Key result
Chronic hypoxia caused a +33- to +53-mV right shift in voltage-dependent activation of K(Ca) channels and decreased their activity in human pulmonary arterial smooth muscle cells.
Chronic hypoxia reduces Ca2+-dependent K+ channel activity in human pulmonary arterial smooth muscle cells by decreasing NO/cGMP-mediated phosphorylation.
Does not support clinical changes; leaves open KCa modulation as a research target in hypoxic pulmonary disease.
We investigated the effects of chronic hypoxia on the major outward K+ currents in early cultured human main pulmonary arterial smooth muscle cells (HPSMC). Unitary currents were measured from inside-out, outside-out, and cell-attached patches of HPSMC. Chronic hypoxia depolarized resting membrane potential (Em) and reduced the activity of a charybdotoxin (CTX)- and iberiotoxin-sensitive, Ca2+-dependent K+ channel (KCa). The 4-aminopyridine-sensitive and CTX-insensitive channel or the delayed rectifier K+ channel was unaffected by chronic hypoxia. Chronic hypoxia caused a +33- to +53-mV right shift in voltage-dependent activation of K(Ca) and a decrease in K(Ca) activity at all cytosolic Ca2+ concentrations ([Ca2+]i) in the range of 0.1-10 microM. Thus the hypoxia-induced decrease in K(Ca) activity was most likely due to a decrease in K(Ca) sensitivity to Em and [Ca2+]i. Chronic hypoxia reduced the ability of nitric oxide (NO.) and guanosine 3',5'-cyclic monophosphate (cGMP) to activate K(Ca). The cGMP-dependent protein kinase-induced activation of K(Ca) was also significantly inhibited by chronic hypoxia. In addition, inhibiting channel dephosphorylation with calyculin A caused significantly less increase in K(Ca) activity in membrane patches excised from chronically hypoxic HPSMC compared with normoxic controls. This suggests that the mechanism by which hypoxia modulates NO.-induced K(Ca) activation is by decreasing the NO./cGMP-mediated phosphorylation of the channel.
No takes yet. Share an insight, caveat, or question.
Peng et al. (1997) studied this question. Chronic hypoxia vs. normoxic controls was evaluated on K(Ca) channel activity and resting membrane potential. Chronic hypoxia caused a +33- to +53-mV right shift in voltage-dependent activation of K(Ca) channels and decreased their activity in human pulmonary arterial smooth muscle cells.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: