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鉴定决定成纤维细胞生长因子同源因子与电压门控钠离子通道之间特异性的新相互作用位点。

Identification of novel interaction sites that determine specificity between fibroblast growth factor homologous factors and voltage-gated sodium channels.

机构信息

Ion Channel Research Unit, Department of Medicine, Duke University Medical Center, Durham, North Carolina 27710, USA.

出版信息

J Biol Chem. 2011 Jul 8;286(27):24253-63. doi: 10.1074/jbc.M111.245803. Epub 2011 May 12.

Abstract

Fibroblast growth factor homologous factors (FHFs, FGF11-14) bind to the C termini (CTs) of specific voltage-gated sodium channels (VGSC) and thereby regulate their function. The effect of an individual FHF on a specific VGSC varies greatly depending upon the individual FHF isoform. How individual FHFs impart distinctive effects on specific VGSCs is not known and the specificity of these pairwise interactions is not understood. Using several biochemical approaches combined with functional analysis, we mapped the interaction site for FGF12B on the Na(V)1.5 C terminus and discovered previously unknown determinants necessary for FGF12 interaction. Also, we demonstrated that FGF12B binds to some, but not all Na(V)1 CTs, suggesting specificity of interaction. Exploiting a human single nucleotide polymorphism in the core domain of FGF12 (P149Q), we identified a surface proline that contributes a part of this pairwise specificity. This proline is conserved among all FHFs, and mutation of the homologous residue in FGF13 also leads to loss of interaction with a specific VGSC CT (Na(V)1.1) and loss of modulation of the resultant Na(+) channel function. We hypothesized that some of the specificity mediated by this proline may result from differences in the affinity of the binding partners. Consistent with this hypothesis, surface plasmon resonance data showed that the P149Q mutation decreased the binding affinity between FHFs and VGSC CTs. Moreover, immunocytochemistry revealed that the mutation prevented proper subcellular targeting of FGF12 to the axon initial segment in neurons. Together, these results give new insights into details of the interactions between FHFs and Na(V)1.x CTs, and the consequent regulation of Na(+) channels.

摘要

成纤维细胞生长因子同源因子 (FHFs,FGF11-14) 与特定电压门控钠离子通道 (VGSC) 的 C 末端 (CT) 结合,从而调节其功能。单个 FHF 对特定 VGSC 的影响因个体 FHF 同工型而异。单个 FHF 如何对特定 VGSCs 产生独特的影响尚不清楚,这些相互作用的特异性也不为人知。我们使用几种生化方法结合功能分析,绘制了 FGF12B 在 Na(V)1.5 C 末端的结合位点,并发现了以前未知的 FGF12 相互作用所必需的决定因素。此外,我们还证明了 FGF12B 与一些,但不是所有的 Na(V)1 CT 结合,这表明了相互作用的特异性。利用 FGF12 核心结构域中的一个人类单核苷酸多态性 (P149Q),我们鉴定出一个表面脯氨酸,它贡献了这种相互作用特异性的一部分。这个脯氨酸在所有 FHFs 中都保守,FGF13 中同源残基的突变也导致与特定 VGSC CT(Na(V)1.1)的相互作用丧失,并导致所得 Na(+)通道功能的调节丧失。我们假设,该脯氨酸介导的部分特异性可能是由于结合伙伴之间亲和力的差异所致。与该假设一致,表面等离子体共振数据表明,P149Q 突变降低了 FHFs 和 VGSC CT 之间的结合亲和力。此外,免疫细胞化学显示,该突变阻止了 FGF12 向神经元轴突起始段的适当亚细胞靶向。总之,这些结果为 FHFs 与 Na(V)1.x CT 之间相互作用的细节以及随后对 Na(+)通道的调节提供了新的见解。

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