Enhancement in blood-tumor barrier permeability and delivery of liposomal doxorubicin using focused ultrasound and microbubbles: evaluation during tumor progression in a rat glioma model.
Authors: Aryal M, Park J, Vykhodtseva N, Zhang YZ, McDannold N
Effective drug delivery to brain tumors is often challenging because of the heterogeneous permeability of the 'blood tumor barrier' (BTB) along with other factors such as increased interstitial pressure and drug efflux pumps. Focused ultrasound (FUS) combined with microbubbles can enhance the permeability of the BTB in brain tumors, as well as the blood-brain barrier in the surrounding tissue. In this study, dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI) was used to characterize the FUS-induced permeability changes of the BTB in a rat glioma model at different times after implantation. 9L gliosarcoma cells were implanted in both hemispheres in male rats. At day 9, 14, or 17 days after implantation, FUS-induced BTB disruption using 690 kHz ultrasound and definity microbubbles was performed in one tumor in each animal. Before FUS, liposomal doxorubicin was administered at a dose of 5.67 mg kg(-1). This chemotherapy agent was previously shown to improve survival in animal glioma models. The transfer coefficient Ktrans describing extravasation of the MRI contrast agent Gd-DTPA was measured via DCE-MRI before and after sonication. We found that tumor doxorubicin concentrations increased monotonically (823 ± 600, 1817 ± 732 and 2432 ± 448 ng g(-1)) in the control tumors at 9, 14 and 17 d. With FUS-induced BTB disruption, the doxorubicin concentrations were enhanced significantly (P < 0.05, P < 0.01, and P < 0.0001 at days 9, 14, and 17, respectively) and were greater than the control tumors by a factor of two or more (2222 ± 784, 3687 ± 796 and 5658 ± 821 ng g(-1)) regardless of the stage of tumor growth. The transfer coefficient Ktrans was significantly (P < 0.05) enhanced compared to control tumors only at day 9 but not at day 14 or 17. These results suggest that FUS-induced enhancements in tumor drug delivery are relatively consistent over time, at least in this tumor model. These results are encouraging for the use of large drug carriers, as they suggest that even large/late-stage tumors can benefit from FUS-induced drug enhancement. Corresponding enhancements in Ktrans were found to be variable in large/late-stage tumors and not significantly different than controls, perhaps reflecting the size mismatch between the liposomal drug (~100 nm) and Gd-DTPA (molecular weight: 938 Da; hydrodynamic diameter: ≃2 nm). It may be necessary to use a larger MRI contrast agent to effectively evaluate the sonication-induced enhanced permeabilization in large/late-stage tumors when a large drug carrier such as a liposome is used.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To evaluate whether focused ultrasound with microbubbles enhances blood–tumor barrier permeability and delivery of liposomal doxorubicin in a rat glioma model at different times after implantation using DCE-MRI to measure Ktrans.
Animal model / Human subject
Rat (strain None), age None, male
Disease model
glioma
Targeted brain region(s)
9L Gliosarcoma Tumor (In One Cerebral Hemisphere)
Cargo name and characteristics
Liposomal doxorubicin (liposome-encapsulated chemotherapeutic doxorubicin; nanoparticle ~100 nm; dose 5.67 mg/kg) and Gd-DTPA (gadolinium-based MRI contrast agent; small molecule chelate ~938 Da; hydrodynamic diameter ~2 nm)
Outcomes and Safety
Summary of Outcomes
Focused ultrasound (690 kHz) with Definity microbubbles significantly enhanced delivery of liposomal doxorubicin to 9L gliosarcoma tumors at all tested stages (days 9, 14, 17), producing ≥2-fold higher drug concentrations versus controls; however, MRI-measured Ktrans (Gd-DTPA) was significantly increased only at day 9 and not at days 14 or 17. The tested FUS condition (690 kHz + Definity microbubbles; doxorubicin 5.67 mg/kg administered before sonication) was successful for improving drug delivery across all time points, while permeability increases by DCE-MRI were only evident early (day 9).
Duration of biological effect
8 days
Safety-related matter
No safety concerns or adverse effects were reported; the paper did not mention any treatment-related toxicity or adverse events.
Brain Region
Ultrasound Parameters
FUS Frequency
690 kHz
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency
single session
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