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Biology subjects

Ying, V. Y.

Publications and source records attributed to Ying, V. Y..

2 recordsLinked to original sources

Caenorhabditis elegans avoids Todstoff, a novel nociceptive necrotaxis cue

To survive in hazardous environments, organisms must navigate and avoid myriad threats. Many species across phyla detect warning cues in the remains of dead or injured conspecifics, allowing them to enact defensive strategies and avoid a similar fate. Here, we demonstrate that Caenorhabditis elegans senses a novel aversive cue (which we term Todstoff, or death substance) present in the remains of dead worms that induces living conspecifics to perform negative necrotaxis behaviors. Todstoff is distinct from previously-identified social signals in C. elegans, including ascaroside and alarm pheromones, and our biochemical analysis has revealed that Todstoff may be a protein-associated amino acid derivative less than 1.35 kDa in size. We determined that Todstoff is sensed by the ASH polymodal nociceptive neurons, and further, that the necrotaxis signal is transduced via the activity of G-protein coupled receptor (GPCR) signaling, the Gi/o-like protein ODR-3, TRPV channels OSM-9 and OCR-2, and glutamatergic synaptic transmission to downstream AIB interneurons. Taken together, our work illuminates a post-mortem inter-animal chemical signaling pathway that promotes death avoidance, and thus, survival.

genetics↗

Discovery of a Human Metabolite that Mimics the Bacterial Quorum-Sensing Autoinducer AI-2

Bacteria use small molecules to orchestrate collective behaviors in a process called quorum sensing (QS), which relies on the production, release, and group-wide detection of extracellular signal molecules referred to as autoinducers. One QS autoinducer, termed AI-2, is broadly used for inter-species bacterial communication, including in the mammalian gut. AI-2 consists of a family of interconverting compounds and adducts originating from 4,5-hydroxy-2,3-pentanedione. This complex speciation, coupled with the inherent instability of AI-2 congeners, have complicated isolation efforts. It has been known that mammalian epithelial cells produce an AI-2 mimic to which bacteria respond. However, the identity of the AI-2 mimic has remained elusive, presumably due to its instability, similar to that of known AI-2 compounds. Here, we developed a reactivity-based metabolomics approach to capture and identify a mammalian AI-2 mimic. Using a chemical strategy targeted at the -diketone moiety of known AI-2s, we identify the unusual sugar L-xylosone, as well as the related metabolite L-xylulose, as AI-2 mimics. While L-xylulose is a common and naturally occurring sugar known in human metabolism, L-xylosone is a rare and highly reactive oxidation product. We established a facile synthetic route to access pure enantiomers of xylosone and confirmed that, like AI-2, the L-configuration is required for recognition by the bacterial AI-2 receptor, LuxP, whereas D-xylosone is inactive. L-xylosone is new to the human metabolome, suggesting that other chemically reactive small molecules that mediate host-microbe interactions await discovery. The identification of L-xylosone expands the AI-2 family of molecules and adds a new word to the lexicon of host-bacterial interactions.

biochemistry↗