Focused Ultrasound Opens Blood-Brain Barrier to Treat Brain Cancer

Summary: A new study demonstrates that primary brain tumors (gliomas) are particularly receptive to targeted drug delivery using focused ultrasound (FUS) combined with microbubbles.

The team developed a high-resolution MRI protocol to track blood-brain barrier (BBB) opening and molecular transport inside the tumor microenvironment. The research allays long-standing clinical concerns that mutated tumor vasculature would impede sound-wave-mediated drug delivery.

Instead, FUS performance was maintained, and in some cases enhanced, within glioma tissue, with researchers identifying an optimal “Goldilocks” therapeutic molecule size range for efficient drug uptake into tumor cells.

Key Facts

  • Enhanced Barrier Permeation: Rather than showing resistance due to chaotic tumor vasculature, glioma tissue demonstrated equal or superior receptivity to focused-ultrasound-mediated blood-brain barrier opening compared to healthy brain tissue.
  • Novel MRI Tracking Integration: The researchers integrated a high-resolution MRI imaging approach directly with focused ultrasound to track intra-tumoral drug accumulation dynamics with precise spatial clarity.
  • Molecular Size “Goldilocks” Window: Delivery efficiency varied directly by molecular payload size: medium-sized drug molecules accumulated significantly more efficiently than either very small or oversized drug compounds.
  • Non-Invasive Precision Delivery: Microbubble-assisted FUS utilizes low-frequency acoustic waves to transiently and reversibly open the blood-brain barrier without requiring surgical incision or craniotomy.
  • Translational Infrastructure: The addition of an Insightec MRI-guided focused ultrasound system at UVA will accelerate the translation of these findings toward clinical trials involving glioblastoma immunotherapies and gene therapies.

Source: UVA Health

In a promising sign for the potential of focused sound waves to improve care for brain tumors, UVA Health researchers have determined that tumors called gliomas may be even more receptive to targeted drug delivery than normal brain tissue.

While the research is still in its early stages, the findings help allay concerns that brain tumors might have properties that would make them stubbornly resistant to the cutting-edge approach. The UVA scientists are using tiny “microbubbles” that are activated by sound waves to open the brain’s natural protective barrier, known as the “blood-brain barrier,” so that drugs can enter exactly where needed.

This shows a brain and a light beam.
Focused ultrasound effectively disrupts the blood-brain barrier in brain tumors to enable targeted therapeutic delivery. Credit: Neuroscience News

Inside brain tumors, cancer cells mutate the structure of the blood-brain barrier and its function becomes unpredictable. In turn, this raises questions about how effectively focused ultrasound can deliver therapies in the brain tumor environment and what sizes of drug molecules can be delivered most effectively. The new research from UVA Health’s Focused Ultrasound Cancer Immunotherapy Center provides important insights on both fronts.

“To address the central question, Dr. Wilson Miller worked with my graduate student, Matthew Hoch, to develop an MRI approach that would allow us to make drug-delivery measurements with unprecedented resolution. This approach had not been integrated with focused ultrasound before,” said researcher Richard J. Price, PhD, the center’s co-director. “The outcome is exciting because it means that focused ultrasound delivery performance is not expected to diminish in brain tumors. In fact, it may even be enhanced for some types of therapeutics”

Better Brain Cancer Treatments

Gliomas are the most common primary brain tumors in adults. This group include glioblastomas, the deadliest form of brain cancer. While there are treatments that can extend survival and improve quality of life, glioblastomas are almost always fatal within 5 to 10 years, so new and better treatments are needed desperately. More than 10,000 people in the United States alone die from glioblastomas every year. 

Part of the difficulty in treating glioblastoma is getting drugs through the brain’s natural defenses. The blood-brain barrier exists for an important reason: It keeps harmful germs and toxins out. So doctors have proceeded cautiously in trying to open the gates for fear of letting in dangerous invaders. 

Focused ultrasound, however, is now letting doctors open the barrier extremely precisely and extremely briefly, so that beneficial drugs can slip inside unaccompanied by unwanted companions. Price’s approach would use low-frequency sound waves to send tiny drug molecules spinning directly into tumor cells. This is done without the need for cutting into the skull.

In addition to indicating that gliomas in lab mice are vulnerable to the approach, Price’s latest research sheds light on the sizes of molecules that would be most effective. He and his collaborators identified a “Goldilocks” size range where the molecules worked best.

Very small molecules delivered the medicine less efficiently than larger ones, but very large molecules were less effective than the medium-sized ones. (This is relative, of course – all the molecules are far, far smaller than can be seen with the naked eye.)

The great promise of focused ultrasound to improve immunotherapy’s ability to treat cancer prompted UVA in 2022 to launch its Focused Ultrasound Cancer Immunotherapy Center – the world’s first center devoted specifically to that purpose.

Now UVA is bolstering its research tools with the addition of a cutting-edge MRI-guided focused ultrasound system for drug delivery to the brain. The system, by Insightec, comes equipped with an advanced magnetic-resonance imaging unit that provides astonishing views inside the brain. This will let the researchers better understand exactly what happens as they use sound waves to drive drug molecules into tumors.

“This new MRI-guided focused ultrasound system gives our researchers the ability to both deliver treatment and monitor its effects with exceptional precision,” said UVA Health’s James Stone, MD, PhD. “That combination will accelerate our understanding of how to optimize drug delivery for brain tumors and help move promising therapies closer to clinical care.”

“We have a deep commitment at UVA to advancing care for patients here and across the world through important research like this,” said Colin P. Derdeyn, MD, interim dean of the UVA School of Medicine. “We continue to be a leader in focused ultrasound research through the efforts of our outstanding investigators, federal funding for their work, and our collaborations with industry.”

While more research needs to be done, the promising results bode well for the efforts by UVA Cancer Center and UVA’s Paul and Diane Manning Institute of Biotechnology to develop new options for patients with brain cancers. (UVA’s Manning Institute has been launched specifically to fast-track new treatments and cures for the most challenging diseases to benefit patients across Virginia and beyond.)

“I am hopeful this research illustrates how advanced MR imaging methods can be used to improve focused ultrasound delivery treatments in the clinic,” Price said. “In particular, it’s exciting to think about how these technologies could be combined with future gene therapies, from Manning Institute investigators and companies, aimed at treating brain tumors.”

Findings Published

Price and his collaborators have published their results in the scientific journal Radiology. The research team consisted of Matthew R. Hoch, Victoria R. Breza, G. Wilson Miller and Price. Price is part of UVA’s Department of Biomedical Engineering, a joint program of the School of Medicine and School of Engineering and Applied Science, as well as part of the School of Medicine’s Department of Radiology and Medical Imaging. 

Funding: UVA’s research was supported by the National Institutes of Health, grants R01EB030409, R01EB030744, R21NS118278 and R01CA226899, and by the UVA Focused Ultrasound Cancer Immunotherapy Center.

Key Questions Answered:

Q: Why was there previous concern that focused ultrasound wouldn’t work as well inside brain tumors?

A: High-grade gliomas like glioblastoma mutate the structure and function of the blood-brain barrier in unpredictable ways. Scientists worried this chaotic vascular environment would impair the mechanical action of microbubbles and prevent consistent drug delivery.

Q: What is the “Goldilocks” rule identified for drug molecule sizes in this study?

A: The researchers found that therapeutic delivery efficiency depends heavily on molecular scale. Very small molecules washed through too quickly without efficient uptake, while very large molecules faced transport friction; medium-sized therapeutics hit the optimal balance for maximum tumor accumulation.

Q: How does microbubble-assisted focused ultrasound open the blood-brain barrier non-invasively?

A: Tiny, inert gas microbubbles are injected into the bloodstream. When focused sound waves target a specific brain coordinate, the acoustic energy causes the microbubbles to vibrate (cavitate), temporarily loosening the tight junctions of endothelial cells in the blood-brain barrier so therapeutic drugs can pass into tissue.

Editorial Notes:

  • This article was edited by a Neuroscience News editor.
  • Journal paper reviewed in full.
  • Additional context added by our staff.

About this brain cancer and neurotech research news

Author: Josh Barney
Source: University of Virginia Health System
Contact: Josh Barney – University of Virginia Health System
Image: The image is credited to Neuroscience News

Original Research: The findings will appear in Radiology

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