Structural and energetic analysis of metastable intermediate states in the E1P-E2P transition of Ca<sup>2+</sup>-ATPase.

Kobayashi, Chigusa; Matsunaga, Yasuhiro; Jung, Jaewoon; Sugita, Yuji · Proc Natl Acad Sci U S A · 2021

basic_science · Level V

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Abstract

Sarcoplasmic reticulum (SR) Ca<sup>2+</sup>-ATPase transports two Ca<sup>2+</sup> ions from the cytoplasm to the SR lumen against a large concentration gradient. X-ray crystallography has revealed the atomic structures of the protein before and after the dissociation of Ca<sup>2+</sup>, while biochemical studies have suggested the existence of intermediate states in the transition between E1P⋅ADP⋅2Ca<sup>2+</sup> and E2P. Here, we explore the pathway and free energy profile of the transition using atomistic molecular dynamics simulations with the mean-force string method and umbrella sampling. The simulations suggest that a series of structural changes accompany the ordered dissociation of ADP, the A-domain rotation, and the rearrangement of the transmembrane (TM) helices. The luminal gate then opens to release Ca<sup>2+</sup> ions toward the SR lumen. Intermediate structures on the pathway are stabilized by transient sidechain interactions between the A- and P-domains. Lipid molecules between TM helices play a key role in the stabilization. Free energy profiles of the transition assuming different protonation states suggest rapid exchanges between Ca<sup>2+</sup> ions and protons when the Ca<sup>2+</sup> ions are released toward the SR lumen.

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