Medical Department, Brookhaven National Laboratory, Upton, NY 11973-5000, USA.
Rev Neurosci. 2011;22(6):695-709. doi: 10.1515/RNS.2011.053. Epub 2011 Nov 18.
It is known that a remaining challenge for functional brain imaging is to distinguish the coupling and decoupling effects among neuronal activity, cerebral metabolism, and vascular hemodynamics, which highlights the need for new tools to enable simultaneous measures of these three properties in vivo. Here, we review current neuroimaging techniques and their prospects and potential limitations for tackling this challenge. We then report a novel dual-wavelength laser speckle imaging (DW-LSI) tool developed in our labs that enables simultaneous imaging of cerebral blood flow (CBF), cerebral blood volume, and tissue hemoglobin oxygenation, which allows us to monitor neurovascular and tissue metabolic activities at high spatiotemporal resolutions over a relatively large field of view. Moreover, we report digital frequency ramping Doppler optical coherence tomography (DFR-OCT) that allows for quantitative 3D imaging of the CBF network in vivo. In parallel, we review calcium imaging techniques to track neuronal activity, including intracellular calcium approach using Rhod2 fluorescence technique that we develop to detect neuronal activity in vivo. We report a new multimodality imaging platform that combines DW-LSI, DFR-OCT, and calcium fluorescence imaging for simultaneous detection of cortical hemodynamics, cerebral metabolism, and neuronal activities of the animal brain in vivo, as well as its integration with microprobes for imaging neuronal function in deep brain regions in vivo. Promising results of in vivo animal brain functional studies suggest the potential of this multimodality approach for future awake animal and behavioral studies.
已知,功能脑成像的一个遗留挑战是区分神经元活动、脑代谢和血管血液动力学之间的耦合和去耦效应,这突出了需要新工具来实现在体同时测量这三种特性。在这里,我们回顾了当前的神经影像学技术及其在解决这一挑战方面的前景和潜在局限性。然后,我们报告了我们实验室开发的一种新型双波长激光散斑成像 (DW-LSI) 工具,该工具可实现脑血流 (CBF)、脑血容量和组织血红蛋白氧合的同时成像,使我们能够以较高的时空分辨率监测神经血管和组织代谢活动在相对较大的视场范围内。此外,我们报告了数字频率斜坡多普勒光相干断层扫描 (DFR-OCT),允许对体内 CBF 网络进行定量 3D 成像。同时,我们回顾了钙成像技术来跟踪神经元活动,包括我们开发的使用 Rhod2 荧光技术的细胞内钙方法,以在体内检测神经元活动。我们报告了一种新的多模态成像平台,该平台结合了 DW-LSI、DFR-OCT 和钙荧光成像,用于同时检测动物大脑的皮质血流动力学、脑代谢和神经元活动,以及将其与微探针集成用于在体内深层脑区进行神经元功能成像。体内动物大脑功能研究的有希望的结果表明,这种多模态方法在未来的清醒动物和行为研究中具有潜力。