwat Toviwek, Prapasiri Pongprayoon, Hemant Joshi, Babak Javid, Pitak Chuawong

一句话结论

These results show that trehalose conjugation is an effective Trojan-horse strategy for delivering biochemical inhibitors selectively into mycobacteria, and that the choice of conjugation strategy outlines both the antibacterial spectrum and the safety profile of the resulting probes.

原始摘要(原文)
The heterotrimeric Asp-tRNAAsn/Glu-tRNAGln amidotransferase, GatCAB, is vital for protein synthesis in many bacterial pathogens, including mycobacteria, that lack glutaminyl- and/or asparaginyl-tRNA synthetases and depend on the indirect aminoacylation pathway. Despite this potential as an antibacterial target, biochemical GatCAB inhibitors have failed to achieve live-cell activity due to poor cell permeability. Here, we converted a biochemically active chloramphenicol-methionine sulfone, a transition-state mimic of GatCAB transamidation, into live-cell-active antibacterial probes by appending two structurally distinct delivery moieties. The lipid-conjugate enabled passive cellular uptake and demonstrated broad-spectrum antibacterial activity that correlated with genetic dependence on GatCAB, but was also cytotoxic to mammalian HepG2 and Vero cells. The trehalose-conjugate, despite being highly hydrophilic, exploited the mycobacterium-specific transporter LpqY-SugABC to enter Mycobacterium smegmatis and Mycobacterium tuberculosis selectively, and exhibited reduced mammalian cell cytotoxicity. Direct intracellular target engagement by both conjugates was confirmed by a gain-of-function dual-luciferase mistranslation assay, and molecular dynamics simulation supported the target-engagement model at the GatB active site. These results show that trehalose conjugation is an effective Trojan-horse strategy for delivering biochemical inhibitors selectively into mycobacteria, and that the choice of conjugation strategy outlines both the antibacterial spectrum and the safety profile of the resulting probes.
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Turning a biochemical GatCAB inhibitor into a live-cell active antibacterial probe through lipid and trehalose conjugation. — 科研速览 Science Skim