Homotype-Targeted Biogenic Nanoparticles to Kill Multidrug-Resistant Cancer Cells

Imran Shair Mohammad1,2, Birendra Chaurasiya3, Xuan Yang2

  • 1Department of Pharmaceutics, School of Pharmacy, China Pharmaceutical University, Nanjing 211198, China.

Pharmaceutics
|October 14, 2020
PubMed

Insights

This study developed cell membrane-coated nanoparticles that target cancer cells, increasing drug uptake and effectiveness against multidrug resistance (MDR). This homotypic binding approach enhances chemotherapy delivery and efficacy in MDR tumors.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Cancer Therapy

Background:

  • Nanoparticle drug delivery faces challenges with off-targeting and low receptor density, limiting efficacy.
  • Multidrug resistance (MDR) in cancer cells significantly compromises treatment outcomes.

Purpose of the Study:

  • To develop cell membrane-cloaked biogenic nanoparticles for co-delivery of paclitaxel (PTX) and disulfiram (DSF).
  • To enhance nanoparticle targeting and drug delivery specifically to MDR cancer cells via homotypic binding.

Main Methods:

  • Isolation of cancer cell membranes (A549/T) for coating hybrid nanoparticles.
  • Construction of A549/T cell membrane-hybrid nanoparticles (A549/T CM-HNPs).
  • Evaluation of nanoparticle uptake, P-glycoprotein (P-gp) inhibition, and apoptosis induction in MDR cells.

Main Results:

  • A549/T CM-HNPs demonstrated selective recognition and a ninefold increase in uptake in homologous MDR cells through homotypic binding.
  • The nanoparticles suppressed P-gp activity by 3.2-fold, sensitizing MDR cells to paclitaxel.
  • Effective apoptosis induction (70%) was observed in homologous A549/T cells.

Conclusions:

  • Cell membrane coating utilizing "homotypic binding" is a promising strategy for targeted drug delivery to MDR cancer cells.
  • This approach enhances chemotherapeutic accumulation and improves therapeutic outcomes in MDR cancers.
  • A549/T CM-HNPs show potential for overcoming multidrug resistance and improving cancer treatment efficacy.

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