TY - JOUR
T1 - Salt-responsive polyzwitterionic materials for surface regeneration between switchable fouling and antifouling properties
AU - Chen, Hong
AU - Yang, Jintao
AU - Xiao, Shengwei
AU - Hu, Rundong
AU - Bhaway, Sarang M.
AU - Vogt, Bryan D.
AU - Zhang, Mingzhen
AU - Chen, Qiang
AU - Ma, Jie
AU - Chang, Yung
AU - Li, Lingyan
AU - Zheng, Jie
N1 - Funding Information:
J.Y. is grateful for the financial support from Natural Science Foundation of China under Grant (Nos. 51273178 , 21274131 , and 51203139 ), Natural Science Foundation of Zhejiang Province ( LY14E030005 and LY16E030012 ), and Zhejiang Top Priority Discipline of Textile Science and Engineering ( 2015KF06 ).
Funding Information:
This work was supported, in part, by NSF-CAREER Award CBET-0952624 and NSF-CBET-1158447 and Alzheimer Associate – New Investigator Research Grant (2015-NIRG-341372).
Publisher Copyright:
© 2016 Acta Materialia Inc.
PY - 2016/8/1
Y1 - 2016/8/1
N2 - Development of smart regenerative surface is a highly challenging but important task for many scientific and industrial applications. Specifically, very limited research efforts were made for surface regeneration between bio-adhesion and antifouling properties, because bioadhesion and antifouling are the two highly desirable but completely opposite properties of materials. Herein, we developed salt-responsive polymer brushes of poly(3-(1-(4-vinylbenzyl)-1H-imidazol-3-ium-3-yl) propane-1-sulfonate) (polyVBIPS), which can be switched reversibly and repeatedly between protein capture/release and surface wettability in a controllable manner. PolyVBIPS brush has demonstrated its switching ability to resist both protein adsorption from 100% blood plasma/serum and bacterial attachment in multiple cycles. PolyVBIPS brush also exhibits reversible surface wettability from ∼40° to 25° between in PBS and in 1 M NaCl solutions in multiple cycles. Overall, the salt-responsive behaviors of polyVBIPS brushes can be interpreted by the “anti-polyelectrolyte effect”, i.e. polyVBIPS brushes adopt a collapsed chain conformation at low ionic strengths to achieve surface adhesive, but an extended chain conformation at high ionic strength to realize antifouling properties. We expect that polyVBIPS will provide a simple, robust, and promising system for the fabrication of smart surfaces with biocompatible, reliable, and regenerative properties. Statement of Significance Unlike many materials with “one-time switching” capability for surface regeneration, we developed a new regenerative surface of zwitterionic polymer brush, which exhibits a reversible salt-induced switching property between a biomolecule-adhesive state and a biomolecule repellent state in complex media for multiple cycles. PolyVBIPS is easily synthesized and can be straightforward coated on the surface, which provides a simple, robust, and promising system for the fabrication of smart surfaces with biocompatible, reliable, regenerative properties.
AB - Development of smart regenerative surface is a highly challenging but important task for many scientific and industrial applications. Specifically, very limited research efforts were made for surface regeneration between bio-adhesion and antifouling properties, because bioadhesion and antifouling are the two highly desirable but completely opposite properties of materials. Herein, we developed salt-responsive polymer brushes of poly(3-(1-(4-vinylbenzyl)-1H-imidazol-3-ium-3-yl) propane-1-sulfonate) (polyVBIPS), which can be switched reversibly and repeatedly between protein capture/release and surface wettability in a controllable manner. PolyVBIPS brush has demonstrated its switching ability to resist both protein adsorption from 100% blood plasma/serum and bacterial attachment in multiple cycles. PolyVBIPS brush also exhibits reversible surface wettability from ∼40° to 25° between in PBS and in 1 M NaCl solutions in multiple cycles. Overall, the salt-responsive behaviors of polyVBIPS brushes can be interpreted by the “anti-polyelectrolyte effect”, i.e. polyVBIPS brushes adopt a collapsed chain conformation at low ionic strengths to achieve surface adhesive, but an extended chain conformation at high ionic strength to realize antifouling properties. We expect that polyVBIPS will provide a simple, robust, and promising system for the fabrication of smart surfaces with biocompatible, reliable, and regenerative properties. Statement of Significance Unlike many materials with “one-time switching” capability for surface regeneration, we developed a new regenerative surface of zwitterionic polymer brush, which exhibits a reversible salt-induced switching property between a biomolecule-adhesive state and a biomolecule repellent state in complex media for multiple cycles. PolyVBIPS is easily synthesized and can be straightforward coated on the surface, which provides a simple, robust, and promising system for the fabrication of smart surfaces with biocompatible, reliable, regenerative properties.
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U2 - 10.1016/j.actbio.2016.03.009
DO - 10.1016/j.actbio.2016.03.009
M3 - Article
C2 - 26965396
AN - SCOPUS:84960977596
SN - 1742-7061
VL - 40
SP - 62
EP - 69
JO - Acta Biomaterialia
JF - Acta Biomaterialia
ER -