This project is concerned with a comparative analysis of ionic current channels in nerve and heart cell membranes and the relationship of these channels to electrical excitability, with a Particular emphasis on potassium ion channels in both preparations and the effects of various ionic blockers on these channels. During the past year the primary experimental preparations which have been used are squid giant axons and chick embryonic heart cells. This work has focused recently on the delayed rectifier potassium channel, IK, in squid axons. A major finding has been that this channel is modulated by the intracellular application of adenosine triphosphate (ATP). Specifically, the voltage dependence of the inactivation of IK is shifted in the hyperpolarizing direction by ATP, which suggest that the basal ATP level regulates excitability of the squid axon at rest. The effect is probably mediated by phosphorylation of a subunit of the membrane protein which comprises the IK channel, which suggests that the channel protein, or part of the channel protein, may be amenable to isolation and purification by biochemical techniques.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Intramural Research (Z01)
Project #
1Z01NS002608-06
Application #
3922558
Study Section
Project Start
Project End
Budget Start
Budget End
Support Year
6
Fiscal Year
1988
Total Cost
Indirect Cost
City
State
Country
United States
Zip Code
Lake, Robert J; Grimm, Lisa M; Veraksa, Alexey et al. (2009) In vivo analysis of the Notch receptor S1 cleavage. PLoS One 4:e6728
Paydarfar, David; Forger, Daniel B; Clay, John R (2006) Noisy inputs and the induction of on-off switching behavior in a neuronal pacemaker. J Neurophysiol 96:3338-48
Clay, John R (2003) On the persistent sodium current in squid giant axons. J Neurophysiol 89:640-4
Clay, John R; Kuzirian, Alan (2002) Trafficking of axonal K+ channels: potential role of Hsc70. J Neurosci Res 67:745-52
Clay, J R; Shrier, A (2002) Temperature dependence of bistability in squid giant axons with alkaline intracellular pH. J Membr Biol 187:213-23
Clay, J R; Kuzirian, A M (2001) A novel, kinesin-rich preparation derived from squid giant axons. Biol Bull 201:243-5
Clay, J R; Shrier, A (2001) Action potentials occur spontaneously in squid giant axons with moderately alkaline intracellular pH. Biol Bull 201:186-92
Clay, J R (2000) Determining K+ channel activation curves from K+ channel currents. Eur Biophys J 29:555-7
Clay, J R; Kuzirian, A M (2000) Localization of voltage-gated K(+) channels in squid giant axons. J Neurobiol 45:172-84