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1.
Potassium channels in the nodal membrane of rat myelinated fibres   总被引:2,自引:0,他引:2  
O Binah  Y Palti 《Nature》1981,290(5807):598-600
Following some preliminary reports, mammalian fibres from rabbit and rat have recently been successfully studied in detail by means of the voltage clamp. The early transient or sodium conductance system was found to be similar to that in frog and squid axons. However, the delayed conductance or potassium currents were found to be negligible. Only after chemical and osmotic manipulations, which were said to expose channels buried under the myelin, did Chiu and Ritchie find delayed currents in rabbit fibres. If confirmed, this would mean that the membrane conductance system of mammalian fibres is so different from that of invertebrate and amphibian axon models as to make the data base gathered from amphibian myelinated fibres (frog and toad) and invertebrate giant axons (squid and myxicola) irrelevant to human nd other mammalian fibres. However, we show here that it is possible to find in the normal nodal membrane of rat myelinated fibres potassium currents that flow through channels which are similar in many respects to those found in the frog node of squid axons.  相似文献   

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LUBINSKA L 《Nature》1954,173(4410):867-869
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Effect of tetrodotoxin on membrane currents in mammalian cardiac fibres   总被引:3,自引:0,他引:3  
J Dudel  K Peper  R Rüdel  W Trautwein 《Nature》1967,213(5073):296-297
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J M Dubois  M F Schneider 《Nature》1981,289(5799):685-688
In nerve membrane, the non-linear capacity current (displacement current) is assumed to reflect the movement of intrinsic membrane charges which control the opening of specific pathways for sodium ions (Na channels). However, various discrepancies have been reported between the effects of pharmacological agents on sodium and displacment currents (for a review see ref. 1). It is generally supposed that the opening and closing of Na channels constitutes one step of multi-step system in which each configuration change may or not give rise to a measurable charge movement. New drugs affecting either sodium or displacement currents may elucidate the relationship between charge movement and the control of sodium conductance. We therefore now report a comparison of the effects of a vegetable toxin (oenanthotoxin or OETX) on both sodium current (INa) and intra-membrane charge movement (Q) in Ranvier nodes. We show that OETX reversibly blocks both sodium and displacement current. Studies of INa and Q during partial supression by the toxin reveal differences in the effects of OETX on the remaining INa and Q. The findings are discussed in relation to recent models for the Na-channel gating process and for Na-channel block by local anaesthetics.  相似文献   

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J M Ritchie  H P Rang  R Pellegrino 《Nature》1981,294(5838):257-259
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Potassium ions and the binding of cardiac glycosides to mammalian cells   总被引:17,自引:0,他引:17  
P F Baker  J S Willis 《Nature》1970,226(5245):521-523
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Calcium channels in thrombin-activated human platelet membrane   总被引:6,自引:0,他引:6  
Platelet-activating factor, 5-hydroxytryptamine, thromboxane A2, adenosine diphosphate and thrombin are known to activate platelets by stimulating calcium entry, but the nature of the entry pathways is unknown. We present the identification of single divalent cation channels from thrombin-activated human platelets. Membrane vesicles from unstimulated and thrombin-stimulated human platelets were incorporated in planar bilayers and unitary currents through single channels were measured. Divalent cation selective channels could only be demonstrated in thrombin-stimulated preparations. These channels share a number of properties in common with voltage-dependent calcium channels--a high degree of selectivity for divalent cations, a single channel conductance of about 10 pS (in 150 mM Ba2+) and sensitivity to blockade by inorganic calcium channel blockers such as Ni2+. In other respects, these channels are different as they are not voltage-dependent and are not blocked by 1,4-dihydropyridine calcium channel antagonists.  相似文献   

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R C Knakal  W C Summers  E J Cragoe  W F Boron 《Nature》1985,315(6022):756-758
It is now well established that the internal pH (pHi) of mammalian cells is regulated by means of a plasma membrane transport system that exchanges extracellular Na+ for intracellular H+ (ref. 1). Furthermore, modulation of the activity of the Na-H exchanger seems to have a crucial role in the action of various mitogens and growth factors. The possibility that such a mammalian Na-H exchanger might be efficiently expressed in a giant invertebrate cell was suggested to us by recent results of Barnard and Miledi and colleagues, who demonstrated in frog oocytes the expression of various plasma membrane channels that presumably were encoded by the mammalian messenger RNA wih which the oocytes had been injected. We used muscle fibres of the giant barnacle, which normally have no demonstrable Na-H exchanger activity, and report here that, when injected with poly(A)+ RNA isolated from rabbit liver, the muscle fibres express a Na-H exchanger. No such expression is observed, however, when the injected material is pretreated with ribonuclease A. As hepatocytes are known to possess a Na-H exchanger, the most straightforward interpretation of our data is that a mammalian Na-H exchanger has been expressed in the muscle fibre of an invertebrate.  相似文献   

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