凝聚
材料科学
胶粘剂
吸附
石英晶体微天平
蛋白质吸附
润湿
聚合物
化学工程
肽
离子键合
粘附
纳米技术
有机化学
化学
复合材料
图层(电子)
离子
工程类
生物化学
作者
Wei Wei,Luigi Petrone,YerPeng Tan,Hao Cai,Jacob N. Israelachvili,Ali Miserez,J. Herbert Waite
标识
DOI:10.1002/adfm.201600210
摘要
Water hampers the formation of strong and durable bonds between adhesive polymers and solid surfaces, in turn hindering the development of adhesives for biomedical and marine applications. Inspired by mussel adhesion, a mussel foot protein homologue (mfp3S‐pep) is designed, whose primary sequence is designed to mimic the pI, polyampholyte, and hydrophobic characteristics of the native protein. Noticeably, native protein and synthetic peptide exhibit similar abilities to self‐coacervate at given pH and ionic strength. 3,4‐dihydroxy‐ l ‐phenylalanine (Dopa) proves necessary for irreversible peptide adsorption to both TiO 2 (anatase) and hydroxyapatite (HAP) surfaces, as confirmed by quartz crystal microbalance measurements, with the coacervate showing superior adsorption. The adsorption of Dopa‐containing peptides is investigated by attenuated total reflection infrared spectroscopy, revealing initially bidentate coordinative bonds on TiO 2 , followed by H‐bonded and eventually long‐ranged electrostatic and Van der Waals interactions. On HAP, mfp3s‐pep‐3Dopa adsorption occurs predominantly via H‐bond and outersphere complexes of the catechol groups. Importantly, only the Dopa‐bearing compounds are able to remove interfacial water from the target surfaces, with the coacervate achieving the highest water displacement arising from its superior wetting properties. These findings provide an impetus for developing coacervated Dopa‐functionalized peptides/polymers adhesive formulations for a variety of applications on wet polar surfaces.
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