Wang Lijun, Zhou Qiang, Yang Haiyang
School of Materials Science and Engineering, Henan Joint International Research Laboratory of Nanocomposite Sensing Materials, Anyang Institute of Technology, Anyang 455000, China.
CAS Key Laboratory of Soft Matter Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei 230026, China.
Polymers (Basel). 2022 Jun 15;14(12):2420. doi: 10.3390/polym14122420.
A novel lysosome-targeting PEGylated polyester-based fluorescent pH nanosensor is fabricated by the combination of ring-opening copolymerization (ROCOP), side-group modification and subsequent self-assembly. First, a key target amphiphilic copolymer carrier for rhodamine (Rh) pH indicator is synthesized in a facile manner by the ROCOP of phthalic anhydride with allyl glycidyl ether using mPEG-OH and -BuP/EtB as the macroinitiator and binary catalyst, respectively. Subsequently, Rh moieties are covalently attached on the polymer chain with controllable grafting degree via an efficient thiol-ene click reaction. Concurrently, the effect of catalyst systems and reaction conditions on the catalytic copolymerization performance is presented, and the quantitative introduction of Rh is described in detail. Owing to its amphiphilic characteristics, the rhodamine-functionalized polyester-based block copolymer can self-assemble into micelles. With the covalent incorporation of Rh moieties, the as-formed micelles exhibit excellent absorption and fluorescence-responsive sensitivity and selectivity towards H in the presence of various metal cations. Moreover, the as-prepared micelles with favorable water dispersibility, good pH sensitivity and excellent biocompatibility also display appreciable cell-membrane permeability, staining ability and pH detection capability for lysosomes in living cells. This work provides a new strategy for the facile synthesis of novel biocompatible polymeric fluorescent pH nanosensors for the fluorescence imaging of lysosomal pH changes.
通过开环共聚(ROCOP)、侧基修饰及随后的自组装相结合,制备了一种新型的靶向溶酶体的聚乙二醇化聚酯基荧光pH纳米传感器。首先,以mPEG-OH和-BuP/EtB分别作为大分子引发剂和二元催化剂,通过邻苯二甲酸酐与烯丙基缩水甘油醚的ROCOP,简便地合成了用于罗丹明(Rh)pH指示剂的关键目标两亲共聚物载体。随后,通过高效的硫醇-烯点击反应,将Rh部分以可控的接枝度共价连接到聚合物链上。同时,展示了催化剂体系和反应条件对催化共聚性能的影响,并详细描述了Rh的定量引入。由于其两亲特性,罗丹明功能化的聚酯基嵌段共聚物可自组装成胶束。随着Rh部分的共价掺入,形成的胶束在各种金属阳离子存在下对H表现出优异的吸收和荧光响应灵敏度及选择性。此外,所制备的具有良好水分散性、良好pH敏感性和优异生物相容性的胶束,对活细胞中的溶酶体也显示出可观的细胞膜通透性、染色能力和pH检测能力。这项工作为简便合成用于溶酶体pH变化荧光成像的新型生物相容性聚合物荧光pH纳米传感器提供了一种新策略。