Dual-targeted 5-aminolevulinic acid derivatives with glutathione depletion function for enhanced photodynamic therapy

Ke Li1, Wenyi Dong2, Yinxing Miao1

  • 1NHC Key Laboratory of Nuclear Medicine, Jiangsu Key Laboratory of Molecular Nuclear Medicine, Jiangsu Institute of Nuclear Medicine, Wuxi 214063, PR China; Department of Radiopharmaceuticals, School of Pharmacy, Nanjing Medical University, Nanjing 211166, PR China.

Insights

This study introduces novel 5-aminolevulinic acid (ALA) derivatives that enhance photodynamic therapy (PDT) by targeting tumors and depleting glutathione (GSH). These compounds improve PDT efficacy and tumor selectivity for better cancer treatment outcomes.

Area of Science:

  • Biochemistry and Molecular Biology
  • Oncology
  • Photochemistry

Background:

  • Photodynamic therapy (PDT) uses photosensitizers like 5-aminolevulinic acid (ALA) to generate reactive oxygen species (ROS) for tumor cell death.
  • Current ALA-based PDT faces limitations including photosensitizer instability, lack of tumor selectivity, and reduced efficacy due to high intracellular glutathione (GSH) levels in tumors.
  • GSH can scavenge ROS, diminishing the effectiveness of PDT.

Purpose of the Study:

  • To develop multifunctional ALA derivatives that improve ALA-based PDT efficacy through dual-targeting and GSH depletion strategies.
  • To enhance tumor specificity and therapeutic outcomes of PDT by overcoming limitations of existing photosensitizers.

Main Methods:

  • Synthesized three novel ALA derivatives incorporating an ALA methyl ester (ALA-OMe) moiety, a biotin group for targeting, and a GSH-cleavable disulfide linker.
  • Evaluated compound stability under physiological conditions.
  • Conducted in vitro experiments to assess protoporphyrin IX (PpIX) production, cellular uptake, GSH depletion, and phototoxicity in HeLa cells.
  • Performed in vivo studies to compare PpIX generation efficiency of a lead compound (Compound 2) against ALA-OMe.

Main Results:

  • The synthesized ALA derivatives demonstrated high stability.
  • Compounds 1 and 2 showed enhanced PpIX production in biotin receptor-overexpressed HeLa cells compared to ALA-OMe, correlating positively with biotin receptor expression and GSH levels.
  • The GSH-depleting capability of the compounds significantly boosted their phototoxicity.
  • Compound 2 exhibited superior in vivo PpIX production compared to ALA-OMe.

Conclusions:

  • The dual-targeting and GSH depletion strategy effectively enhances tumor specificity and anti-tumor efficiency in ALA-based PDT.
  • These multifunctional ALA derivatives represent a promising approach for improving PDT outcomes.
  • The developed strategy offers a framework for designing next-generation ALA-based photosensitizers with improved tumor selectivity and therapeutic effects.