Related Experiment Videos
min K channels form by assembly of at least 14 subunits
T Tzounopoulos1, H R Guy, S Durell
1Vollum Institute, Oregon Health Sciences University, Portland 97201, USA.
Abstract:
Injection of min K mRNA into Xenopus oocytes results in expression of slowly activating voltage-dependent potassium channels, distinct from those induced by expression of other cloned potassium channels. The min K protein also differs in structure, containing only a single predicted transmembrane domain. While it has been demonstrated that all other cloned potassium channels form by association of four independent subunits, the number of min K monomers which constitute a functional channel is unknown. In rat min K, replacement of Ser-69 by Ala (S69A) causes a shift in the current-voltage (I-V) relationship to more depolarized potentials; currents are not observed at potentials negative to 0 mV. To determine the subunit stoichiometry of min K channels, wild-type and S69A subunits were coexpressed. Injections of a constant amount of wild-type mRNA with increasing amounts of S69A mRNA led to potassium currents of decreasing amplitude upon voltage commands to -20 mV. Applying a binomial distribution to the reduction of current amplitudes as a function of the different coinjection mixtures yielded a subunit stoichiometry of at least 14 monomers for each functional min K channel. A model is presented for how min K subunits may form a channel.
Insights
The min K potassium channel requires at least 14 monomers to function, unlike other potassium channels. This study determined the subunit stoichiometry of min K channels using Xenopus oocytes.
Area of Science:
- Molecular Biology
- Neuroscience
- Biophysics
Background:
- Min K forms slowly activating voltage-dependent potassium channels.
- Min K protein has a unique structure with a single transmembrane domain.
- The functional subunit stoichiometry of Min K channels is currently unknown.
Purpose of the Study:
- To determine the subunit stoichiometry of functional Min K potassium channels.
- To investigate the assembly of Min K subunits into functional channels.
Main Methods:
- Coexpression of wild-type and mutant (S69A) rat Min K subunits in Xenopus oocytes.
- Analysis of potassium current amplitudes using voltage commands.
- Application of binomial distribution to current amplitude data.
Main Results:
- Coexpression of wild-type and S69A Min K mRNA resulted in decreased potassium current amplitudes.
- Binomial distribution analysis indicated a minimum stoichiometry of 14 Min K monomers per functional channel.
- A model for Min K channel assembly is proposed.
Conclusions:
- Functional Min K channels are composed of at least 14 subunits.
- Min K channels exhibit a unique assembly mechanism compared to other potassium channels.