Janus Nanoparticles in Doxorubicin Delivery: A New Frontier in Targeted Cancer Treatment

Valeria Flores1, Moniellen Pires Monteiro2, Tanya Plaza3

  • 1Departamento de Bioingeniería Traslacional, Centro Universitario de Ciencias Exactas e Ingenierías (CUCEI), Universidad de Guadalajara, Guadalajara 44430, Mexico.

Insights

Janus nanoparticles (JNPs) offer a novel approach to cancer therapy by enabling targeted delivery of doxorubicin (DOX). These advanced nanocarriers improve drug efficacy and reduce side effects, paving the way for precision oncology.

Area of Science:

  • Nanotechnology
  • Oncology
  • Drug Delivery

Background:

  • Cancer is a leading global health issue with high mortality.
  • Doxorubicin (DOX) is a key chemotherapy drug, but its use is limited by toxicity.
  • Janus nanoparticles (JNPs) are bifunctional platforms with asymmetric structures for improved drug delivery.

Purpose of the Study:

  • To review fabrication methods for JNPs in doxorubicin delivery.
  • To explore the potential of JNPs for co-delivery of multiple drugs.
  • To assess the advantages of JNPs over conventional carriers in cancer treatment.

Main Methods:

  • Review of fabrication routes including masking, microfluidics, self-assembly, and phase separation.
  • Analysis of JNP applications in doxorubicin delivery.
  • Examination of multi-stimuli-responsive release mechanisms (pH, enzymes, NIR light).

Main Results:

  • JNPs facilitate independent functionalization of hemispheres for tailored drug delivery.
  • The "separate rooms" concept allows co-delivery of incompatible drugs.
  • JNPs show enhanced tumor accumulation and reduced systemic toxicity compared to isotropic carriers.
  • Recent advancements include autonomous nanomotors for improved delivery and reduced leakage.

Conclusions:

  • JNPs represent a sophisticated platform for precision oncology.
  • Challenges for clinical translation include manufacturing complexity, cost, and scalability.
  • Standardized protocols are needed for robust manufacturing and characterization of JNPs for medical adoption.

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