ROS-Responsive Nano-Encapsulated Selenium Targeting Cervical Cancer Cell via PI3K/AKT Signaling Pathway

Yanmei Qiu1,2, Chongke Hu1, Sifang Zhao3

  • 1Ningbo Institute of Innovation for Combined Medicine and Engineering (NIIME), The Affiliated LiHuili Hospital of Ningbo University, Ningbo, Zhejiang, 315100, People's Republic of China.

Abstract

Insights

Targeted ROS-responsive selenium nanoparticles (FA-ReRSeNPs) offer improved cervical cancer treatment by reducing toxicity and enhancing efficacy. These nanoparticles effectively inhibit tumor growth and induce apoptosis, showing promise for advanced cancer therapy.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • Current cervical cancer treatments often suffer from significant off-target toxicity and inefficient drug delivery, limiting patient quality of life.
  • Selenium nanoparticles possess inherent anticancer properties but require optimized delivery systems to overcome these limitations.

Purpose of the Study:

  • To develop targeted ROS-responsive selenium nanoparticles (FA-ReRSeNPs) for enhanced cervical cancer therapy.
  • To overcome the challenges of off-target toxicity and inefficient delivery associated with conventional treatments.
  • To leverage selenium's anticancer properties through advanced nanoengineering.

Main Methods:

  • FA-ReRSeNPs were synthesized and characterized for physicochemical and biological properties.
  • In vitro assays using human cervical cancer cells (Hela and SiHa) and in vivo studies with a SiHa subcutaneous xenograft nude mouse model were employed.
  • Mechanistic studies investigated the anti-tumor activity and signaling pathways involved.

Main Results:

  • FA-ReRSeNPs significantly reduced the required selenium dose for anticancer activity while minimizing off-target damage to normal tissues.
  • Anticancer effects were achieved through the inhibition of the PI3K/AKT signaling pathway, leading to tumor cell apoptosis and proliferation restraint.
  • In vitro and in vivo analyses demonstrated superior tumor-inhibitory potential and high targeting specificity of FA-ReRSeNPs.

Conclusions:

  • FA-ReRSeNPs represent a precision-driven nanotherapeutic for cervical cancer management.
  • The combination of active targeting and ROS-responsive release addresses the efficacy-toxicity dilemma of conventional anticancer agents.
  • This study highlights the translational value of intelligent nanoengineering in advancing cancer therapies.