首页> 美国卫生研究院文献>The Journal of Physiology >Coupling between fast and slow inactivation revealed by analysis of a point mutation (F1304Q) in mu 1 rat skeletal muscle sodium channels.
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Coupling between fast and slow inactivation revealed by analysis of a point mutation (F1304Q) in mu 1 rat skeletal muscle sodium channels.

机译:通过分析mu 1大鼠骨骼肌钠通道中的点突变(F1304Q)揭示了快速灭活和慢速灭活之间的耦合。

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摘要

1. We sought to elucidate the mechanism of the defective inactivation that characterizes sodium channels containing mutations in the cytoplasmic loop between the third and fourth domains (the III-IV linker). Specifically, we measured whole-cell and single-channel currents through wild-type and F1304Q mutant mu 1 rat skeletal muscle Na+ channels expressed in Xenopus laevis oocytes. 2. In wild-type channels, inactivation is complete and the faster of two decay components predominates. In F1304Q, inactivation is incomplete; the slow decay component is larger in amplitude and slower than in wild-type. The fraction of non-inactivating current is substantial (37 +/- 2% of peak current at -20 mV) in F1304Q. 3. Cell-attached patch recordings confirmed the profound kinetic differences and indicated that permeation was not altered by the F1304Q mutation. The F1304Q phenotype must be conferred entirely by changes in gating properties and is not remedied by coexpression with the beta 1-subunit. 4. Recovery from inactivation of F1304Q channels is faster than for wild-type channels and three exponentials are required to describe recovery adequately following long (5 s) depolarizations. Thus, there are three inactivated states even in 'inactivation-deficient' F1304Q channels. 5. The steady-state voltage dependence of F1304Q inactivation is right-shifted by 26 +/- 2 mV. 6. A gating model incorporating three inactivated states, all directly accessible from multiple closed states or the open state, was constrained to fit wild-type and F1304Q inactivation (h infinitive) data and repriming data simultaneously. While it was necessary to alter the rate constants entering and exiting all three inactivated states, the model accounted for the F1304Q-induced rightward shift in steady-state inactivation without imposing voltage dependence on the inactivation rate constants. 7. We conclude that the F1304Q mutation in mu 1 sodium channels modifies several inactivation processes simultaneously. The fact that a single amino acid substitution profoundly alters both fast and slow inactivation indicates that these processes share physical determinants in Na+ channels.
机译:1.我们试图阐明有缺陷的失活的机制,该失活的特征是钠通道含有第三和第四结构域(III-IV接头)之间的胞质环中的突变。具体来说,我们测量了非洲爪蟾卵母细胞中表达的野生型和F1304Q突变型mu 1大鼠骨骼肌Na +通道的全细胞和单通道电流。 2.在野生型通道中,灭活是完全的,并且两个衰变成分中较快的占主导地位。在F1304Q中,灭活是不完全的。慢衰减分量的幅度更大,并且比野生型慢。在F1304Q中,非灭活电流的比例很大(在-20 mV时为峰值电流的37 +/- 2%)。 3.细胞附着膜片记录证实了巨大的动力学差异,并表明渗透率并未因F1304Q突变而改变。 F1304Q表型必须完全通过门控特性的改变来赋予,并且不能通过与β1-亚基的共表达来弥补。 4.从F1304Q通道失活中恢复的速度比野生型通道快,并且需要三个指数来充分描述长时间(5 s)去极化后的恢复。因此,即使在“失活不足” F1304Q通道中,也存在三种失活状态。 5. F1304Q失活的稳态电压依赖性右移26 +/- 2 mV。 6.结合了三个失活状态的门控模型,所有三个失活状态都可以从多个闭合状态或打开状态直接访问,它们被约束为同时适应野生型和F1304Q失活(h不定式)数据并重新初始化数据。尽管有必要更改进入和退出所有三种灭活状态的速率常数,但该模型考虑了F1304Q引起的稳态灭活的向右移位,而没有将电压依赖于灭活速率常数。 7.我们得出的结论是,μ1钠通道中的F1304Q突变可同时修饰多个失活过程。单个氨基酸取代会深刻改变快速和缓慢失活的事实,表明这些过程在Na +通道中共有物理决定簇。

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