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Molecular dynamics simulation of protein-mediated biomineralization of amorphous calcium carbonate

机译:蛋白质介导的无定形碳酸钙生物矿化的分子动力学模拟

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The protein-mediated biomineralization of calcium carbonate (CaCO _(3) ) in living organisms is primarily governed by critical interactions between the charged amino acids of the protein, solvent, calcium (Ca ~(2+) ) and carbonate (CO _(3) ~(2?) ) ions. The present article investigates the molecular mechanism of lysozyme-mediated nucleation of amorphous calcium carbonate (ACC) using molecular dynamics and metadynamics simulations. The results reveal that, by acting as nucleation sites, the positively charged side chains of surface-exposed arginine residues form hydrogen bonds with carbonates and promote aggregation of ions around them leading to the formation and growth of ACC on the protein surface. The newly formed ACC patches were found to be less hydrated due to ion aggregation-induced expulsion of water from the nucleation sites. Despite favorable electrostatic interactions of the negatively charged side chains of aspartate and glutamate with calcium ions, these residues contribute minimally to the growth of ACC on protein surface. The activation barrier for the growth of partially hydrated ACC patches on lysozymes was determined from the free energy profiles obtained from metadynamics simulations.
机译:蛋白质在生物体内介导的碳酸钙(CaCO _(3))的生物矿化作用主要受蛋白质,溶剂,钙(Ca〜(2+))和碳酸盐(CO _( 3)〜(2?))离子。本文使用分子动力学和元动力学模拟研究溶菌酶介导的无定形碳酸钙(ACC)成核的分子机理。结果表明,通过充当成核位点,表面暴露的精氨酸残基带正电的侧链与碳酸根形成氢键,并促进周围的离子聚集,从而导致ACC在蛋白质表面上形成和生长。发现由于离子聚集诱导的水从成核位置的排出,新形成的ACC贴片的水合较少。尽管天冬氨酸和谷氨酸的带负电的侧链与钙离子发生了有利的静电相互作用,但这些残基对蛋白质表面ACC的生长影响很小。根据代谢动力学模拟获得的自由能谱,确定了部分水合的ACC贴片在溶菌酶上生长的激活障碍。

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