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1.
J.R. Clay 《The Journal of membrane biology》1996,153(3):195-201
An increase in extracellular potassium ion concentration, K
o
, significantly slows the potassium channel deactivation rate in squid giant axons, as previously shown. Surprisingly, the
effect does not occur in all preparations which, coupled with the voltage independence of this result in preparations in which
it does occur, suggests that it is mediated at a site outside of the electric field of the channel, and that this site is
accessible to potassium ions in some preparations, but not in others. In other words, the effect does not appear to be related
to occupancy of the channel by potassium ions. This conclusion is supported by a four-barrier, three-binding site model of
single file diffusion through the channel in which one site, at most, is unoccupied by a potassium ion (single-vacancy model).
The model is consistent with current-voltage relations with various levels of K
o
, and, by definition, with multiple occupancy by K+. The model predicts that occupancy of any given site is essentially independent of K
o
(or K
i
). The effects of extracellular Rb+ and Cs+ on gating are strongly voltage dependent, and they were observed in all preparations investigated. Consequently, the mechanism
underlying these results would appear to be different from that which underlies the effect of K+ on gating. In particular, the effect of Rb+ on gating is reduced by strong hyperpolarization, which in the context of the occupancy hypothesis, is consistent with the
voltage dependence of the current-voltage relation in the presence of Rb+. The primary, novel, finding in this study is that the effects of Cs+ are counterintuitive in this regard. Specifically, the slowing of channel deactivation rate by Cs+ is also reduced by hyperpolarization, similar to the Rb+ results, whereas blockade is enhanced, which is seemingly inconsistent with the concept that occupancy of the channel by
Cs+ underlies the effect of this ion on gating. This result is further elucidated by barrier modeling of the current-voltage
relation in the presence of Cs+.
Received: 19 December 1995/Revised: 10 June 1996 相似文献
2.
Claudia Kathe Thomas H. Hutson Qin Chen Harold D. Shine Stephen B. McMahon Lawrence D. F. Moon 《Journal of visualized experiments : JoVE》2014,(94)
The corticospinal tract (CST) can be completely severed unilaterally in the medullary pyramids of the rodent brainstem. The CST is a motor tract that has great importance for distal muscle control in humans and, to a lesser extent, in rodents. A unilateral cut of one pyramid results in loss of CST innervation of the spinal cord mainly on the contralateral side of the spinal cord leading to transient motor disability in the forelimbs and sustained loss of dexterity. Ipsilateral projections of the corticospinal tract are minor. We have refined our surgical method to increase the chances of lesion completeness. We describe postsurgical care. Deficits on the Montoya staircase pellet reaching test and the horizontal ladder test shown here are detected up to 8 weeks postinjury. Deficits on the cylinder rearing test are only detected transiently. Therefore, the cylinder test may only be suitable for detection of short term recovery. We show how, electrophysiologically and anatomically, one may assess lesions and plastic changes. We also describe how to analyse fibers from the uninjured CST sprouting across the midline into the deprived areas. It is challenging to obtain >90% complete lesions consistently due to the proximity to the basilar artery in the medulla oblongata and survival rates can be low. Alternative surgical approaches and behavioural testing are described in this protocol. The pyramidotomy model is a good tool for assessing neuroplasticity-inducing treatments, which increase sprouting of intact fibers after injury. 相似文献