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Improving imaging of cancerous tissues by 'reversing time'

Date:
November 2, 2014
Source:
Washington University in St. Louis
Summary:
A novel time-reversal technology is being applied by researchers that allows them to better focus light in tissue, such as muscles and organs. Current high-resolution optical imaging technology allows researchers to see about 1 millimeter deep into the body. In an attempt to improve this "visibility," this study used photoacoustic imaging, which combines light with acoustic waves, or sound, to form a sharper image, even several centimeters into the skin.
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As a child, it was fascinating to put a flashlight up to our palms to see the light shine through the hand. Washington University in St. Louis engineers are using a similar idea to track movement inside the body's tissues to improve imaging of cancerous tissues and to develop potential treatments.

Lihong Wang, PhD, the Gene K. Beare Distinguished Professor of Biomedical Engineering at the School of Engineering & Applied Science is applying a novel time-reversal technology that allows researchers to better focus light in tissue, such as muscles and organs.

Current high-resolution optical imaging technology allows researchers to see about 1 millimeter deep into the body. Beyond that, the light scatters and obscures the features, which is why we can't see bones or tissue in the hand with a flashlight. To overcome this, Wang and his lab developed photoacoustic imaging, which combines light with acoustic waves, or sound, to form a sharper image, even several centimeters into the skin.

In new research published Nov. 2 in Nature Photonics Advance Online Edition, Wang is now using a new technology called time-reversed adapted-perturbation (TRAP) optical focusing, which sends guiding light into tissue to seek movement. The light that has traversed stationary tissue appears differently than light that has moved through something moving, such as blood. By taking two successive images, they can subtract the light through stationary tissue, retaining only the scattered light due to motion. Then, they send that light back to its original source via a process called time-reversal so that it becomes focused once back in the tissue.

"This can potentially be used in imaging or therapy," Wang says. "For example, focusing pulsed light on port wine stains, which are excessive growth of blood vessels, could remove the stains without damaging the surrounding normal skin."

In 2011, Wang's lab was the first to use ultrasound focusing to provide a virtual, non-invasive internal guide star that allowed them to focus on anything moving in tissue. But TRAP focusing is much more efficient in tracking moving targets, Wang says in the new research. TRAP focusing can enhance and contrast by redistributing and concentrating light on the targets, allowing for images to be taken from greater depths.


Story Source:

Materials provided by Washington University in St. Louis. Original written by Beth Miller. Note: Content may be edited for style and length.


Journal Reference:

  1. Cheng Ma, Xiao Xu, Yan Liu, Lihong V. Wang. Time-reversed adapted-perturbation (TRAP) optical focusing onto dynamic objects inside scattering media. Nature Photonics, 2014; DOI: 10.1038/nphoton.2014.251

Cite This Page:

Washington University in St. Louis. "Improving imaging of cancerous tissues by 'reversing time'." ScienceDaily. ScienceDaily, 2 November 2014. <www.sciencedaily.com/releases/2014/11/141102155858.htm>.
Washington University in St. Louis. (2014, November 2). Improving imaging of cancerous tissues by 'reversing time'. ScienceDaily. Retrieved April 24, 2024 from www.sciencedaily.com/releases/2014/11/141102155858.htm
Washington University in St. Louis. "Improving imaging of cancerous tissues by 'reversing time'." ScienceDaily. www.sciencedaily.com/releases/2014/11/141102155858.htm (accessed April 24, 2024).

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