Misra Rajkumar, Tang Yiming, Chen Yujie, Chakraborty Priyadarshi, Netti Francesca, Vijayakanth Thangavel, Shimon Linda J W, Wei Guanghong, Adler-Abramovich Lihi
Department of Oral Biology, The Goldschleger School of Dental Medicine, Sackler Faculty of Medicine, the Center for Nanoscience and Nanotechnology, the Center for the Physics and Chemistry of Living Systems, Tel-Aviv University, Tel Aviv, 69978, Israel.
Dept. of Med. Chem, NIPER Mohali, S.A.S. Nagar (Mohali), 160062, India.
Macromol Rapid Commun. 2022 Oct;43(19):e2200223. doi: 10.1002/marc.202200223. Epub 2022 Aug 12.
Ordered supramolecular hydrogels assembled by modified aromatic amino acids often exhibit low mechanical rigidity. Aiming to stabilize the hydrogel and understand the impact of conformational freedom and hydrophobicity on the self-assembly process, two building blocks based on 9-fluorenyl-methoxycarbonyl-phenylalanine (Fmoc-Phe) gelator which contain two extra methylene units in the backbone, generating Fmoc-γPhe and Fmoc-(3-hydroxy)-γPhe are designed. Fmoc-γPhe spontaneously assembled in aqueous media forming a hydrogel with exceptional mechanical and thermal stability. Moreover, Fmoc-(3-hydroxy)-γPhe, with an extra backbone hydroxyl group decreasing its hydrophobicity while maintaining some molecular flexibility, self-assembled into a transient fibrillar hydrogel, that later formed microcrystalline aggregates through a phase transition. Molecular dynamics simulations and single crystal X-ray analyses reveal the mechanism underlying the two residues' distinct self-assembly behaviors. Finally, Fmoc-γPhe and Fmoc-(3-OH)-γPhe co-assembly to form a supramolecular hydrogel with notable mechanical properties are demonstrated. It has been believed that the understanding of the structure-assembly relationship will enable the design of new functional amino acid-based hydrogels.
由修饰的芳香族氨基酸组装而成的有序超分子水凝胶通常表现出较低的机械刚性。为了稳定水凝胶并了解构象自由度和疏水性对自组装过程的影响,设计了两种基于9-芴甲氧羰基苯丙氨酸(Fmoc-Phe)凝胶剂的构建单元,它们在主链中含有两个额外的亚甲基单元,分别生成Fmoc-γPhe和Fmoc-(3-羟基)-γPhe。Fmoc-γPhe在水性介质中自发组装形成具有出色机械和热稳定性的水凝胶。此外,Fmoc-(3-羟基)-γPhe带有一个额外的主链羟基,降低了其疏水性,同时保持了一定的分子柔韧性,自组装成一种瞬态纤维状水凝胶,随后通过相变形成微晶聚集体。分子动力学模拟和单晶X射线分析揭示了这两个残基不同自组装行为背后的机制。最后,证明了Fmoc-γPhe和Fmoc-(3-OH)-γPhe共组装形成具有显著机械性能的超分子水凝胶。人们认为,对结构-组装关系的理解将有助于设计新型功能性氨基酸基水凝胶。