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September 1, 1986Journal of Experimental Biology144 citations

Allosteric Effects of Mg2+ on the Gating of Ca2+-Activated K+ Channels From Mammalian Skeletal Muscle

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JGJorge GolowaschAKAlfred KirkwoodCMChristopher Miller

Structured PICO

P
Population
Ca2+-activated K+ channels from rat muscle transverse tubule membranes inserted into planar phospholipid bilayers
I
Intervention
Magnesium ions (1-10 mmol l-1) added to the cytoplasmic side
C
Comparator
Absence of Mg2+ or lower concentrations of Mg2+
O
Outcome
Opening probability of the channel and apparent affinity for Ca2+ (activation curve sigmoidicity and Hill coefficient)surrogate

Magnesium ions allosterically modulate Ca2+-activated K+ channels from mammalian skeletal muscle, suggesting the channel contains at least six Ca2+-binding sites involved in activation.

Abstract

Ca2+-activated K+ channels from rat muscle transverse tubule membranes were inserted into planar phospholipid bilayers, and the activation of these channels by Ca2+ was studied. On the cytoplasmic side of the channel, calcium ions (in the range 10-100 mumol l-1) increase the opening probability of the channel in a graded way. This 'activation curve' is sigmoid, with an average Hill coefficient of about 2. Magnesium ions, in the range 1-10 mmol l-1, increase the apparent affinity of the channel for Ca2+ and greatly enhance the sigmoidicity of the Ca2+ activation curve. In the presence of 10 mmol l-1 Mg2+, the Hill coefficient for Ca2+ activation is about 4.5. This effect depends upon Mg2+ concentration but not upon applied voltage. Mg2+ is effective only when added to the cytoplasmic side of the channel. The results argue that this high-conductance, Ca2+-activated K+ channel contains at least six Ca2+-binding sites involved in the activation process.

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Cite This Study

Golowasch et al. (1986) studied this question.

synapsesocial.com/papers/6a217443f6aa648d3a5804ffhttps://doi.org/10.1242/jeb.124.1.5
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