Nelli Srinivasa Rao, Chakravarthy Rajan Deepan, Mohiuddin Mohammed, Lin Hsin-Chieh
Department of Materials Science and Engineering, National Chiao Tung University Hsinchu 300 Taiwan Republic of China
RSC Adv. 2018 Apr 19;8(27):14753-14759. doi: 10.1039/c8ra00929e. eCollection 2018 Apr 18.
This report describes the two component self-assembly of π-capped amino acid hydrogelators (serine (S), aspartic acid (D), glutamic acid (E) or lysine (K)) prepared from pyrene (Py) based donor and naphthalenediimide (NDI) based acceptor molecules. The co-assembly can be triggered to form hydrogels by varying the pH conditions and the major driving forces behind the hydrogelation were found to be the formation of a strong charge-transfer (CT) complex and hydrogen bonding interactions at suitable pH conditions. The NDI-Py blends with matched donor/acceptor amino acid pairs undergo self-assembly under acidic pH conditions, whereas the blend (NDI-S + Py-K) with a mismatched amino acid pair forms a stable hydrogel under physiological pH conditions. UV-Vis, FTIR and rheological studies clearly indicate the formation and the stability of these CT-induced hydrogels. These hydrogels are of nanofibrous morphology with an average diameter of about 6-9 nm as evidenced by TEM analysis. In addition, this novel NDI-Py mixed component system exhibited good biocompatibility towards PC3 cells. Overall, since hydrogels based on CT-mediated two-component assemblies are very rare, our newly discovered NDI-Py hydrogels provide chemical insights into the design of a CT-induced hydrogelator and might facilitate various applications in biomedical engineering.
本报告描述了由芘(Py)基供体分子和萘二亚胺(NDI)基受体分子制备的π-封端氨基酸水凝胶剂(丝氨酸(S)、天冬氨酸(D)、谷氨酸(E)或赖氨酸(K))的双组分自组装。通过改变pH条件可触发共组装形成水凝胶,并且发现在合适的pH条件下,水凝胶化背后的主要驱动力是形成强电荷转移(CT)络合物和氢键相互作用。具有匹配供体/受体氨基酸对的NDI-Py共混物在酸性pH条件下进行自组装,而具有不匹配氨基酸对的共混物(NDI-S + Py-K)在生理pH条件下形成稳定的水凝胶。紫外可见光谱、傅里叶变换红外光谱和流变学研究清楚地表明了这些CT诱导水凝胶的形成和稳定性。透射电镜分析证明,这些水凝胶具有纳米纤维形态,平均直径约为6-9nm。此外,这种新型的NDI-Py混合组分体系对PC3细胞表现出良好的生物相容性。总体而言,由于基于CT介导的双组分组装的水凝胶非常罕见,我们新发现的NDI-Py水凝胶为CT诱导水凝胶剂的设计提供了化学见解,并可能促进生物医学工程中的各种应用。