Mechanisms of enhanced drug delivery in brain metastases with focused ultrasound-induced blood-tumor barrier disruption.
Authors: Arvanitis CD, Askoxylakis V, Guo Y, Datta M, Kloepper J, Ferraro GB, Bernabeu MO, Fukumura D, McDannold N, Jain RK
Blood-brain/blood-tumor barriers (BBB and BTB) and interstitial transport may constitute major obstacles to the transport of therapeutics in brain tumors. In this study, we examined the impact of focused ultrasound (FUS) in combination with microbubbles on the transport of two relevant chemotherapy-based anticancer agents in breast cancer brain metastases at cellular resolution: doxorubicin, a nontargeted chemotherapeutic, and ado-trastuzumab emtansine (T-DM1), an antibody-drug conjugate. Using an orthotopic xenograft model of HER2-positive breast cancer brain metastasis and quantitative microscopy, we demonstrate significant increases in the extravasation of both agents (sevenfold and twofold for doxorubicin and T-DM1, respectively), and we provide evidence of increased drug penetration (>100 vs. <20 µm and 42 ± 7 vs. 12 ± 4 µm for doxorubicin and T-DM1, respectively) after the application of FUS compared with control (non-FUS). Integration of experimental data with physiologically based pharmacokinetic (PBPK) modeling of drug transport reveals that FUS in combination with microbubbles alleviates vascular barriers and enhances interstitial convective transport via an increase in hydraulic conductivity. Experimental data demonstrate that FUS in combination with microbubbles enhances significantly the endothelial cell uptake of the small chemotherapeutic agent. Quantification with PBPK modeling reveals an increase in transmembrane transport by more than two orders of magnitude. PBPK modeling indicates a selective increase in transvascular transport of doxorubicin through small vessel wall pores with a narrow range of sizes (diameter, 10-50 nm). Our work provides a quantitative framework for the optimization of FUS-drug combinations to maximize intratumoral drug delivery and facilitate the development of strategies to treat brain metastases.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To quantify and mechanistically characterize how focused ultrasound with microbubbles alters delivery and interstitial transport of doxorubicin and T-DM1 in HER2-positive breast cancer brain metastases using quantitative microscopy integrated with physiologically based pharmacokinetic modeling.
Disease model
HER2-positive breast cancer brain metastases
Cargo name and characteristics
Doxorubicin (small-molecule chemotherapeutic) and ado-trastuzumab emtansine (T-DM1; antibody–drug conjugate targeting HER2)
Outcomes and Safety
Summary of Outcomes
Focused ultrasound (FUS) combined with microbubbles markedly increased delivery of anticancer agents into HER2+ breast cancer brain metastases—doxorubicin extravasation increased ~7-fold with tissue penetration >100 µm versus <20 µm, and T‑DM1 increased ~2-fold with penetration 42 ± 7 µm versus 12 ± 4 µm—while also enhancing endothelial uptake, interstitial convective transport via increased hydraulic conductivity, and transmembrane transport (>100-fold) with selective transvascular transport through 10–50 nm vessel wall pores. Successful parameter: focused ultrasound in combination with microbubbles (no other FUS parameter variations were reported as tested).
Safety-related matter
The provided text does not mention any safety issues or adverse effects; no adverse effects were reported.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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