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以亚毫米分辨率对人脑髓鞘和神经元密度进行可扩展的映射。

Scalable mapping of myelin and neuron density in the human brain with micrometer resolution.

机构信息

Department of Electrical and Computer Engineering, Boston University, 8 St Mary's St, Boston, 02215, USA.

Department of Radiology, Massachusetts General Hospital, A.A. Martinos Center for Biomedical Imaging, 13th Street, Boston, 02129, USA.

出版信息

Sci Rep. 2022 Jan 10;12(1):363. doi: 10.1038/s41598-021-04093-y.

Abstract

Optical coherence tomography (OCT) is an emerging 3D imaging technique that allows quantification of intrinsic optical properties such as scattering coefficient and back-scattering coefficient, and has proved useful in distinguishing delicate microstructures in the human brain. The origins of scattering in brain tissues are contributed by the myelin content, neuron size and density primarily; however, no quantitative relationships between them have been reported, which hampers the use of OCT in fundamental studies of architectonic areas in the human brain and the pathological evaluations of diseases. Here, we built a generalized linear model based on Mie scattering theory that quantitatively links tissue scattering to myelin content and neuron density in the human brain. We report a strong linear relationship between scattering coefficient and the myelin content that is retained across different regions of the brain. Neuronal cell body turns out to be a secondary contribution to the overall scattering. The optical property of OCT provides a label-free solution for quantifying volumetric myelin content and neuron cells in the human brain.

摘要

光学相干断层扫描(OCT)是一种新兴的 3D 成像技术,可定量分析散射系数和反向散射系数等固有光学特性,已被证明可用于区分人脑的精细微观结构。脑组织中的散射源主要由髓鞘含量、神经元大小和密度贡献;然而,它们之间没有定量关系的报道,这阻碍了 OCT 在人类大脑的结构区域的基础研究和疾病的病理评估中的应用。在这里,我们建立了一个基于米氏散射理论的广义线性模型,该模型将组织散射与大脑中的髓鞘含量和神经元密度定量联系起来。我们报告了散射系数与髓鞘含量之间的强线性关系,该关系在大脑的不同区域都保持不变。神经元细胞体被证明是整体散射的次要贡献者。OCT 的光学特性为定量测量人脑内髓鞘含量和神经元细胞提供了一种无标记的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff02/8748995/208341c92dc5/41598_2021_4093_Fig1_HTML.jpg

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