4.7 Article

A Facile Fabrication of Lysosome-Targeting pH Fluorescent Nanosensor Based on PEGylated Polyester Block Copolymer

Journal

POLYMERS
Volume 14, Issue 12, Pages -

Publisher

MDPI
DOI: 10.3390/polym14122420

Keywords

ring-opening alternating copolymerization; PEGylated polyester copolymer; rhodamine; fluorescent pH nanosensor; lysosomal pH detection

Funding

  1. Science and Technology Project of Henan Province [202102210029]
  2. National Science and Technology Major Project of the Ministry of Science and Technology of China [2016ZX05046]

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In this study, a novel fluorescent pH nanosensor was fabricated using ring-opening copolymerization, side-group modification, and self-assembly. The polymeric nanosensor demonstrated excellent sensitivity and selectivity towards H+ ions, and displayed good pH sensing capability for lysosomes in living cells.
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 t-BuP1/Et3B 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.

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