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Imaging peripheral microcapillary networks in humans using nailfold capillaroscopy (NFC) has highlighted the importance of microcirculation as a target organ system in a wide range of systemic illnesses1. Capillaroscopy involves the use of a microscope to magnify and visualize vessels in the nailfold in vivo. As such, it is a technique widely used in the clinic to detect peripheral microvascular dysfunction and abnormalities in a range of systemic conditions, including rheumatic2,3, cardiac4, ocular (e.g., glaucoma)5,6, and endocrine diseases (e.g., hypertension and diabetes mellitus7,8). Morphological changes in the nailfold capillaries, including hemorrhages, increased vessel tortuosity, and avascular regions, are readily detected using NFC. These morphological abnormalities represent pathological processes such as excessive or deficient microvascular remodeling9,10. NFC is a useful diagnostic tool for detecting these pathologies. Additionally, this technique is useful in the assessment of drug efficacy11.
However, translating clinical NFC findings to animal models of disease is challenging for many reasons. Visualizing microvasculature in animals is typically invasive (e.g., endoscopic), carried out ex vivo (e.g., post-mortem imaging of tissues), or expensive, requiring specialized equipment such as microcomputed tomography12,13, coherence tomography angiography14, and photoacoustic imaging techniques15. Since peripheral microvascular pathology is evident in a broad range of systemic and central nervous system diseases, including myocardial infarction16, hypertension17, age-related neurodegenerations of the central nervous system such as Alzheimer's disease18, and optic neuropathies such as glaucoma19, a non-invasive, cost-effective in vivo visualization technique is highly beneficial.
Capillaroscopy has been used to evaluate the nailfold microvasculature in animal models, including guinea pigs20 and mice21, thus demonstrating its capability as a non-invasive imaging tool. Here, we apply capillaroscopy to a different part of the nail, the nailbed. Harnessing the transparency of the mouse nail, nailbed capillaroscopy introduces a novel location for the visualization of peripheral microvasculature. In comparison to NFC, which is particularly useful for monitoring blood cell motion21,22, the nailbed capillaroscopy protocol described here provides a larger area for better observation of microvascular morphology and structure. We provide a protocol that allows researchers to easily and inexpensively assess the morphology of mouse nailbed microvasculature, which is a novel location for non-invasive peripheral vascular imaging. This protocol provides representative images of typical nailbed microvascular architecture in wild-type mice using two commonly used laboratory strains (SV129/S6 and C57/B6J). We show that nailbed capillaroscopy is an inexpensive, non-invasive microvascular imaging modality. Further studies using this exploratory method will be essential to apply nailbed capillaroscopy to a wide range of mouse models of disease where peripheral microvascular abnormalities are evident in pathology.