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Growth inhibition in a brain metastasis model by antibody delivery using focused ultrasound-mediated blood-brain barrier disruption.

Authors: Kobus T, Zervantonakis IK, Zhang Y, McDannold NJ

HER2-targeting antibodies (i.e. trastuzumab and pertuzumab) prolong survival in HER2-positive breast cancer patients with extracranial metastases. However, the response of brain metastases to these drugs is poor, and it is hypothesized that the blood-brain barrier (BBB) limits drug delivery to the brain. We investigated whether we could improve the response by temporary disruption of the BBB using focused ultrasound in combination with microbubbles. To study this, we inoculated 30 nude rats with HER2-positive cells derived from a brain metastasis of a breast cancer patient (MDA-MB-361). The animals were divided into three groups: a control-group that received no treatment; an antibody-only group that received six weekly treatments of trastuzumab and pertuzumab; and an ultrasound+antibody group that received trastuzumab and pertuzumab in combination with six weekly sessions of BBB disruption using focused ultrasound. In two animals, the leakiness of the tumors before disruption was evaluated using contrast-enhanced T1-weighted magnetic resonance imaging and found that the tumors were not leaky. The same technique was used to evaluate the effectiveness of BBB disruption, which was successful in all sessions. The tumor in the control animals grew exponentially with a growth constant of 0.042±0.011mm(3)/day. None of the antibody-only animals responded to the treatment and the growth constant was 0.033±0.009mm(3)/day during the treatment period. Four of the ten animals in the ultrasound+antibody-group showed a response to the treatment with an average growth constant of 0.010±0.007mm(3)/day, compared to a growth constant 0.043±0.013mm(3)/day for the six non-responders. After the treatment period, the tumors in all groups grew at similar rates. As the tumors were not leaky before BBB disruption and there were no responders in the antibody-only group, these results show that at least in some cases disruption of the BBB is necessary for a response to the antibodies in these brain metastases. Interestingly, only some of the rats responded to the treatment. We did not observe a difference in tumor volume at the start of the treatment, nor in HER2 expression or in contrast-enhancement on MRI between the responders and non-responders to explain this. Better understanding of why certain animals respond is needed and will help in translating this technique to the clinic. In conclusion, we demonstrate that BBB disruption using focused ultrasound in combination with antibody therapy can inhibit growth of breast cancer brain metastasis.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To determine whether focused ultrasound–mediated disruption of the blood–brain barrier enhances the efficacy of HER2-targeting antibodies (trastuzumab and pertuzumab) against breast cancer brain metastases in a rat model.
Animal model / Human subject Rattus norvegicus (nude rats, athymic); age None; sex None
Disease model HER2-positive breast cancer brain metastases
MRI or image guidance method Contrast-enhanced T1-weighted MRI
Cargo name and characteristics Trastuzumab and pertuzumab — HER2-targeting monoclonal antibodies (protein therapeutics, humanized IgG antibodies)

Outcomes and Safety

Summary of Outcomes Weekly focused ultrasound-mediated BBB disruption with microbubbles combined with trastuzumab and pertuzumab produced tumor growth inhibition in 4 of 10 rats (antibody-only had no responders), and BBB disruption was confirmed by MRI; no multiple FUS parameter variations were reported.
Duration of biological effect 6 weeks
Safety-related matter The paper does not report any safety issues or adverse effects; no treatment-related toxicity, adverse events, or harm to the animals are mentioned.

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency multiple

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