| Literature DB >> 32319760 |
Peng Ren1,2, Jingtao Li3, Luyang Zhao1, Anhe Wang1, Meiyue Wang1,2, Jieling Li1, Honglei Jian1, Xiaoou Li3, Xuehai Yan1, Shuo Bai1,2.
Abstract
Dipeptide self-assembled hydrogels have potential biomedical applications because of their great biocompatibility, bioactivity, and tunable physicochemical properties, which can be modulated in the molecular level by design of amino acid sequences. Herein, a series of dipeptides (Fmoc-FL, -YL, -LL, and -YA) are designed to form shear-thinning hydrogels with self-healing and tunable mechanical properties by adjusting the synergetic effect of hydrophobic interactions (π-π stacking and hydrophobic effect) and hydrogen bonds of peptides through substitution of amino acid residues. The enhancement of hydrophobic interactions is a primary factor to promote mechanical rigidity of hydrogels, and strong hydrogen-bonding interactions between molecules contribute to the instantaneous self-healing property, which is supported by experimental studies (FTIR, CD, SEM, AFM, and rheology) and molecular dynamics simulations. The injectable dipeptide hydrogels were certified as an ideal endoscopic submucosal dissection filler to make operation convenient and secure in mice and living mini-pig's experiments with a longer duration time, higher stiffness, and lower inflammatory response than commercial clinical fillers.Entities:
Keywords: dipeptide; endoscopic submucosal dissection; self-assembly; self-healing; shear-thinning hydrogel
Year: 2020 PMID: 32319760 DOI: 10.1021/acsami.0c03038
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229