Institute for Biomedical Engineering and Institute of Pharmacology and Toxicology, Faculty of Medicine, University of Zurich, Zurich, 8057, Switzerland.
Institute for Biomedical Engineering, Department of Information Technology and Electrical Engineering, ETH Zurich, Zurich, 8092, Switzerland.
Adv Sci (Weinh). 2022 Aug;9(24):e2105588. doi: 10.1002/advs.202105588. Epub 2022 Jul 7.
Modern optical neuroimaging approaches are expanding the ability to elucidate complex brain function. Diverse imaging contrasts enable direct observation of neural activity with functional sensors along with the induced hemodynamic responses. To date, decoupling the complex interplay of neurovascular coupling and dynamical physiological states has remained challenging when employing single-modality functional neuroimaging readings. A hybrid fluorescence optoacoustic tomography platform combined with a custom data processing pipeline based on statistical parametric mapping is devised, attaining the first noninvasive observation of simultaneous calcium and hemodynamic activation patterns using optical contrasts. Correlated changes in the oxy- and deoxygenated hemoglobin, total hemoglobin, oxygen saturation, and rapid GCaMP6f fluorescence signals are observed in response to peripheral sensory stimulation. While the concurrent epifluorescence serves to corroborate and complement the functional optoacoustic observations, the latter further aids in decoupling the rapid calcium responses from the slowly varying background in the fluorescence recordings mediated by hemodynamic changes. The hybrid imaging platform expands the capabilities of conventional neuroimaging methods to provide more comprehensive functional readings for studying neurovascular and neurometabolic coupling mechanisms and related diseases.
现代光学神经成像方法正在扩展阐明复杂大脑功能的能力。不同的成像对比使得能够使用功能传感器直接观察神经活动以及诱导的血液动力学反应。迄今为止,当使用单一模式功能神经影像学读数时,解耦神经血管偶联和动态生理状态的复杂相互作用仍然具有挑战性。设计了一种荧光光声断层扫描平台与基于统计参数映射的定制数据处理管道相结合,首次实现了使用光学对比对钙和血液动力学激活模式的同时非侵入性观察。观察到对周围感觉刺激的响应中,氧合和去氧血红蛋白、总血红蛋白、氧饱和度和快速 GCaMP6f 荧光信号的相关变化。虽然并发荧光有助于证实和补充功能光声观察,但后者进一步有助于解耦荧光记录中由血液动力学变化介导的快速钙反应与缓慢变化的背景。混合成像平台扩展了传统神经成像方法的功能,可为研究神经血管和神经代谢偶联机制及相关疾病提供更全面的功能读数。