首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Structural basis for relief of phospholamban-mediated inhibition of the sarcoplasmic reticulum Ca2+-ATPase at saturating Ca2+ conditions
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Structural basis for relief of phospholamban-mediated inhibition of the sarcoplasmic reticulum Ca2+-ATPase at saturating Ca2+ conditions

机译:饱和Ca2 +条件下磷酸lamban介导的对肌质网Ca2 + -ATPase的抑制作用的结构基础

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摘要

Sarcoplasmic reticulum Ca2+-ATPase (SERCA) is critical for cardiac Ca2+ transport. Reversal of phospholamban (PLB)-mediated SERCA inhibition by saturating Ca2+ conditions operates as a physiological rheostat to reactivate SERCA function in the absence of PLB phosphorylation. Here, we performed extensive atomistic molecular dynamics simulations to probe the structural mechanism of this process. Simulation of the inhibitory complex at superphysiological Ca2+ concentrations ([Ca2+] = 10 mm) revealed that Ca2+ ions interact primarily with SERCA and the lipid headgroups, but not with PLB's cytosolic domain or the cytosolic side of the SERCA–PLB interface. At this [Ca2+], a single Ca2+ ion was translocated from the cytosol to the transmembrane transport sites. We used this Ca2+-bound complex as an initial structure to simulate the effects of saturating Ca2+ at physiological conditions ([Ca2+]total ≈ 400 μm). At these conditions, ∼30% of the Ca2+-bound complexes exhibited structural features consistent with an inhibited state. However, in ∼70% of the Ca2+-bound complexes, Ca2+ moved to transport site I, recruited Glu771 and Asp800, and disrupted key inhibitory contacts involving the conserved PLB residue Asn34. Structural analysis showed that Ca2+ induces only local changes in interresidue inhibitory interactions, but does not induce repositioning or changes in PLB structural dynamics. Upon relief of SERCA inhibition, Ca2+ binding produced a site I configuration sufficient for subsequent SERCA activation. We propose that at saturating [Ca2+] and in the absence of PLB phosphorylation, binding of a single Ca2+ ion in the transport sites rapidly shifts the equilibrium toward a noninhibited SERCA–PLB complex.
机译:肌质网Ca 2 + -ATPase(SERCA)对心脏Ca 2 + 的运输至关重要。通过饱和Ca 2 + 条件逆转磷脂酰肌醇(PLB)介导的SERCA抑制作用,是一种生理变阻剂,可在没有PLB磷酸化的情况下重新激活SERCA功能。在这里,我们进行了广泛的原子分子动力学模拟,以探讨该过程的结构机理。在超生理浓度的Ca 2 + ([Ca 2 + ] = 10 mm)下对抑制复合物的模拟表明,Ca 2 + 离子主要相互作用带有SERCA和脂质头基,但不带有PLB的胞质结构域或SERCA–PLB界面的胞质侧。在该[Ca 2 + ]处,单个Ca 2 + 离子从胞质溶胶转移到跨膜转运位点。我们使用这种Ca 2 + 结合的复合物作为初始结构来模拟在生理条件下饱和Ca 2 + 的作用([Ca 2 + ]总计≈400μm)。在这些条件下,约30%的Ca 2 + 结合复合物表现出与抑制状态一致的结构特征。然而,在约70%的Ca 2 + 结合复合物中,Ca 2 + 移至转运位点I,募集了Glu 771 和Asp 800 ,并破坏了涉及保守PLB残基Asn 34 的关键抑制性接触。结构分析表明,Ca 2 + 仅引起残基间抑制性相互作用的局部变化,而不引起PLB结构动力学的重新定位或变化。缓解SERCA抑制后,Ca 2 + 的结合产生了I位构型,足以用于随后的SERCA激活。我们建议在饱和[Ca 2 + ]且没有PLB磷酸化的情况下,单个Ca 2 + 离子在转运位点的结合会迅速使平衡向a非抑制性SERCA-PLB复合物。

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