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Updated: Jun 14, 2026

Generation and Quantitative Analysis of Pulsed Low Frequency Ultrasound to Determine the Sonic Sensitivity of Untreated and Treated Neoplastic Cells
Published on: July 22, 2015
Multimodal In-vitro tumour starvation therapy using enzyme-driven piezoelectric nanosystems utilizing ultrasound
Namrata Tiwari1, Ritu Das2, Manleen Kaur1
1Centre for Biomedical Engineering, Indian Institute of Technology Delhi, Hauz Khas, New Delhi 110016, India.
Abstract:
Several types of tumours and their complexity have been a challenge for experts in medical research, driving the need for innovative approaches. Recent exploration in various nano systems aims to address this issue by targeting tumours more precisely, thereby improving treatment efficacy with minimum adverse reactions. In this study, we introduce a glucose-responsive (enzyme powered), piezoelectric nanohybrid platform composed of a core-shell architecture, where Barium Titanate nanoparticles (BTNPs) forms the ultrasound-responsive piezoelectric core, and the mesoporous silica nanoparticles (MSNPs) as the functionalised shell. The shell is engineered with Glucose Oxidase (GOx) enzyme on its surface and loaded with Ethylenediaminetetraacetic acid (EDTA) in the porous structure. These nanosystem (GOx-MSBTNPsEDTA) are designed to target tumour cells in 3D spheroids, with controlled release of EDTA at the target site upon ultrasound (US) application. The GOx-MSBTNPsEDTA functionalization induces localized catalytic glucose consumption, generating asymmetric chemical gradients that enhance nanosystem diffusion within tumour-like environments, which utilizes glucose that is naturally abundant in the tumour microenvironment. This model demonstrated glucose-dependent enhancement in nanosystem mobility and spatial redistribution within 3D tumour spheroids, along with the controlled release of EDTA upon US application. This combination of enzyme-driven motion and US-stimulated drug release displays substrate-dependent enhanced diffusion along with the precise EDTA release, and deeper penetration into the tumour tissue. This study establishes an enzyme-activated, ultrasound-responsive nanohybrid platform that integrates metabolic modulation and externally triggered cargo release for tumour starvation therapy.
Insights
This study introduces a novel nanohybrid platform that uses glucose and ultrasound to precisely target and treat tumors. The system enhances drug delivery and penetration, offering a promising approach for cancer therapy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Materials Science
Background:
- Tumor complexity presents significant challenges in medical research.
- Nanotechnology offers innovative solutions for precise tumor targeting and improved treatment efficacy.
- Existing nanomedicines require further development for enhanced tumor penetration and controlled drug release.
Purpose of the Study:
- To develop a glucose-responsive, piezoelectric nanohybrid platform for targeted tumor therapy.
- To engineer a core-shell nanostructure for ultrasound-triggered drug delivery.
- To investigate the combined effects of enzyme-driven motion and external triggers for enhanced tumor treatment.
Main Methods:
- Fabrication of a core-shell nanohybrid platform using Barium Titanate nanoparticles (BTNPs) and mesoporous silica nanoparticles (MSNPs).
- Functionalization of the shell with Glucose Oxidase (GOx) enzyme and loading with Ethylenediaminetetraacetic acid (EDTA).
- Evaluation of nanosystem diffusion, glucose consumption, and EDTA release in 3D tumor spheroids upon ultrasound application.
Main Results:
- The nanohybrid platform (GOx-MSBTNPsEDTA) demonstrated glucose-dependent enhanced mobility and spatial redistribution within 3D tumor spheroids.
- Ultrasound application triggered controlled release of EDTA at the target site.
- The system showed substrate-dependent enhanced diffusion and deeper penetration into tumor tissue.
Conclusions:
- An enzyme-activated, ultrasound-responsive nanohybrid platform was successfully established.
- The platform integrates metabolic modulation and externally triggered cargo release for effective tumor starvation therapy.
- This approach offers a promising strategy for precise and efficient cancer treatment with minimized adverse effects.
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