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Butterwick, J. A.

Publications and source records attributed to Butterwick, J. A..

2 recordsLinked to original sources

The structural logic of insect olfactory receptor assembly and gating

Insects detect the chemical world using a large family of odorant-gated ion channels, each formed from a variable odorant-binding subunit (OR) and a single conserved co-receptor Orco. This modular organization is thought to allow tuning ORs to diversify their chemical recognition while Orco provides structural stability to the heteromer. Yet Orco can be autonomously activated by synthetic agonists, suggesting that it may contribute to channel gating rather than serving solely as a structural scaffold. Here, we combine cryo-electron microscopy with analyses of receptor stoichiometry and function to define the structural logic underlying Orco-OR assembly and gating. We show that Orco retains the canonical ligand-binding pocket of ORs but is chemically insulated from environmental odorants by a phospholipid that occupies this site. The Orco agonist VUAA4 instead binds a membrane-accessible crevice adjacent to the gate, defining a distinct site of allosteric modulation. We further demonstrate that Orco-OR heteromers can assemble in multiple stoichiometries through shape complementarity within the intracellular anchor domain and resolve structures with both a 3:1 and 2:2 architecture. Receptors constrained to a 2:2 stoichiometry are functional but productive gating requires cooperative engagement of multiple subunits within the heteromer. Comparison with the distinct gating states of a basal homomeric olfactory receptor suggests that existing Orco-OR structures capture nonconductive intermediates within the broader conformational landscape of this receptor family. Together, these findings suggest how Orco can flexibly assemble and function with highly divergent ORs, acting not simply as a structural scaffold but as an integral partner in cooperative channel gating, thereby enabling the extraordinary diversification of insect olfactory receptors.

neuroscience↗

The molecular basis of sugar detection by an insect taste receptor

Animals crave sugars because of their energy potential and the pleasurable sensation of tasting sweetness. Yet all sugars are not metabolically equivalent, requiring mechanisms to detect and differentiate between chemically similar sweet substances. Insects use a family of ionotropic gustatory receptors to discriminate sugars, each of which is selectively activated by specific sweet molecules. To gain insight into the molecular basis of sugar selectivity, we determined structures of Gr9, a gustatory receptor from the silkworm Bombyx mori (BmGr9), in the absence and presence of its sole activating ligand, D-fructose. These structures, along with structure-guided mutagenesis and functional assays, illustrate how specificity for D-fructose is seemingly achieved by a ligand-binding pocket that precisely matches the overall shape and pattern of chemical groups in D-fructose. However, our computational docking and experimental binding assays revealed that other sugars also bind BmGr9, yet they are unable to activate the receptor. We identified the conformational change required to open the channel gate that provides an additional layer of receptor tuning in BmGr9; only D-fructose can both fit into the pocket and simultaneously engage a bridge of two conserved aromatic residues that connects the pocket to the ion conducting pore. Thus, chemical specificity does not depend solely on the selectivity of the ligand-binding pocket, but it is an emergent property arising from a combination of receptor-ligand interactions and allosteric coupling. Our results support a model whereby coarse receptor tuning is derived from the size and chemical characteristics of the pocket, whereas fine-tuning of receptor activation is achieved through the selective engagement of an allosteric pathway that regulates ion conduction.

neuroscience↗