Kelli Cannon, Aundrea Bartley, Lynn Dobrunz, Mark Bolding
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引用次数: 0
摘要
对 X 射线的视觉感知是一种有据可查,但却鲜为人知的现象。视杆细胞和视紫红质与视觉对 X 射线的反应有关,但一些证据表明,X 射线通过与可见光不同的机制激发视网膜。虽然目前还不清楚犀牛蛋白在 X 射线感知中的作用,但它有可能充当 X 射线受体,因此人们猜测它可以充当转基因表达的 X 射线受体。如果是这样的话,它就可以用来转导经颅 X 射线信号,并控制基因靶向神经元群的活动,这是一种侵入性较小的光遗传学,即 X 遗传学。在这里,我们研究了人眼视网膜素(hRho)在视网膜环境之外表达时是否能够传递 X 射线信号。我们使用活细胞 cAMP GloSensor 发光测定法来测量表达 hRho 的 HEK293 细胞在可见光和 X 射线刺激下的 cAMP 下降情况。我们的研究表明,尽管表达 hRho 的 HEK293 细胞对可见光有强烈反应,但在 X 射线刺激下并没有观察到 cAMP GloSensor 发光下降。此外,辐照对随后可见光刺激的 cAMP GloSensor 反应也没有显著影响。这些结果表明,异位表达的罗多普勒蛋白并不具有 X 射线受体的功能,也不能将经颅 X 射线信号转导为神经活动,从而实现 X 射线介导的基因靶向神经调控。
Ectopically expressed rhodopsin is not sensitive to X-rays.
Visual perception of X-radiation is a well-documented, but poorly understood phenomenon. Scotopic rod cells and rhodopsin have been implicated in visual responses to X-rays, however, some evidence suggests that X-rays excite the retina via a different mechanism than visible light. While rhodopsin's role in X-ray perception is unclear, the possibility that it could function as an X-ray receptor has led to speculation that it could act as a transgenically expressed X-ray receptor. If so, it could be used to transduce transcranial X-ray signals and control the activity of genetically targeted populations of neurons in a less invasive version of optogenetics, X-genetics. Here we investigate whether human rhodopsin (hRho) is capable of transducing X-ray signals when expressed outside of the retinal environment. We use a live-cell cAMP GloSensor luminescence assay to measure cAMP decreases in hRho-expressing HEK293 cells in response to visible light and X-ray stimulation. We show that cAMP GloSensor luminescence decreases are not observed in hRho-expressing HEK293 cells in response to X-ray stimulation, despite the presence of robust responses to visible light. Additionally, irradiation had no significant effect on cAMP GloSensor responses to subsequent visible light stimulation. These results suggest that ectopically expressed rhodopsin does not function as an X-ray receptor and is not capable of transducing transcranial X-ray signals into neural activity for X-ray mediated, genetically targeted neuromodulation.
期刊介绍:
BMC Neuroscience is an open access, peer-reviewed journal that considers articles on all aspects of neuroscience, welcoming studies that provide insight into the molecular, cellular, developmental, genetic and genomic, systems, network, cognitive and behavioral aspects of nervous system function in both health and disease. Both experimental and theoretical studies are within scope, as are studies that describe methodological approaches to monitoring or manipulating nervous system function.