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寡腺嘌呤和三聚氰胺超分子 DNA 水凝胶具有耐酸性和生理 pH 响应性。

Oligo-Adenine and Cyanuric Acid Supramolecular DNA-Based Hydrogels Exhibiting Acid-Resistance and Physiological pH-Responsiveness.

机构信息

Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore 138634, Republic of Singapore.

State Key Laboratory Physical Chemistry of Solid Surfaces and Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Jun 5;16(22):29235-29247. doi: 10.1021/acsami.4c03834. Epub 2024 May 20.

Abstract

Expanding the functions and applications of DNA by integrating noncanonical bases and structures into biopolymers is a continuous scientific effort. An adenine-rich strand (A-strand) is introduced as functional scaffold revealing, in the presence of the low-molecular-weight cofactor cyanuric acid (CA, p 6.9), supramolecular hydrogel-forming efficacies demonstrating multiple pH-responsiveness. At pH 1.2, the A-strand transforms into a parallel A-motif duplex hydrogel cross-linked by AH-HA units due to the protonation of adenine (p 3.5). At pH 5.2, and in the presence of coadded CA, a helicene-like configuration is formed between adenine and protonated CA, generating a parallel A-CA triplex cross-linked hydrogel. At pH 8.0, the hydrogel undergoes transition into a liquid state by deprotonation of CA cofactor units and disassembly of A-CA triplex into its constituent components. Density functional theory calculations and molecular dynamics simulations, supporting the structural reconfigurations of A-strand in the presence of CA, are performed. The sequential pH-stimulated hydrogel states are rheometrically characterized. The hydrogel framework is loaded with fluorescein-labeled insulin, and the pH-stimulated release of insulin from the hydrogel across the pH barriers present in the gastrointestinal tract is demonstrated. The results provide principles for future application of the hydrogel for oral insulin administration for diabetes.

摘要

通过将非规范碱基和结构整合到生物聚合物中来扩展 DNA 的功能和应用是一项持续的科学努力。引入富含腺嘌呤的链(A-链)作为功能支架,在低分子量辅因子氰尿酸(CA,p 6.9)存在下,展示超分子水凝胶形成功效,表现出多种 pH 响应性。在 pH 1.2 下,由于腺嘌呤的质子化(p 3.5),A-链转变为平行 A-基序双螺旋水凝胶,由 AH-HA 单元交联。在 pH 5.2 下,并在添加 CA 的情况下,腺嘌呤和质子化 CA 之间形成类似螺旋的构象,生成平行 A-CA 三螺旋交联水凝胶。在 pH 8.0 下,通过 CA 辅因子单元的去质子化和 A-CA 三螺旋分解为其组成成分,水凝胶发生从凝胶态到液态的转变。进行了密度泛函理论计算和分子动力学模拟,以支持 CA 存在下 A-链的结构重排。顺序 pH 刺激水凝胶状态进行了流变学表征。将荧光素标记的胰岛素负载到水凝胶框架中,并证明了胰岛素从水凝胶在胃肠道中存在的 pH 屏障处的 pH 刺激释放。结果为水凝胶在糖尿病口服胰岛素给药中的未来应用提供了原则。

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