Abstract
A voltage-gated K+ conductance resembling that of the human ether-a- go-go-related gene product (HERG) was studied using whole-cell voltage-clamp recording, and found to be the predominant conductance at hyperpolarized potentials in a cell line (MLS-9) derived from primary cultures of rat microglia. Its behavior differed markedly from the classical inward rectifier K+ currents described previously in microglia, but closely resembled HERG currents in cardiac muscle and neuronal tissue. The HERG-like channels opened rapidly on hyperpolarization from 0 mV, and then decayed slowly into an absorbing closed state. The peak K+ conductance-voltage relation was half maximal at -59 mV with a slope factor of 18.6 mV. Availability, assessed by a hyperpolarizing test pulse from different holding potentials, was more steeply voltage dependent, and the midpoint was more positive (-14 vs. -39 mV) when determined by making the holding potential progressively more positive than more negative. The origin of this hysteresis is explored in a companion paper (Pennefather, P.S., W. Zhou, and T.E. DeCoursey. 1998. J. Gen. Physiol. III:795-805). The pharmacological profile of the current differed from classical inward rectifier but closely resembled HERG. Block by Cs+ or Ba2+ occurred only at millimolar concentrations, La3+ blocked with K(i) = ~40 μM, and the HERG-selective blocker, E-4031, blocked with K(i) = 37 nM. Implications of the presence of HERG-like K+ channels for the ontogeny of microglia are discussed.
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Zhou, W., Cayabyab, F. S., Pennefather, P. S., Schlichter, L. C., & Decoursey, T. E. (1998). HERG-like K+ channels in microglia. Journal of General Physiology, 111(6), 781–794. https://doi.org/10.1085/jgp.111.6.781
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