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Updated: May 25, 2026

Establishing Intracranial Brain Tumor Xenografts With Subsequent Analysis of Tumor Growth and Response to Therapy using Bioluminescence Imaging
Published on: July 13, 2010
Illuminating ongoing pain in mice with novel bioluminescent imaging
Subo Yuan1, Jia Yi Liew2, Ajay Pal2
1Department of Neurobiology, University of Texas Medical Branch at Galveston, TX 77555, United States; Institute for Human Infections and Immunity (IHII), University of Texas Medical Branch at Galveston, TX 77555, United States; Sealy Center for Environmental Health & Medicine, The University of Texas Medical Branch, Galveston, TX 77555, United States.
None:
Objectively measuring pain in laboratory animals is essential for pain research and analgesic development. Despite the development of various behavioral tests to measure evoked pain in animal models, measuring spontaneous pain remains challenging. To address this unmet need, we developed a novel imaging approach to detect spontaneous nociception in animal pain models. We generated a Bacterial Artificial Chromosomes transgenic mouse that expresses Redquorin under the murine synapsin 1 promoter. Redquorin is a fusion protein consisting of a 2x tandem dimer and Tomato Aequorin (tdTA), which emits long wavelength bioluminescence from activated neurons in the presence of coelenterazine. This luminescence can penetrate tissues and form a projected image on the body surface that can be detected with a spectrum In Vivo Imaging System, thus creating a Nociceptive Neuronal Activity Imaging mouse. We used the tdTA mice to image bioluminescence in the spinal regions as a surrogate of spontaneous pain induced by capsaicin, the HIV-1 envelope glycoprotein gp120, and spinal nerve ligation. Results show that Redquorin-emitted bioluminescence is a sensitive optical surrogate to measure spontaneous pain. This approach offers a new method to measure spontaneous pain in animal models for basic and translational research. PERSPECTIVE: This article presents a novel noninvasive imaging to visualize pain in mice, based on calcium dependent bioluminescence. This approach can potentially be used in high throughput screening of analgesics as it has a potential to make nociception measurement automatically.

