One‐Pot, Open‐Air Synthesis of Flexible and Degradable Multifunctional Polymer Composites with Adhesion, Water Resistance, Self‐Healing, Facile Drug Loading, and Sustained Release Properties
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Published:2023-01-17
Issue:4
Volume:23
Page:
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ISSN:1616-5187
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Container-title:Macromolecular Bioscience
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language:en
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Short-container-title:Macromolecular Bioscience
Author:
Huang Wen12ORCID,
Yang Guang1,
Xu Qingbo1,
Zhan Meixiao1,
Yao Lijuan1,
Li Honghui1,
Xiao Fengfeng1,
Chen Zirun3,
Zhao Xiaoguang1,
Li Wenting1,
Zhao Wei1,
Zhang Fujun2,
Li Yong1,
Lu Ligong1
Affiliation:
1. Zhuhai Interventional Medical Center, Zhuhai Precision Medical Center, Zhuhai People's Hospital, Zhuhai Hospital Affiliated with Jinan University Guangdong Provincial Key Laboratory of Tumor Interventional Diagnosis and Treatment Zhuhai 519000 P. R. China
2. Sun Yat‐sen University Cancer Center, State Key Laboratory of Oncology in South China Collaborative Innovation Center for Cancer Medicine Guangzhou 510060 P. R. China
3. Guangxi Key Laboratory of Green Chemical Materials and Safety Technology Beibu Gulf University Qinzhou 535011 P. R. China
Abstract
AbstractDeveloping proper wound management via wound dressings represents a global challenge. Ideal wound dressings shall encompass multiple integrated functionalities for variable, complex scenarios; however, this is challenging due to the complex molecular design and synthesis process. Herein, polymer composites, cross‐linked poly(styrene oxide‐co‐hexaphenylcyclotrisiloxane)/crosslinked poly(hexaphenylcyclotrisiloxane) (cP(SO‐co‐HPCTS)/cPHPCTS) with multiple functionalities are prepared by a one‐step, open‐air method using catalytic ring‐opening polymerization. The introduction of a mobile polymer cP(SO‐co‐HPCTS) endows the composite with good flexibility and self‐healing properties at human body temperature. The hydrophobic groups in the main chain provide hydrophobicity and good water resistance, while the hydroxyl groups contained in the end groups enable good adhesion properties. Drugs can be efficiently loaded by blending and then sustainably release from the polymer composite. The material can rapidly degrade in a tetrahydrofuran solution of tetrabutylammonium fluoride due to its SiOSi bonds. The facile, one‐step, open‐air synthesis procedure and multiple functional properties integrated into the composites provide good prospects for their extensive application and batch production as wound dressing materials.
Funder
National Key Research and Development Program of China
National Natural Science Foundation of China
Subject
Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology