Blocking Interleukin-4 Receptor α Using Polyethylene Glycol Functionalized Superparamagnetic Iron Oxide Nanocarriers

Abjal Pasha Shaik1, Asma Sultana Shaik2, Ali Al Majwal3

  • 1Department of Clinical Laboratory Sciences, College of Applied Medical Sciences, King Saud University, Riyadh, Saudi Arabia.

Abstract

Insights

Superparamagnetic iron oxide nanoparticles conjugated with anti-IL4Rα antibodies effectively target and inhibit breast cancer cell progression. Combination therapy with doxorubicin significantly enhances cell death and oxidative stress, suggesting potential for tumor growth reduction.

Area of Science:

  • Nanomedicine and Drug Delivery
  • Cancer Therapeutics
  • Molecular Targeting

Background:

  • Interleukin-4 receptor alpha (IL4Rα) is a potential therapeutic target for inhibiting breast cancer progression.
  • Superparamagnetic iron oxide nanoparticles (SPIONs) offer a platform for targeted drug delivery.
  • Developing targeted nanocarriers is crucial for enhancing therapeutic efficacy and reducing side effects in cancer treatment.

Purpose of the Study:

  • To evaluate the in vitro efficacy of SPIONs conjugated with anti-IL4Rα blocking antibodies (SPION-IL4Rα) for breast cancer therapy.
  • To assess the synergistic effect of SPION-IL4Rα combined with doxorubicin in 4T1 breast cancer cells.
  • To confirm the specific targeting and interaction of SPION-IL4Rα with IL4Rα receptors on cancer cells.

Main Methods:

  • In vitro assessment of cell viability, reactive oxygen species (ROS) generation, and apoptosis in 4T1 cells.
  • Treatment groups included SPION-IL4Rα alone, doxorubicin alone, and the combination of SPION-IL4Rα + doxorubicin.
  • Immunofluorescence and fluorimetry assays were employed to verify the specific binding of nanocarriers to IL4Rα receptors.

Main Results:

  • Blocking IL4Rα receptors with SPION-IL4Rα significantly reduced cell viability and induced apoptosis in 4T1 cells.
  • The combination of SPION-IL4Rα and doxorubicin demonstrated enhanced therapeutic efficacy, leading to increased cell death, apoptosis, and oxidative stress.
  • Assays confirmed successful binding of SPION-IL4Rα to IL4Rα receptors on murine 4T1 breast cancer cells, validated by decreased fluorescence intensity.

Conclusions:

  • SPION-IL4Rα nanocarriers show promise for targeted inhibition of breast cancer cell progression.
  • The combination therapy exhibits enhanced efficacy, suggesting a potential strategy for reducing tumor growth.
  • These findings support the potential of SPION-IL4Rα for in vivo applications in reducing tumor growth and metastasis.