Wang Xianheng, Zhang Jianhua, Li Haotian, Zhang Rong, Yang Xianxian, Li Wenjing, Li Zhen, Gu Zhipeng, Li Yiwen
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.
College of Pharmacy, Dalian Medical University, Dalian 116044, China.
ACS Appl Mater Interfaces. 2024 May 1;16(17):22493-22503. doi: 10.1021/acsami.4c01513. Epub 2024 Apr 22.
Poly(levodopa) nanoparticles (P(l-DOPA) NPs) are another kind of melanin mimetic besides well-established polydopamine nanoparticles (PDA NPs). Due to the presence of carboxyl groups, the oxidative polymerization of l-DOPA to obtain particles was not as efficient as that of dopamine. Several established methods toward P(l-DOPA) NP fabrication do not combine convenience, morphological regularity, size controllability, low cost, and adaptability to metal-free application scenarios. In this work, P(l-DOPA) NPs were successfully prepared in hot water with the assistant of organic quaternary ammonium, due to the extra physical cross-linking mediated by cations. The employed physical interactions could also be affected by quaternary ammonium structure (, number of cation heads, length of alkyl chain) to achieve different polymerization acceleration effects. The obtained P(l-DOPA) NPs retained superior photothermal properties and outperformed PDA-based melanin materials. Furthermore, P(l-DOPA) NPs were used in photothermal tumor therapy and showed better efficacy. This study offers new insights into the synthesis of melanin-like materials, as well as new understanding of the interaction between quaternary ammonium and bioinspired polyphenolic materials.
聚左旋多巴纳米颗粒(P(l-DOPA) NPs)是除了成熟的聚多巴胺纳米颗粒(PDA NPs)之外的另一种黑色素模拟物。由于存在羧基,左旋多巴氧化聚合以获得颗粒的效率不如多巴胺。几种已确立的制备P(l-DOPA) NPs的方法在便利性、形态规则性、尺寸可控性、低成本以及对无金属应用场景的适应性方面没有兼顾。在这项工作中,由于阳离子介导的额外物理交联,在有机季铵的辅助下于热水中成功制备了P(l-DOPA) NPs。所采用的物理相互作用也会受到季铵结构(阳离子头数量、烷基链长度)的影响,以实现不同的聚合加速效果。所获得的P(l-DOPA) NPs保留了优异的光热性能,并且优于基于PDA的黑色素材料。此外,P(l-DOPA) NPs被用于光热肿瘤治疗并显示出更好的疗效。这项研究为类黑色素材料的合成提供了新的见解,以及对季铵与仿生多酚材料之间相互作用的新认识。