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通过固态 NMR 光谱研究多价离子交联的藻酸盐凝胶的结构和动力学。

Structure and Dynamics of Alginate Gels Cross-Linked by Polyvalent Ions Probed via Solid State NMR Spectroscopy.

机构信息

Institute of Macromolecular Chemistry, Academy of Sciences of the Czech Republic , Heyrovsky sq. 2, 162 06 Prague 6, Czech Republic.

University of Veterinary and Pharmaceutical Sciences , Faculty of Pharmacy, Department of Pharmaceutics, Palackeho tr. 1946/1, 612 42 Brno, Czech Republic.

出版信息

Biomacromolecules. 2017 Aug 14;18(8):2478-2488. doi: 10.1021/acs.biomac.7b00627. Epub 2017 Jul 3.

DOI:10.1021/acs.biomac.7b00627
PMID:28636347
Abstract

Alginate gels are an outstanding biomaterial widely applicable in tissue engineering, medicine, and pharmacy for cell transplantation, wound healing and efficient bioactive agent delivery, respectively. This contribution provides new and comprehensive insight into the atomic-resolution structure and dynamics of polyvalent ion-cross-linked alginate gels in microbead formulations. By applying various advanced solid-state NMR (ssNMR) spectroscopy techniques, we verified the homogeneous distribution of the cross-linking ions in the alginate gels and the high degree of ion exchange. We also established that the two-component character of the alginate gels arises from the concentration fluctuations of residual water molecules that are preferentially localized along polymer chains containing abundant mannuronic acid (M) residues. These hydrated M-rich blocks tend to self-aggregate into subnanometer domains. The resulting coexistence of two types of alginate chains differing in segmental dynamics was revealed by H-C dipolar profile analysis, which indicated that the average fluctuation angles of the stiff and mobile alginate segments were about 5-9° or 30°, respectively. Next, the C CP/MAS NMR spectra indicated that the alginate polymer microstructure was strongly dependent on the type of cross-linking ion. The polymer chain regularity was determined to systematically decrease as the cross-linking ion radius decreased. Consistent with the H-H correlation spectra, regular structures were found for the gels cross-linked by relatively large alkaline earth cations (Ba, Sr, or Ca), whereas the alginate chains cross-linked by bivalent transition metal ions (Zn) and trivalent metal cations (Al) exhibited significant irregularities. Notably, however, the observed disordering of the alginate chains was exclusively attributed to the M residues, whereas the structurally well-defined gels all contained guluronic acid (G) residues. Therefore, a key role of the units in M-rich blocks as mediators promoting the self-assembly of alginate chains was experimentally confirmed. Finally, combining 2D Al 3Q/MAS NMR spectroscopy with density functional theory (DFT) calculations provided previously unreported insight into the structure of the Al cross-linking centers. Notably, even with a low residual amount of water, these cross-linking units adopt exclusively 6-fold octahedral coordination and exhibit significant motion, which considerably reduces quadrupolar coupling constants. Thus, the experimental strategy presented in this study provides a new perspective on cross-linked alginate structure and dynamics for which high-quality diffraction data at the atomic resolution level are inherently unavailable.

摘要

藻酸盐凝胶是一种出色的生物材料,广泛应用于组织工程、医学和药学领域,可用于细胞移植、伤口愈合和高效生物活性药物的输送。本研究提供了关于多价离子交联的藻酸盐凝胶在微球配方中原子分辨率结构和动力学的新的全面见解。通过应用各种先进的固态 NMR(ssNMR)光谱技术,我们验证了交联离子在藻酸盐凝胶中的均匀分布和高离子交换度。我们还发现,藻酸盐凝胶的二组分性质源于残留水分子浓度的波动,这些水分子优先定位在含有丰富甘露糖醛酸(M)残基的聚合物链中。这些水合的 M 丰富块倾向于自组装成亚纳米级域。通过 H-C 偶极轮廓分析揭示了两种类型的藻酸盐链在片段动力学上的共存,这表明刚性和移动的藻酸盐链段的平均波动角度分别约为 5-9°或 30°。接下来,C CP/MAS NMR 光谱表明,藻酸盐聚合物的微观结构强烈依赖于交联离子的类型。聚合物链的规整度被确定为随着交联离子半径的减小而系统降低。与 H-H 相关谱一致,发现用相对较大的碱土金属阳离子(Ba、Sr 或 Ca)交联的凝胶具有规则的结构,而用二价过渡金属离子(Zn)和三价金属阳离子(Al)交联的藻酸盐链则表现出显著的不规则性。然而,观察到的藻酸盐链的无序仅归因于 M 残基,而结构明确的凝胶都含有古洛糖醛酸(G)残基。因此,实验证实了 M 丰富块中的单元作为促进藻酸盐链自组装的介质的关键作用。最后,结合 2D Al 3Q/MAS NMR 光谱和密度泛函理论(DFT)计算,提供了以前未报道的关于 Al 交联中心结构的见解。值得注意的是,即使残留水量很低,这些交联单元也仅采用 6 配位八面体配位,并且表现出显著的运动,这大大降低了四极偶合常数。因此,本研究提出的实验策略为交联藻酸盐结构和动力学提供了新的视角,对于原子分辨率水平的高质量衍射数据,这些结构和动力学本质上是无法获得的。

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