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首页> 外文期刊>Journal of General Physiology >Dose-dependent and isoform-specific modulation of Ca2+ channels by RGK GTPases
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Dose-dependent and isoform-specific modulation of Ca2+ channels by RGK GTPases

机译:RGK GTPases对Ca2 +通道的剂量依赖性和亚型特异性调节

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Although inhibition of voltage-gated calcium channels by RGK GTPases (RGKs) represents an important mode of regulation to control Ca2+ influx in excitable cells, their exact mechanism of inhibition remains controversial. This has prevented an understanding of how RGK regulation can be significant in a physiological context. Here we show that RGKs-Gem, Rem, and Rem2-decreased Ca(V)1.2 Ca2+ current amplitude in a dose-dependent manner. Moreover, Rem2, but not Rem or Gem, produced dose-dependent alterations on gating kinetics, uncovering a new mode by which certain RGKs can precisely modulate Ca2+ currents and affect Ca2+ influx during action potentials. To explore how RGKs influence gating kinetics, we separated the roles mediated by the Ca2+ channel accessory beta subunit's interaction with its high affinity binding site in the pore-forming alpha(1C) subunit (AID) from its other putative contact sites by utilizing an alpha(1C)center dot beta 3 concatemer in which the AID was mutated to prevent beta subunit interaction. This mutant concatemer generated currents with all the hallmarks of beta subunit modulation, demonstrating that AID-beta-independent interactions are sufficient for beta subunit modulation. Using this construct we found that although inhibition of current amplitude was still partially sensitive to RGKs, Rem2 no longer altered gating kinetics, implicating different determinants for this specific mode of Rem2-mediated regulation. Together, these results offer new insights into the molecular mechanism of RGK-mediated Ca2+ channel current modulation.
机译:尽管RGK GTPases(RGKs)对电压门控钙通道的抑制代表了一种重要的调控模式,以控制可兴奋细胞中的Ca2 +流入,但其确切的抑制机理仍存在争议。这使人们无法理解在生理环境中RGK调控的重要性。在这里,我们显示RGKs-Gem,Rem和Rem2以剂量依赖的方式降低了Ca(V)1.2 Ca2 +电流幅度。此外,Rem2(而非Rem或Gem)对门控动力学产生剂量依赖性变化,从而揭示了一种新模式,某些RGK可以通过这种新模式精确地调节Ca2 +电流并在动作电位期间影响Ca2 +流入。为了探索RGK如何影响门控动力学,我们通过利用α分离了Ca2 +通道附件β亚基与其在孔形成α(1C)亚基(AID)中的高亲和力结合位点与其其他推定的接触位点之间的相互作用介导的作用(1C)中心点beta 3串联体,其中AID被突变以防止beta亚基相互作用。此突变体串联体产生具有β亚基调制的所有标记的电流,表明AID-β独立的相互作用足以进行β亚基调制。使用这种结构,我们发现尽管电流幅度的抑制仍然对RGK部分敏感,但Rem2不再改变门控动力学,这对Rem2介导的这种特定调节方式涉及不同的决定因素。在一起,这些结果提供了对RGK介导的Ca2 +通道电流调节的分子机制的新见解。

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