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. 2022 Apr 24;65(6):1010–1075. doi: 10.1007/s11426-022-1243-5

Biomedical polymers: synthesis, properties, and applications

Wei-Hai Chen 1, Qi-Wen Chen 1, Qian Chen 2, Chunyan Cui 3, Shun Duan 4, Yongyuan Kang 5, Yang Liu 6, Yun Liu 7,8, Wali Muhammad 5, Shiqun Shao 9,10, Chengqiang Tang 11, Jinqiang Wang 7,8, Lei Wang 12, Meng-Hua Xiong 13, Lichen Yin 14, Kuo Zhang 12, Zhanzhan Zhang 6, Xu Zhen 15, Jun Feng 1,, Changyou Gao 5,, Zhen Gu 7,8,, Chaoliang He 16,, Jian Ji 5,, Xiqun Jiang 15,, Wenguang Liu 3,, Zhuang Liu 2,, Huisheng Peng 11,, Youqing Shen 9,10,, Linqi Shi 6,, Xuemei Sun 11,, Hao Wang 12,, Jun Wang 13,, Haihua Xiao 17,, Fu-Jian Xu 4,, Zhiyuan Zhong 18,19,, Xian-Zheng Zhang 1,, Xuesi Chen 16,
PMCID: PMC9050484  PMID: 35505924

Abstract

Biomedical polymers have been extensively developed for promising applications in a lot of biomedical fields, such as therapeutic medicine delivery, disease detection and diagnosis, biosensing, regenerative medicine, and disease treatment. In this review, we summarize the most recent advances in the synthesis and application of biomedical polymers, and discuss the comprehensive understanding of their property-function relationship for corresponding biomedical applications. In particular, a few burgeoning bioactive polymers, such as peptide/biomembrane/microorganism/cell-based biomedical polymers, are also introduced and highlighted as the emerging biomaterials for cancer precision therapy. Furthermore, the foreseeable challenges and outlook of the development of more efficient, healthier and safer biomedical polymers are discussed. We wish this systemic and comprehensive review on highlighting frontier progress of biomedical polymers could inspire and promote new breakthrough in fundamental research and clinical translation. graphic file with name 11426_2022_1243_Fig1_HTML.jpg

Keywords: biomedical polymer, nanomedicine, cancer therapy, drug delivery, bioimaging and biosensing, tissue engineering, regenerative medicine, cytotoxicity, biocompatibility

Acknowledgements

This work was supported by the National Natural Science Foundation of China (52073218, 22135005, 51873162, 51933006, 51988102, 52122310, 22075050, 51833008, 51733006, 51733001, 52122304), Jiangsu Province Science Foundation for Youths (BK20200241), Science and Technology Commission of Shanghai Municipality (20JC1414902, 21511104900), Shanghai Municipal Education Commission (2017-01-07-00-07-E00062), the National Key Research and Development Program (2021YFA1201200) of China, and the Zhejiang Provincial Key Research and Development Program (2020C01123).

Footnotes

Conflict of interest

The authors declare no conflict of interest.

Contributor Information

Jun Feng, Email: fengjun@whu.edu.cn.

Changyou Gao, Email: cygao@zju.edu.cn.

Zhen Gu, Email: guzhen@zju.edu.cn.

Chaoliang He, Email: clhe@ciac.ac.cn.

Jian Ji, Email: jijian@zju.edu.cn.

Xiqun Jiang, Email: jiangx@nju.edu.cn.

Wenguang Liu, Email: wgliu@tju.edu.cn.

Zhuang Liu, Email: zliu@suda.edu.cn.

Huisheng Peng, Email: penghs@fudan.edu.cn.

Youqing Shen, Email: shenyq@zju.edu.cn.

Linqi Shi, Email: lqshi@nankai.edu.cn.

Xuemei Sun, Email: sunxm@fudan.edu.cn.

Hao Wang, Email: wanghao@nanoctr.cn.

Jun Wang, Email: mcjwang@scut.edu.cn.

Haihua Xiao, Email: hhxiao@iccas.ac.cn.

Fu-Jian Xu, Email: xufj@mail.buct.edu.cn.

Zhiyuan Zhong, Email: zyzhong@suda.edu.cn.

Xian-Zheng Zhang, Email: xz-zhang@whu.edu.cn.

Xuesi Chen, Email: xschen@ciac.ac.cn.

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