Tumor-penetrating nanoplatform with ultrasound "unlocking" for cascade synergistic therapy and visual feedback under

Zhuoyan Xie1,2, Junrui Wang2,3, Yuanli Luo2

  • 1Department of Ultrasound, Chongqing General Hospital, Chongqing, 401147, China.

Abstract

Insights

This study introduces a novel visualizable nanoplatform that enhances cancer therapy by improving oxygen supply and enabling targeted drug delivery. The platform utilizes cascade reactions for synergistic therapeutic effects against solid tumors.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Cancer Therapy

Background:

  • Nanoplatforms offer promise for solid tumor treatment via cascade reactions.
  • Current limitations include insufficient oxygen supply and lack of visual feedback.
  • Addressing these challenges is crucial for advancing nanoplatform applications in oncology.

Purpose of the Study:

  • To develop a visualizable nanoplatform for targeted solid tumor therapy.
  • To overcome limitations of oxygen deprivation and enhance therapeutic efficacy.
  • To enable ultrasound-guided combination therapy including starvation and sonodynamic therapy.

Main Methods:

  • Constructed a liposome-based nanoplatform (tLyP-1H(Gd)-GOD@PFP) with tumor-penetrating peptide tLyP-1.
  • Utilized glucose oxidase (GOD) for starvation therapy and hydrogen peroxide production.
  • Integrated H(Gd) for singlet oxygen generation and PFP for oxygen supply.
  • Employed ultrasound (US) for imaging, cavitation, and activating cascade reactions.

Main Results:

  • The nanoplatform demonstrated specific tumor cell targeting and penetration.
  • Achieved synergistic effects through US-activated starvation and sonodynamic therapy (SDT).
  • Enhanced reactive oxygen species (ROS) production (3.3-fold), redox reaction rates (1.5-fold), and oxygen supply (2.3-fold) in vitro.
  • Showcased significant tumor inhibition in vivo.

Conclusions:

  • Developed a visualizable, tumor-penetrating nanoplatform activated by ultrasound.
  • Successfully improved oxygen supply control for enhanced cascade therapy.
  • The nanoplatform offers a promising strategy for overcoming current limitations in solid tumor treatment.

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