Structure-Dependent Water Responsiveness of Protein Block Copolymers

被引:0
|
作者
Kronenberg, Jacob [1 ]
Jung, Yeojin [2 ,3 ]
Chen, Jason [1 ]
Kulapurathazhe, Maria Jinu [1 ]
Britton, Dustin [1 ]
Kim, Seungri [2 ,3 ]
Chen, Xi [2 ,3 ,4 ]
Tu, Raymond S. [3 ]
Montclare, Jin Kim [1 ,5 ,6 ,7 ,8 ]
机构
[1] New York Univ, Tandon Sch Engn, Dept Chem & Biomol Engn, Brooklyn, NY 11201 USA
[2] City Univ New York, Adv Sci Res Ctr ASRC, Grad Ctr, New York, NY 10031 USA
[3] CUNY City Coll, Dept Chem Engn, New York, NY 10031 USA
[4] City Univ New York, Grad Ctr, PhD Programs Chem & Phys, New York, NY 10016 USA
[5] NYU, Dept Chem, New York, NY 10003 USA
[6] NYU, Coll Dent, Dept Biomat, New York, NY 10010 USA
[7] NYU, Grossman Sch Med, Dept Radiol, New York, NY 10016 USA
[8] NYU, Tandon Sch Engn, Dept Biomed Engn, Brooklyn, NY 11201 USA
来源
ACS APPLIED BIO MATERIALS | 2024年 / 7卷 / 06期
基金
美国国家科学基金会;
关键词
protein engineering; water-responsive materials; biomaterials; protein films; block copolymers;
D O I
10.1021/acsabm.4c00045
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Biological water-responsive (WR) materials are abundant in nature, and they are used as mechanical actuators for seed dispersal by many plants such as wheat awns and pinecones. WR biomaterials are of interest for applications as high-energy actuators, which can be useful in soft robotics or for capturing energy from natural water evaporation. Recent work on WR silk proteins has shown that beta-sheet nanocrystalline domains with high stiffness correlate with the high WR actuation energy density, but the fundamental mechanisms to drive water responsiveness in proteins remain poorly understood. Here, we design, synthesize, and study protein block copolymers consisting of two alpha-helical domains derived from cartilage oligomeric matrix protein coiled-coil (C) flanking an elastin-like peptide domain (E), namely, CEC. We use these protein materials to create WR actuators with energy densities that outperform mammalian muscle. To elucidate the effect of structure on WR actuation, CEC was compared to a variant, CECL44A, in which a point mutation disrupts the alpha-helical structure of the C domain. Surprisingly, CECL44A outperformed CEC, showing higher energy density and less susceptibility to degradation after repeated cycling. We show that CECL44A exhibits a higher degree of intermolecular interactions and is stiffer than CEC at high relative humidity (RH), allowing for less energy dissipation during water responsiveness. These results suggest that strong intermolecular interactions and the resulting, relatively steady protein structure are important for water responsiveness.
引用
收藏
页码:3714 / 3720
页数:7
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