Overcoming Cancer Multi-drug Resistance (MDR): Reasons, mechanisms, nanotherapeutic solutions, and challenges

Chunyan Duan1, Mingjia Yu1, Jiyuan Xu1

  • 1School of New Energy and Environmental Protection Engineering, Foshan Polytechnic, Foshan 528137, PR China.

Insights

Multi-drug resistance (MDR) in cancer hinders treatment by efflux pumps like P-gp. This review explores MDR mechanisms and novel strategies, including nanomaterials and physical therapies, to overcome drug resistance in cancer.

Area of Science:

  • Oncology
  • Biochemistry
  • Nanotechnology

Background:

  • Multi-drug resistance (MDR) in cancer significantly reduces therapeutic efficacy.
  • Overexpression of ATP-binding cassette (ABC) transporters drives MDR by limiting drug uptake and increasing efflux.
  • MDR cancer cells exhibit enhanced drug efflux, altered DNA repair, and increased apoptotic thresholds.

Purpose of the Study:

  • To review the multifaceted mechanisms underlying MDR in cancer.
  • To highlight specific cancers with shared MDR pathogenesis and drug efflux mechanisms.
  • To discuss advanced therapeutic strategies for overcoming MDR.

Main Methods:

  • Review of existing literature on MDR mechanisms and therapeutic approaches.
  • Analysis of ATP-binding cassette (ABC) transporter functions, including P-glycoprotein (P-gp).
  • Exploration of nanomaterial-based designs and physical therapies (light, ultrasound).

Main Results:

  • MDR involves complex mechanisms including drug efflux pumps, reduced drug uptake, and altered DNA repair.
  • Specific cancers share common pathways in developing and executing MDR.
  • Nanomaterials and physical therapies show promise in overcoming MDR.

Conclusions:

  • Understanding MDR mechanisms is crucial for developing effective cancer treatments.
  • Advanced strategies like combinatorial therapies, nanomaterials, and physical methods offer new avenues to combat MDR.
  • Further research is needed to address unsolved issues and optimize future MDR-targeting therapies.

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