

FOLLOWUS
a.State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China
b.Key Laboratory for Green Processing of Chemical Engineering of Xinjiang Bingtuan, School of Chemistry and Chemical Engineering, Shihezi University, Shihezi 832003, China
ZhuMF@dhu.edu.cn
Received:27 November 2022,
Revised:2022-12-10,
Accepted:12 December 2022,
Online First:10 February 2023,
Published:01 May 2023
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Ma, Z. Y.; Li, D. Y.; Jia, X.; Wang, R. L.; Zhu, M. F. Recent advances in bio-inspired versatile polydopamine platforms for “smart” cancer photothermal therapy.Chinese J. Polym. Sci.2023,41, 699–712
Zhi-Yuan Ma, Dan-Ya Li, Xin Jia, et al. Recent Advances in Bio-Inspired Versatile Polydopamine Platforms for “Smart” Cancer Photothermal Therapy[J]. Chinese Journal of Polymer Science, 2023, 41(5): 699-712.
Ma, Z. Y.; Li, D. Y.; Jia, X.; Wang, R. L.; Zhu, M. F. Recent advances in bio-inspired versatile polydopamine platforms for “smart” cancer photothermal therapy.Chinese J. Polym. Sci.2023,41, 699–712 DOI: 10.1007/s10118-023-2926-2.
Zhi-Yuan Ma, Dan-Ya Li, Xin Jia, et al. Recent Advances in Bio-Inspired Versatile Polydopamine Platforms for “Smart” Cancer Photothermal Therapy[J]. Chinese Journal of Polymer Science, 2023, 41(5): 699-712. DOI: 10.1007/s10118-023-2926-2.
Taking advantage of the surface modification strategy of mussel-inspired dopamine chemistry and its excellent photothermal conversion effect
polydopamine (Pdop) represents a versatile photothermal therapy platform
providing strategies and methods for the construction of novel Pdop-functionalized photothermal conversion materials.
Although photothermal therapy (PTT) has been developed for fighting cancers
the degradative
toxic
and metabolic nature of photothermal conversion materials (PCMs) has prevented them from being clinically implemented. Taking advantage of the surface modification strategy of mussel-inspired dopamine chemistry and its excellent photothermal conversion effect
polydopamine (Pdop) represents a versatile PTT platform
providing strategies and methods for the construction of novel Pdop-functionalized PCMs. Thanks to its adhesion and secondary reactivity
Pdop can be deposited on virtually all substrates to improve their bioavailability and biocompatibility. Pdop-based PCMs could not be only functionalized with small biomolecules
via
chemical bonds and/or noncovalent force but also modified with functional polymers
via
either the “grafting to” or “grafting from” method. This review highlights the synthetic methods
therapeutic strategies
and designs of PCMs based on Pdop in recent years to explore its scope and limitations.
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