Related Experiment Video
Updated: May 17, 2026

Contrast Ultrasound Targeted Treatment of Gliomas in Mice via Drug-Bearing Nanoparticle Delivery and Microvascular Ablation
Published on: December 15, 2010
Plasmonic nanobubbles rapidly detect and destroy drug-resistant tumors
Ekaterina Y Lukianova-Hleb1, Xiaoyang Ren, Debra Townley
11. Department of Biochemistry and Cell Biology, Rice University, Houston, TX;
Abstract:
The resistance of residual cancer cells after oncological resection to adjuvant chemoradiotherapies results in both high recurrence rates and high non-specific tissue toxicity, thus preventing the successful treatment of such cancers as head and neck squamous cell carcinoma (HNSCC). The patients' survival rate and quality of life therefore depend upon the efficacy, selectivity and low non-specific toxicity of the adjuvant treatment. We report a novel, theranostic in vivo technology that unites both the acoustic diagnostics and guided intracellular delivery of anti-tumor drug (liposome-encapsulated doxorubicin, Doxil) in one rapid process, namely a pulsed laser-activated plasmonic nanobubble (PNB). HNSCC-bearing mice were treated with gold nanoparticle conjugates, Doxil, and single near-infrared laser pulses of low energy. Tumor-specific clusters of gold nanoparticles (solid gold spheres) converted the optical pulses into localized PNBs. The acoustic signals of the PNB detected the tumor with high specificity and sensitivity. The mechanical impact of the PNB, co-localized with Doxil liposomes, selectively ejected the drug into the cytoplasm of cancer cells. Cancer cell-specific generation of PNBs and their intracellular co-localization with Doxil improved the in vivo therapeutic efficacy from 5-7% for administration of only Doxil or PNBs alone to 90% thus demonstrating the synergistic therapeutic effect of the PNB-based intracellular drug release. This mechanism also reduced the non-specific toxicity of Doxil below a detectable level and the treatment time to less than one minute. Thus PNBs combine highly sensitive diagnosis, overcome drug resistance and minimize non-specific toxicity in a single rapid theranostic procedure for intra-operative treatment.
Insights
This study introduces a novel theranostic technology using pulsed laser-activated plasmonic nanobubbles (PNBs) for head and neck squamous cell carcinoma (HNSCC). PNBs enable precise drug delivery, significantly improving cancer treatment efficacy and reducing toxicity.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Residual cancer cells resist conventional therapies, leading to high recurrence and toxicity.
- Effective adjuvant treatment for head and neck squamous cell carcinoma (HNSCC) requires improved efficacy and reduced side effects.
Purpose of the Study:
- To develop a novel theranostic technology combining acoustic diagnostics and targeted drug delivery.
- To investigate the efficacy of pulsed laser-activated plasmonic nanobubbles (PNBs) for treating HNSCC.
Main Methods:
- Utilized gold nanoparticle conjugates and liposome-encapsulated doxorubicin (Doxil) in HNSCC-bearing mice.
- Employed near-infrared laser pulses to generate localized PNBs for acoustic tumor detection.
- Leveraged PNBs for guided intracellular drug delivery into cancer cells.
Main Results:
- PNBs detected tumors with high specificity and sensitivity via acoustic signals.
- PNB-induced intracellular drug delivery enhanced in vivo therapeutic efficacy to 90%.
- Non-specific toxicity was reduced to undetectable levels, with treatment times under one minute.
Conclusions:
- PNB technology offers a rapid, theranostic approach for intra-operative cancer treatment.
- This method overcomes drug resistance and minimizes toxicity in HNSCC treatment.
- The combined diagnostic and therapeutic capabilities of PNBs show significant promise for cancer therapy.
More Related Videos
09:01Magnetic-, Acoustic-, and Optical-Triple-Responsive Microbubbles for Magnetic Hyperthermia and Pothotothermal Combination Cancer Therapy
Published on: May 22, 2020
14:20Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014