Provoking Lysosome Disruption via In Situ Engineered Double-Network Assemblies for Targeted Cancer Cell Death

Shijin Zhang1, Jiarong Lv1, Xinglan Cheng1

  • 1National Engineering Research Center of Ophthalmology and Optometry, School of Biomedical Engineering, Eye Hospital, Wenzhou Medical University, Wenzhou 325027, China.

ACS Nano
|March 21, 2025
PubMed

Insights

Researchers developed a light-activated precursor that targets lysosomes in cancer cells. This precursor forms double-network assemblies, disrupting lysosomal function and leading to tumor cell death, offering a new therapeutic strategy.

Area of Science:

  • Biochemistry
  • Nanotechnology
  • Oncology

Background:

  • Lysosomes play a crucial role in tumor progression and cancer drug resistance.
  • Targeting lysosomes for cancer therapy is an area of high demand but limited success.
  • Developing selective lysosome-targeting agents remains a significant challenge.

Purpose of the Study:

  • To design and synthesize an alkaline phosphatase (ALP)-responsive peptide-based precursor (C1) for targeted cancer therapy.
  • To investigate the selective induction of lysosome dysfunction in uveal melanoma cells using light manipulation.
  • To develop a self-assembling system for disrupting lysosomal membrane integrity and inhibiting tumor growth.

Main Methods:

  • Synthesis of an ALP-responsive peptide precursor (C1).
  • Demonstration of selective dephosphorylation, endocytosis, and lysosomal accumulation in ALP-upregulated tumor cells.
  • Light-induced self-assembly of C1 into double-network assemblies (nanofibrils and nanorods) within lysosomes.
  • Investigation of lysosomal membrane permeabilization and subsequent tumor cell death.

Main Results:

  • C1 selectively accumulated in lysosomes of tumor cells upon ALP-mediated dephosphorylation.
  • Light irradiation triggered the formation of self-sorted nanofibrils and nanorods within lysosomes.
  • The interaction of these nanostructures formed robust double-network assemblies, leading to lysosomal membrane permeabilization.
  • Significant inhibition of tumor cell growth was observed.

Conclusions:

  • A novel double-network assembly system was developed by utilizing ALP activity, light responsiveness, and lysosomal acidity.
  • This system effectively disrupts lysosomal membrane integrity and selectively inhibits tumor cells.
  • The findings offer valuable insights for advancing lysosome-targeting therapeutic agents in cancer treatment.

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