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Laser speckle imaging of brain blood flow through a transparent nanocrystalline yttria-stabilized-zirconia cranial implant

机译:通过透明纳米晶的氧化锆稳定 - 氧化锆颅植入血液流动激光散斑成像

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The laser speckle flowmetry methods based on laser speckle imaging (LSI) have attracted extensive attention recently because they can image brain blood flow with high spatiotemporal resolution. However, the poor transparency of the cranial bone limits the spatial resolution and the imaging depth. This problem has previously been addressed in animal studies by removing or thinning the skull to transparency. Nevertheless, a permanent and reliable solution has not yet been developed. Our study demonstrates a new method to address this challenge in biomedical imaging research, through the use of novel transparent cranial implants made from nanocrystalline yttria-stabilized zirconia (nc-YSZ). By applying LSI to underlying brain in an acute murine model, we show that spatial resolution and quantitative accuracy of blood flow measurement are improved when imaging through transparent nc-YSZ implants relative to native cranium. As such, these results provide the initial evidence supporting the feasibility of nc-YSZ transparent cranial implant as a clinically-viable long-term optical access for LSI on a chronically-recurring basis, thereby suppressing the need for repeated craniotomies. Successful development of this method has the potential to advance the study of neuropathologies or novel neuro-procedures in animal models where measurement of cerebral blood flow is of interest, such as blood flow changes during stroke, changes in blood flow due to functional activation, and spreading depolarization and its role in brain injuries, pathophysiology of migraine, and subarachnoid hemorrhage.
机译:基于激光散斑成像(LSI)的激光散斑流动方法最近引起了广泛的关注,因为它们可以通过高时的血流分辨率进行脑血流。然而,颅骨的透明度差限制了空间分辨率和成像深度。通过去除或减少颅骨来透明,此问题先前已经在动物研究中得到解决。尽管如此,尚未开发永久和可靠的解决方案。我们的研究通过使用由纳米晶yttra稳定的氧化锆(NC-YSZ)制成的新型透明颅骨植入来表明一种解决生物医学成像研究中的这种挑战的新方法。通过将LSI应用于急性小鼠模型中的基础脑,我们表明,当通过相对于天然颅骨成像时,在成像时,改善了血流测量的空间分辨率和定量精度。因此,这些结果提供了支持NC-YSZ透明颅骨植入物的可行性作为LSI的临床活性的长期光学访问的初始证据,从而抑制了反复开颅的需求。这种方法的成功发展有可能推进动物模型中神经病理学或新型神经程序的研究,其中脑血流量的测量感兴趣,例如血液流动期间的血流变化,由于功能活化导致的血流变化,和血流迁移去极化及其在脑损伤中的作用,偏头痛的病理生理学,蛛网膜下腔出血。

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