Department of Chemical and Biological Engineering University of British Columbia, 2360 East Mall, Vancouver, British Columbia V6T 1Z3, Canada.
Laboratory of Sustainable and Catalytic Processing, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne 1015, Switzerland.
Biomacromolecules. 2022 May 9;23(5):1949-1957. doi: 10.1021/acs.biomac.1c01591. Epub 2022 Apr 1.
Alginic acid, a naturally occurring anionic polyelectrolyte, forms strong physically cross-linked hydrogels in the presence of metal cations. The latter engage in electrostatic interactions that compete with intra- and intermolecular hydrogen bonds, determining the gel structure and properties of the system in aqueous media. In this study, we use all-atom molecular dynamics simulations to systematically analyze the interactions between alginic acid chains and Na and Ca counterions. The formed alginates originate from the competition of intramolecular hydrogen bonding and water coordination around the polyelectrolyte. In contrast to the established interpretation, we show that calcium cations strongly bind to alginate by disrupting hydrogen bonds within (1 → 4)-linked β-d-mannuronate (M) residues. On the other hand, Na cations enhance intramolecular hydrogen bonds that stabilize a left-hand, fourfold helical chain structure in poly-M alginate, resulting in stiffer chains. Hence, the traditionally accepted flexible flat-chain model for poly-M sequence is not valid in the presence of Na. The two cations have a distinct effect on water coordination around alginate and therefore on its solubility. While Ca disrupts water coordination directly around the alginate chains, mobile Na cations significantly disrupt the second hydration layer.
海藻酸是一种天然存在的阴离子型聚电解质,在金属阳离子存在下形成强物理交联水凝胶。后者通过静电相互作用与分子内和分子间氢键竞争,从而确定水凝胶结构和系统在水介质中的性质。在这项研究中,我们使用全原子分子动力学模拟来系统地分析海藻酸链与 Na 和 Ca 反离子之间的相互作用。形成的海藻酸盐源于分子内氢键和围绕聚电解质的水分子配位之间的竞争。与已建立的解释相反,我们表明,钙离子通过破坏(1→4)-连接的β-d-甘露糖醛酸(M)残基内的氢键强烈结合到海藻酸盐上。另一方面,Na 阳离子增强了分子内氢键,稳定了聚-M 海藻酸盐中的左手四螺旋链结构,导致链更硬。因此,在存在 Na 的情况下,传统上接受的聚-M 序列的柔性平面链模型是无效的。两种阳离子对海藻酸盐周围水分子的配位有明显影响,因此对其溶解度也有影响。虽然 Ca 直接破坏海藻酸盐链周围的水分子配位,但可移动的 Na 阳离子会显著破坏第二水合层。