Disturbances in retinal perfusion have been implicated in the pathogenesis of various ocular diseases, such as diabetic retinopathy, hypertensive retinopathy, and glaucoma1,2,3. Thus, studies aimed at measuring vascular reactivity in the retina are important to understand the pathophysiology of these diseases and to develop new treatment approaches.
Due to the possibility of gene manipulation in the murine genome, the mouse has become a widely used animal model for studies of the cardiovascular system4. However, because of the small size of retinal blood vessels (≤ 30 µm), measurement of vascular reactivity in the mouse retina is challenging. For example, stereomicroscopic techniques for in vivo measurement are limited in their optical resolution and therefore only allow to exactly detect changes in diameter or blood flow in small blood of less than ≤ 30 µm diameter when equipped with additional sophisticated devices, such as a confocal microscope using fluorescent dyes or the Adaptive Optics Scanning Light Ophthalmoscope5,6. Moreover, the interpretation of in vivo measurements aimed at identifying local signaling mechanisms in retinal blood vessels can be confounded by anaesthetics, changes in systemic blood pressure and the influence of retrobulbar blood vessels.
Therefore, we developed a method to measure responses of mouse retinal blood vessels with high optic resolution ex vivo. The technique presented herein allows visualization of retinal arterioles via transmitted light microscopy. This method, which can also be used in rats, provides access to the advantages of gene targeting technology in ocular vascular research.