首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Intramembrane charge movements and excitation– contraction coupling expressed by two-domain fragments of the Ca2+ channel
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Intramembrane charge movements and excitation– contraction coupling expressed by two-domain fragments of the Ca2+ channel

机译:膜内电荷运动和激发-收缩 由两个域的片段表达的偶联 Ca2 +通道

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摘要

To investigate the molecular basis of the voltage sensor that triggers excitation–contraction (EC) coupling, the four-domain pore subunit of the dihydropyridine receptor (DHPR) was cut in the cytoplasmic linker between domains II and III. cDNAs for the I-II domain (α1S 1–670) and the III-IV domain (α1S 701-1873) were expressed in dysgenic α1S-null myotubes. Coexpression of the two fragments resulted in complete recovery of DHPR intramembrane charge movement and voltage-evoked Ca2+ transients. When fragments were expressed separately, EC coupling was not recovered. However, charge movement was detected in the I-II domain expressed alone. Compared with I-II and III-IV together, the charge movement in the I-II domain accounted for about half of the total charge (Qmax = 3 ± 0.23 vs. 5.4 ± 0.76 fC/pF, respectively), and the half-activation potential for charge movement was significantly more negative (V1/2 = 0.2 ± 3.5 vs. 22 ± 3.4 mV, respectively). Thus, interactions between the four internal domains of the pore subunit in the assembled DHPR profoundly affect the voltage dependence of intramembrane charge movement. We also tested a two-domain I-II construct of the neuronal α1A Ca2+ channel. The neuronal I-II domain recovered charge movements like those of the skeletal I-II domain but could not assist the skeletal III-IV domain in the recovery of EC coupling. The results demonstrate that a functional voltage sensor capable of triggering EC coupling in skeletal myotubes can be recovered by the expression of complementary fragments of the DHPR pore subunit. Furthermore, the intrinsic voltage-sensing properties of the α1A I-II domain suggest that this hemi-Ca2+ channel could be relevant to neuronal function.
机译:为了研究触发激发-收缩(EC)耦合的电压传感器的分子基础,在结构域II和III之间的胞质接头中切断了二氢吡啶受体(DHPR)的四结构域孔亚基。 I-II结构域(α1S1–670)和III-IV结构域(α1S701-1873)的cDNA在致病性α1S无效的肌管中表达。这两个片段的共表达导致DHPR膜内电荷运动的完全恢复和电压诱发的Ca 2 + 瞬变。当片段分别表达时,EC偶联没有恢复。但是,在单独表达的I-II域中检测到电荷运动。与I-II和III-IV相比,I-II域中的电荷移动约占总电荷的一半(Qmax = 3±0.23 vs. 5.4±0.76 fC / pF),而一半电荷移动的激活电位明显更负(分别为V1 / 2 = 0.2±3.5 vs. 22±3.4 mV)。因此,四个内部 组装的DHPR中孔亚基的结构域深刻影响 膜内电荷运动的电压依赖性。我们还测试了 神经元α1ACa 2 + 的两域I-II构造 渠道。神经元I-II域恢复了像这样的电荷运动 骨骼I-II结构域的功能,但无法协助骨骼III-IV 域在EC耦合的恢复中。结果表明 能够触发骨骼中EC耦合的功能电压传感器 肌管可以通过表达互补片段来恢复 DHPR孔亚基的组成。此外,本征电压感应 α1AI-II结构域的性质表明 Hemi-Ca 2 + 通道可能与神经元功能有关。

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