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In Vitro and In Vivo Evaluation of Photocontrolled Biologically Active Compounds - Potential Drug Candidates for Cancer Photopharmacology
Published on: September 29, 2023
Encoding Biological Selectivity Through Positional Isomerism of Phosphindole Oxide AIEgens for Targeted Photodynamic
Jianqing Li1, Zeyan Zhuang1, Yiwen Liao2
1State Key Laboratory of Luminescent Materials and Devices, Key Laboratory of Luminescence from Molecular Aggregates of Guangdong Province, South China University of Technology, Guangzhou, China.
Abstract:
Discriminating biological targets via their intrinsic biophysical signatures offers a promising alternative to classical lock-and-key recognition, yet remains constrained by simplistic design. Herein, we present a programmable molecular strategy that leverages configurational isomerism on a phosphindole oxide (PIO) scaffold as a decisive variable for encoding biological selectivity. Strategic substitution at geometrically defined positions generates isomeric pairs with distinct conformational preferences, aqueous self-assembly behaviors, and surface electrostatic landscapes. These isomer-dependent divergences translate into sharply differentiated biological staining patterns. One isomer enables selective labeling of cancer over normal mammalian cells and preferential engagement with bacterial versus mammalian cells, while its counterpart functions as a broad-spectrum staining agent. By integrating with the inherent photodynamic activity of the PIO framework, we achieve effective tumor suppression and accelerated healing of infected wounds in vivo with favorable biosafety. This work establishes positional isomerism as a generalizable design dimension for encoding biophysical selectivity, providing molecular-level guidance for next-generation theranostic and precision medicine platforms.

