Potassium Channel: Difference between revisions
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====Voltage Sensor==== | ====Voltage Sensor==== | ||
Channel pore opening is dependent on the membrane voltage, a characteristic that is “sensed” by the <scene name='Potassium_Channel/Voltage_sensors_opening/6'>voltage sensor</scene>. The voltage sensor is comprised of <scene name='Potassium_Channel/Voltage_helices/3'>six helices</scene>, S0, S1, S2, S3, S4, & S5. Negatively charged amino acids in the sensor are either located in the <scene name='Potassium_Channel/Voltage_external/3'>external cluster</scene>, consisting of Glu 183 (in the [[2r9r]] structure) and Glu 226, or in the <scene name='Potassium_Channel/Voltage_internal/4'>internal cluster</scene> consisting of Glu 154, Glu 236, and Asp 259. The external cluster is exposed to solvent while the internal cluster is buried. <scene name='Potassium_Channel/Voltage_phe/2'>Phenylalanine 233</scene> separates the external and internal clusters.<ref name="Long"/> The 7 <scene name='Potassium_Channel/Voltage_phe/3'>positively charged residues</scene> of the voltage sensor are located on the S4 helix. Lys 302 and Arg 305 <scene name='Potassium_Channel/Voltage_lower_pos/1'>form hydrogen bonds</scene> with the internal negative cluster while Arginines 287, 290, 293, 296 and 299 are | Channel pore opening is dependent on the membrane voltage, a characteristic that is “sensed” by the <scene name='Potassium_Channel/Voltage_sensors_opening/6'>voltage sensor</scene>. The voltage sensor is comprised of <scene name='Potassium_Channel/Voltage_helices/3'>six helices</scene>, S0, S1, S2, S3, S4, & S5. Negatively charged amino acids in the sensor are either located in the <scene name='Potassium_Channel/Voltage_external/3'>external cluster</scene>, consisting of Glu 183 (in the [[2r9r]] structure) and Glu 226, or in the <scene name='Potassium_Channel/Voltage_internal/4'>internal cluster</scene> consisting of Glu 154, Glu 236, and Asp 259. The external cluster is exposed to solvent while the internal cluster is buried. <scene name='Potassium_Channel/Voltage_phe/2'>Phenylalanine 233</scene> separates the external and internal clusters.<ref name="Long"/> The 7 <scene name='Potassium_Channel/Voltage_phe/3'>positively charged residues</scene> of the voltage sensor are located on the S4 helix. Lys 302 and Arg 305 <scene name='Potassium_Channel/Voltage_lower_pos/1'>form hydrogen bonds</scene> with the internal negative cluster while Arginines 287, 290, 293, 296 and 299 are <scene name='Potassium_Channel/Voltage_solvent/1'>exposed to the extracellular solution</scene> (<scene name='Potassium_Channel/Voltage_sensors_arginines_over/2'>Overview</scene>). When the voltage sensor is exposed to a strong negative electric field in the intracellular membrane, the positive gating charges shift inward with the α-carbon of Arg 290 shifting to interact with Phe 233. This shift effectively squeezes the pore shut, closing the intracellular-extracellular pathway. For a comparison see: The **Open** Channel vs. The **Closed** (1k4c like in 6c and D) Channel.<ref name="Long"/> | ||
Overall, Potassium channels are remarkable structures that allow for near diffusion limit transfer of molecules with sub-angstrom specificity. Our understanding of the structure of Potassium Channels has opened up the potential for [[Pharmaceutical drugs|therapeutic intervention]] into Potassium channel related diseases. | Overall, Potassium channels are remarkable structures that allow for near diffusion limit transfer of molecules with sub-angstrom specificity. Our understanding of the structure of Potassium Channels has opened up the potential for [[Pharmaceutical drugs|therapeutic intervention]] into Potassium channel related diseases. | ||
Revision as of 03:05, 9 March 2011
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Additional Structures of Potassium Channels
neurodevelopmental disorders – KCh voltage-sensor paddle domain – NMR
1k4c – BcKCh transmembrane domain – Bacillus cereus
1k4d – BcKCh transmembrane domain +Ca+Na
2r9r, therapeutic intervention, 2q69, 2q6a – BcKCh (mutant)
2ahy – BcKCh+Na
2ahz – BcKCh+K
2pnv – rKCh leucine zipper domain SKCa – rat
2nz0 – hKCh Kv4.3 N-terminal+KV channel interacting protein 1 – human
2i2r - rKCh Kv4.3 N-terminal+KV channel interacting protein 1
1s6c - rKCh Kv4.2 N-terminal+KV channel interacting protein 1
1qx7 – rKCh SKCa+ calmodulin
1g4y – rKCh rSK2 calmodulin binding domain SKCa + calmodulin
1j95 – KCh+K+tetrabutylammonium – Streptomyces lividans
3co2, 1vp6 – MlotiK1 cyclic nucleotide binding domain – Mesorhizobium loti
For Additional Structures, See: Potassium Channels
Additional Resources
For Additional Information, See: Membrane Channels & Pumps
References
Proteopedia Page Contributors and Editors (what is this?)
David Canner, Alexander Berchansky, Ann Taylor, Michal Harel, Joel L. Sussman
