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体内神经光散射活动的检测:大鼠脑的光透过率研究。

Detection of neural light-scattering activity in vivo: optical transmittance studies in the rat brain.

机构信息

Department of Biomedical Engineering, Emory University/Georgia Institute of Technology, 1760 Haygood Drive, HSRB W200, Atlanta, GA, 30322, USA.

Department of Biomedical Engineering, Emory University/Georgia Institute of Technology, 1760 Haygood Drive, HSRB W200, Atlanta, GA, 30322, USA.

出版信息

Neuroimage. 2018 Oct 1;179:207-214. doi: 10.1016/j.neuroimage.2018.06.039. Epub 2018 Jun 14.

Abstract

Optical studies of ex vivo brain slices where blood is absent show that neural activity is accompanied by significant intrinsic optical signals (IOS) related to activity-dependent scattering changes in neural tissue. However, the neural scattering signals have been largely ignored in vivo in widely-used IOS methods where absorption contrast from hemoglobin was employed. Changes in scattering were observed on a time scale of seconds in previous brain slice IOS studies, similar to the time scale for the hemodynamic response. Therefore, potential crosstalk between the scattering and absorption changes may not be ignored if they have comparable contributions to IOS. In vivo, the IOS changes linked to neural scattering have been elusive. To isolate neural scattering signals in vivo, we employed 2 implantable optodes for small-separation (2 mm) transmission measurements of local brain tissue in anesthetized rats. This unique geometry enables us to separate neuronal activity-related changes in neural tissue scattering from changes in blood absorption based upon the direction of the signal change. The changes in IOS scattering and absorption in response to up-states of spontaneous neuronal activity in cortical or subcortical structures have strong correlation to local field potentials, but significantly different response latencies. We conclude that activity-dependent neural tissue scattering in vivo may be an additional source of contrast for functional brain studies that provides complementary information to other optical or MR-based systems that are sensitive to hemodynamic contrast.

摘要

在没有血液的离体脑片的光学研究中表明,神经活动伴随着与神经组织中活动依赖性散射变化相关的显著固有光学信号 (IOS)。然而,在广泛使用血红蛋白吸收对比度的常用 IOS 方法中,体内的神经散射信号在很大程度上被忽略了。在以前的脑片 IOS 研究中,散射变化在秒级的时间尺度上被观察到,与血液动力学响应的时间尺度相似。因此,如果散射和吸收变化对 IOS 有相当的贡献,它们之间潜在的串扰可能不容忽视。在体内,与神经散射相关的 IOS 变化一直难以捉摸。为了在体内分离神经散射信号,我们在麻醉大鼠中使用了两个可植入的光纤,进行局部脑组织的小间距(2mm)传输测量。这种独特的几何形状使我们能够根据信号变化的方向,将神经组织散射中与神经元活动相关的变化与血液吸收的变化区分开来。对皮质或皮质下结构中自发神经元活动的上升状态的 IOS 散射和吸收的变化与局部场电位有很强的相关性,但响应潜伏期有很大的不同。我们得出结论,体内活动依赖性神经组织散射可能是功能脑研究的另一种对比源,它提供了对其他对血液动力学对比敏感的光学或基于磁共振的系统的补充信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/121c/6069533/6731dff05c2a/nihms976637f1.jpg

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