Trifunctional Saxitoxin Conjugates for Covalent Labeling of Voltage-Gated Sodium Channels

Voltage-gated sodium ion channels (Na s) are integral membrane protein complexes responsible for electrical signal conduction in excitable cells. Methods that enable selective labeling of Na s hold potential value for understanding how channel regulation and post-translational modification are influ...

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Veröffentlicht in:Chembiochem : a European journal of chemical biology 2023-11, Vol.24 (22), p.e202300493-e202300493
Hauptverfasser: Finkelstein, Darren S, Du Bois, J
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Sprache:eng
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Zusammenfassung:Voltage-gated sodium ion channels (Na s) are integral membrane protein complexes responsible for electrical signal conduction in excitable cells. Methods that enable selective labeling of Na s hold potential value for understanding how channel regulation and post-translational modification are influenced during development and in response to diseases and disorders of the nervous system. We have developed chemical reagents patterned after (+)-saxitoxin (STX) - a potent and reversible inhibitor of multiple Na isoforms - and affixed with a reactive electrophile and either a biotin cofactor, fluorophore, or 'click' functional group for labeling wild-type channels. Our studies reveal enigmatic structural effects of the probes on the potency and efficiency of covalent protein modification. Among the compounds analyzed, a STX-maleimide-coumarin derivative is most effective at irreversibly blocking Na conductance when applied to recombinant Na s and endogenous channels expressed in hippocampal neurons. Mechanistic analysis supports the conclusion that high-affinity toxin binding is a prerequisite for covalent protein modification. Results from these studies are guiding the development of next-generation tool compounds for selective modification of Na s expressed in the plasma membranes of cells.
ISSN:1439-4227
1439-7633
1439-7633
DOI:10.1002/cbic.202300493