T. Harris et al., General anesthetic action at an internal protein site involving the S4-S5 cytoplasmic loop of a neuronal K+ channel, J BIOL CHEM, 275(7), 2000, pp. 4928-4936
The structural bases of general anesthetic action on a neuronal K+ channel
were investigated using the series of homologous l-alkanols, electrophysiol
ogy, and mutational analysis. Domain swapping between dShaw2 (alkanol-sensi
tive) and hKv3.4 (alkanol-resistant) and site-directed mutagenesis demonstr
ated that a 13-amino acid cytoplasmic loop (S4-S5) determines the selective
inhibition of native dShaw2 channels by l-alkanols, The S4-S5 loop may con
tribute to a receptor for both l-alkanols and the inactivation particle, be
cause the enhanced l-alkanol sensitivity of hKv3.4 channels hosting S4-S5 m
utations correlates directly with disrupted channel inactivation. Evidence
of a discrete protein site was also obtained from the analysis of the relat
ionship between potency and alkyl chain length, which begins to level off a
fter 1-hexanol. Rapid application to the cytoplasmic side of inside-out mem
brane patches shows that the interaction between dShaw2 channels and l-alka
nols equilibrates in <200 ms. By contrast, the equilibration time is >1000
fold slower when the drug is applied externally to outside-out membrane pat
ches. The data strongly favor a mechanism of inhibition involving a discret
e internal site for l-alkanols in dShaw2 K+ channels. A new working hypothe
sis proposes that l-alkanols lock dShaw2 channels in their closed conformat
ion by a direct interaction at a crevice formed by the S4-S5 loop.