Basavalingappa Vasantha, Guterman Tom, Tang Yiming, Nir Sivan, Lei Jiangtao, Chakraborty Priyadarshi, Schnaider Lee, Reches Meital, Wei Guanghong, Gazit Ehud
Department of Molecular Microbiology and Biotechnology George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv 69978 Israel.
Department of Physics State Key Laboratory of Surface Physics Key Laboratory for Computational Physical Sciences (MOE), and Collaborative Innovation Center of Advanced Microstructures (Nanjing) Fudan University Shanghai 200433 P. R. China.
Adv Sci (Weinh). 2019 Apr 19;6(12):1900218. doi: 10.1002/advs.201900218. eCollection 2019 Jun 19.
Peptidomimetic low-molecular-weight hydrogelators, a class of peptide-like molecules with various backbone amide modifications, typically give rise to hydrogels of diverse properties and increased stability compared to peptide hydrogelators. Here, a new peptidomimetic low-molecular-weight hydrogelator is designed based on the well-studied -fluorenylmethoxycarbonyl diphenylalanine (Fmoc-FF) peptide by replacing the amide bond with a frequently employed amide bond surrogate, the urea moiety, aiming to increase hydrogen bonding capabilities. This designed ureidopeptide, termed Fmoc-Phe-NHCONH-Phe-OH (Fmoc-FuF), forms hydrogels with improved mechanical properties, as compared to those formed by the unmodified Fmoc-FF. A combination of experimental and computational structural methods shows that hydrogen bonding and aromatic interactions facilitate Fmoc-FuF gel formation. The Fmoc-FuF hydrogel possesses properties favorable for biomedical applications, including shear thinning, self-healing, and in vitro cellular biocompatibility. Additionally, the Fmoc-FuF, but not Fmoc-FF, hydrogel presents a range of functionalities useful for other applications, including antifouling, slow release of urea encapsulated in the gel at a high concentration, selective mechanical response to fluoride anions, and reduction of metal ions into catalytic nanoparticles. This study demonstrates how a simple backbone modification can enhance the mechanical properties and functional scope of a peptide hydrogel.
拟肽类低分子量水凝胶剂是一类具有各种主链酰胺修饰的肽样分子,与肽水凝胶剂相比,通常会产生具有不同性质和更高稳定性的水凝胶。在此,基于经过充分研究的芴甲氧羰基二苯基丙氨酸(Fmoc-FF)肽设计了一种新型拟肽类低分子量水凝胶剂,通过用常用的酰胺键替代物脲部分取代酰胺键,旨在增强氢键能力。这种设计的脲肽,称为Fmoc-Phe-NHCONH-Phe-OH(Fmoc-FuF),与未修饰的Fmoc-FF形成的水凝胶相比,形成了具有改善机械性能的水凝胶。实验和计算结构方法的结合表明,氢键和芳香相互作用促进了Fmoc-FuF凝胶的形成。Fmoc-FuF水凝胶具有有利于生物医学应用的特性,包括剪切变稀、自愈和体外细胞生物相容性。此外,Fmoc-FuF水凝胶而非Fmoc-FF水凝胶具有一系列对其他应用有用的功能,包括防污、高浓度封装在凝胶中的尿素的缓释、对氟阴离子的选择性机械响应以及将金属离子还原为催化纳米颗粒。这项研究证明了简单的主链修饰如何能够增强肽水凝胶的机械性能和功能范围。