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News Release

Wednesday, April 23, 2025

四虎影院researchers supercharge ordinary clinical device to get a better look at the back of the eye

New technique brings retina into sharper focus .

3 slides of retina tissue taken using three separate imaging techniques. Each image gets progressively clearer. Comparison of the same patch of retina labeled with indocyanine green and visualized 3 different ways. A) Scanning laser ophthalmoscopy. B) AI-enhanced scanning laser ophthalmoscopy. C) Adaptive optics scanning laser ophthalmoscopy. Arrows highlight the same cell seen in different modalities.

Scientists at the 四虎影院 (NIH) have leveraged artificial intelligence to transform a device designed to see tissues in the back of the eye into one sharp enough to make out individual cells. The technique provides imaging resolution that rivals the most advanced devices available and is cheaper, faster, and doesn鈥檛 require specialized equipment or expertise. The strategy has implications for early detection of disease and for the monitoring of treatment response by making what was once invisible now visible.聽聽

鈥淎I potentially puts next-generation imaging in the hands of standard eye clinics. It鈥檚 like adding a high-resolution lens to a basic camera.鈥 said Johnny Tam, Ph.D., investigator at NIH鈥檚 National Eye Institute and senior author of the study report, which published in Communications Medicine.

Imaging devices, known as ophthalmoscopes, are widely used to examine the light-sensing retina in the back of the eye. A scanning laser ophthalmoscope is standard in eye clinics, but its resolution can only make out structures at the tissue level鈥攖hings such as lesions, blood vessels, and the optic nerve head. Next-generation ophthalmoscopes enabled with adaptive optics鈥攁 technology that compensates for light distortion鈥攃an make out cellular features, providing greater diagnostic information. However, adaptive optics-enabled imaging is still in the experimental phase.

Tam and collaborators developed a custom AI system to digitally enhance images of a layer of tissue beneath the light-sensing photoreceptors, known as the retina鈥檚 pigmented epithelium (RPE). The first step was to teach the system to recognize image quality as poor, moderate, or good. The researchers did this by feeding the system more than 1,400 images from different areas of the retina, obtained using adaptive-optics ophthalmoscopy. Next, they fed the system corresponding images from the same retinal locations but obtained using standard ophthalmoscopy. An image sharpness test showed that AI improved clarity eightfold.

鈥淥ur system used what it learned from rating the images obtained from adaptive optics to digitally enhance images obtained with standard ophthalmoscopy,鈥 said Tam. 鈥淚t鈥檚 important to point out that the system is not creating something from nothing. Features that we see in RPE cells with standard imaging are there, they鈥檙e just unclear.鈥

These techniques involve injection of a dye called indocyanine green (ICG) into the bloodstream to increase contrast of anatomical features. In the eye clinic, ICG is usually used to image the blood vessels of the eye.

鈥淥ur ICG imaging strategy allows RPE cells to be quickly and routinely assessed in the clinic,鈥 said Joanne Li, Ph.D., first author of the report and a biomedical engineer in Tam鈥檚 lab. 鈥淲ith AI, high quality images of the RPE cells can be obtained in a matter of seconds, using standard clinical imaging instruments.鈥

The RPE cells鈥 function is to nourish and support photoreceptors. A variety of blinding conditions first affect RPE cells, including age-related macular degeneration, vitelliform macular dystrophy, and Stargardt disease. However, RPE cells cannot be easily imaged in the clinic. AI-enhanced ICG ophthalmoscopy puts RPE imaging within reach of the typical eye clinic.##

This press release describes a basic research finding. Basic research increases our understanding of human behavior and biology, which is foundational to advancing new and better ways to prevent, diagnose, and treat disease. Science is an unpredictable and incremental process鈥 each research advance builds on past discoveries, often in unexpected ways. Most clinical advances would not be possible without the knowledge of fundamental basic research. To learn more about basic research, visit /news-events/basic-research-digital-media-kit.

NEI聽leads the federal government鈥檚 efforts聽to eliminate vision loss and improve quality of life through vision research鈥riving innovation, fostering collaboration, expanding the vision workforce, and educating the public and key stakeholders.聽NEI supports basic and clinical science programs to develop sight-saving treatments and to broaden opportunities for people with vision impairment.聽For more information, visit聽聽 . 聽

About the 四虎影院 (NIH): NIH, the nation's medical research agency, includes 27 Institutes and Centers and is a component of the U.S. Department of Health and Human Services. 四虎影院is the primary federal agency conducting and supporting basic, clinical, and translational medical research, and is investigating the causes, treatments, and cures for both common and rare diseases. For more information about 四虎影院and its programs, visit www.nih.gov.

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References

Li J, Liu J, Das V, Le H, Aguilera N, Bower Aj, Giannini JP, Lu R, Abouassali S, Chew EY, Brooks BP, Zein WM, Huryn LA, Volkov A, Liu T, Tam J 鈥淎rtificial intelligence assisted clinical fluorescence imaging achieves聽in vivo聽cellular resolution comparable to adaptive optics ophthalmology鈥. Published April 28, 2025, Communications Medicine

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