Tumor-Specific Multiple Stimuli-Activated Dendrimeric Nanoassemblies with Metabolic Blockade Surmount Chemotherapy

Yachao Li1, Xianghui Xu1, Xiao Zhang1

  • 1National Engineering Research Center for Biomaterials, Sichuan University , Chengdu, Sichuan 610064, P.R. China.

ACS Nano
|December 23, 2016
PubMed

Insights

This study introduces novel dendrimeric nanoassemblies that overcome chemotherapy resistance by targeting tumors and blocking metabolism. These nanoassemblies effectively combat multidrug resistance, improving antitumor therapy.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • Chemotherapy resistance, particularly multidrug resistance (MDR), significantly limits cancer treatment efficacy.
  • Current chemotherapeutic strategies struggle to overcome MDR due to physiological barriers and cellular resistance mechanisms.

Purpose of the Study:

  • To develop a tumor-specific, stimuli-activated dendrimeric nanoassembly system to overcome MDR.
  • To engineer a metabolic blockade strategy to enhance the efficacy of chemotherapy against resistant tumors.

Main Methods:

  • Designed dendrimeric prodrugs forming hierarchical nanoassemblies with a PEGylated corona for improved circulation.
  • Incorporated stimuli-responsive elements (enzyme, pH, redox) for targeted drug release and nucleus delivery.
  • Implemented a tumor-specific metabolic blockade targeting ATP production and apoptosis pathways.

Main Results:

  • The nanoassemblies successfully navigated physiological barriers, enhanced tumor penetration, and facilitated cellular uptake.
  • The metabolic blockade strategy effectively targeted multiple cellular factors contributing to MDR.
  • Demonstrated significant antitumor activity against drug-resistant MCF-7R tumors both in vitro and in vivo.

Conclusions:

  • The developed dendrimeric nanoassemblies represent an innovative strategy to surmount multidrug resistance in cancer therapy.
  • This approach offers a comprehensive nanoparticulate system for overcoming both physiological and cellular barriers of chemotherapy resistance.
  • The findings support the potential clinical application of this nanosystem for enhanced cancer treatment.

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