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Rodent models, such as mice and rats, are commonly used to examine retinal ganglion cell damage in eye diseases. However, as nocturnal animals, rodent retinal structures differ from primates, imposing significant limitations in studying retinal pathology. Tree shrews () are small, diurnal paraprimates that exhibit superior visual acuity and color vision compared with mice. Like humans, tree shrews have a dense retinal nerve fiber layer (RNFL) and a thick ganglion cell layer (GCL), making them a valuable model for investigating optic neuropathies. In this study, we applied high-resolution visible-light optical coherence tomography to characterize the tree shrew retinal structure in vivo and compare it with that of humans and mice. We quantitatively characterize the tree shrew's retinal layer structure in vivo, specifically examining the sublayer structures within the inner plexiform layer (IPL) for the first time. Next, we conducted a comparative analysis of retinal layer structures among tree shrews, mice, and humans. We then validated our in vivo findings in the tree shrew inner retina using ex vivo confocal microscopy. The in vivo and ex vivo analyses of the shrew retina build the foundation for future work to accurately track and quantify the retinal structural changes in the IPL, GCL, and RNFL during the development and progression of human optic diseases.
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http://dx.doi.org/10.1523/ENEURO.0373-23.2024 | DOI Listing |
Front Aging Neurosci
August 2025
Research Center for Global Agromedicine, Obihiro University of Agriculture and Veterinary Medicine, Obihiro, Japan.
The aim of this study was to explore and discuss efficient and effective mammalian models for Alzheimer's disease (AD). In this study, efficient AD models are characterized by a small body size, a short lifespan, and rapid development of the main pathology including amyloid plaque formation. Effective AD models are expected to exhibit not only the main pathology, but also co-pathology associated with other neurodegenerative diseases (e.
View Article and Find Full Text PDFNature
August 2025
Department of Molecular and Cell Biology, University of California Berkeley, Berkeley, CA, USA.
Our knowledge of the brain processes that govern vision is largely derived from studying primates, whose hierarchically organized visual system inspired the architecture of deep neural networks. This raises questions about the universality of such hierarchical structures. Here we examined the large-scale functional organization for vision in one of the closest living relatives to primates, the tree shrew.
View Article and Find Full Text PDFCureus
July 2025
Department of Ophthalmology, UKM (Universiti Kebangsaan Malaysia) Medical Centre, Kuala Lumpur, MYS.
Emmetropization was thought to result from a genetically determined process until later discoveries found that myopia could be induced, which implied that environmental factors, even modest changes, can affect eye growth under local retinal control. Humans are born with refractive errors and emmetropize into a refractive state of no error during the developmental period. For many years, it has not yet been clearly known how the eye determines the sign of defocus during the developmental period.
View Article and Find Full Text PDFMol Imaging Biol
August 2025
Key Laboratory of Big Data-Based Precision Medicine (Beihang University), School of Engineering Medicine & School of Biological Science and Medical Engineering, Beihang University, Beijing, 100191, China.
Purpose: Ischemic stroke is a significant threat to human life and health, and timely diagnosis is essential for improving patient outcomes. Magnetic Particle Imaging (MPI), as an emerging high-sensitivity imaging technology, holds significant potential for the diagnosis of ischemic stroke. It is necessary to conduct multimodal MPI research based on the characteristics of the animal model and the detection needs of ischemic stroke.
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