Rice lab pioneers noninvasive measurement of gene expression at target locations in the brain

HOUSTON – (Aug. 7, 2024) – The ability to alter or prevent the expression of faulty genes in the brain could be leveraged as a powerful therapeutic against neurodegenerative disease. However, the molecular underpinnings of the living brain are still largely inaccessible, hampering progress on such promising therapeutics. Available options for probing the brain are […]

Aug 8, 2024 - 04:00
Rice lab pioneers noninvasive measurement of gene expression at target locations in the brain

HOUSTON – (Aug. 7, 2024) – The ability to alter or prevent the expression of faulty genes in the brain could be leveraged as a powerful therapeutic against neurodegenerative disease. However, the molecular underpinnings of the living brain are still largely inaccessible, hampering progress on such promising therapeutics.

Available options for probing the brain are not quite up to the task. The most effective way to record molecular information from multiple genes is biopsy ⎯ an invasive, high-risk procedure.

Jerzy Szablowski

Credit: (Photo by Jeff Fitlow/Rice University)

HOUSTON – (Aug. 7, 2024) – The ability to alter or prevent the expression of faulty genes in the brain could be leveraged as a powerful therapeutic against neurodegenerative disease. However, the molecular underpinnings of the living brain are still largely inaccessible, hampering progress on such promising therapeutics.

Available options for probing the brain are not quite up to the task. The most effective way to record molecular information from multiple genes is biopsy ⎯ an invasive, high-risk procedure.

A study published today in Science Advances describes new technology developed by the Rice University lab of bioengineer Jerzy Szablowski that could be a game changer for brain-based gene therapy. Called “Recovery of Markers through InSonation,” or REMIS, the new noninvasive tool can measure expression of gene therapy or endogenous genes in specific brain regions.

“Our limited ability to measure gene expression has significant consequences for the future of gene therapy,” Szablowski said. “For example, in most cases it is not possible to noninvasively confirm whether gene therapy has successfully reached the brain, how long it stays there and which brain regions are being affected by it. Our study shows it is possible to measure gene expression and gene therapy delivery in specific brain regions with a relatively simple ultrasound procedure.”

REMIS builds on prior work by Szablowski and collaborators that focused on engineered molecules known as released markers of activity (RMAs). With the RMA platform, the researchers introduced a synthetic gene expression reporter to the brain, which in turn produced a protein that could cross from the brain into the bloodstream, where it could be easily retrieved and measured with a blood test with exquisite sensitivity: RMA expression in as few as 12 neurons could be reliably detected in blood.

The downside to this initial version of the technology was that the markers crossed the brain-blood barrier indiscriminately and thus could not be traced back to specific brain regions. REMIS fixed the issue by using ultrasound to ferry engineered protein markers into the bloodstream only from targeted locations in the brain.

“Here we made markers that cannot cross these blood vessels until they are stimulated with ultrasound,” Szablowski said.

Another advantage for REMIS is that it can also measure naturally occurring gene expression. One example is c-Fos, a gene that is used as a marker of neuronal activity. This highlights the potential of REMIS not only for gene therapy but also as a diagnostic and research tool.

“We are particularly excited about this technology, especially since our work has already led to a funded clinical trial with our colleagues at Baylor College of Medicine and MD Anderson Cancer Center,” Szablowski said.

The trial will involve using focused ultrasound to release proteins present in the brain of patients with Parkinson’s disease into the bloodstream, which could provide new insights into the molecular mechanisms involved in the disease. However, Szablowski said a more immediate application for REMIS is monitoring the success of gene delivery in the brain.

“Gene therapy is one of the most exciting frontiers in medicine, but we need to have tools to know whether the gene therapeutic reaches the part of the brain it’s supposed to and works in the ways intended,” Szablowski said. “REMIS provides a nonsurgical option to do so, potentially utilizing the gene therapeutic itself as a marker. This is a big advantage since methods such as PET scans entail the clinical development of new probes for every new therapeutic.”

The research was supported in part by the Michael J. Fox Foundation (020154), the National Institutes of Health (R21EB033059), the Welch Foundation (C-2048-20200401) and the Packard Fellowship for Science and Engineering (2021-73005). The content in this press release is solely the responsibility of the authors and does not necessarily represent the official views of the funders.

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This news release can be found online at news.rice.edu.

Follow Rice News and Media Relations via Twitter @RiceUNews.

Peer-reviewed paper:

Acoustically-Targeted Measurement of Transgene 1 Expression in the Brain | Science Advances | DOI: 10.1126/sciadv.adj7686

Authors: Joon Pyung Seo, James Tripett, Zhimin Huang, Sangsin Lee, Shirin Nouraein, Ryan Wang and Jerzy Szablowski

https://doi.org/10.1126/sciadv.adj7686

Image downloads:

https://news-network.rice.edu/news/files/2024/08/000_striatum_Szablowski.jpg
CAPTION: Striatum region (left) in rodent brain with opened blood-brain barrier. Green fluorescent protein expressed in striatum region in rodent brain (right) in response to induced neuronal activity. (Image courtesy of Laboratory for Noninvasive Imaging/Rice University)

https://news-network.rice.edu/news/files/2024/08/220823_Engineering_Fitlow_289-105.jpg
CAPTION: A study published today in Science Advances describes new technology developed by the Rice University lab of bioengineer Jerzy Szablowski that could be a game changer for brain-based gene therapy. (Photo by Jeff Fitlow/Rice University)

About Rice:

Located on a 300-acre forested campus in Houston, Rice University is consistently ranked among the nation’s top 20 universities by U.S. News & World Report. Rice has highly respected schools of architecture, business, continuing studies, engineering, humanities, music, natural sciences and social sciences and is home to the Baker Institute for Public Policy. With 4,574 undergraduates and 3,982 graduate students, Rice’s undergraduate student-to-faculty ratio is just under 6-to-1. Its residential college system builds close-knit communities and lifelong friendships, just one reason why Rice is ranked No. 1 for lots of race/class interaction, No. 2 for best-run colleges and No. 12 for quality of life by the Princeton Review. Rice is also rated as a best value among private universities by Kiplinger’s Personal Finance.


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