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利用飞秒时间分辨测量技术对大鼠和猴子大脑的光学特性进行原位估计。

In situ estimation of optical properties of rat and monkey brains using femtosecond time-resolved measurements.

机构信息

Department of Biomedical Optics, Institute for Medical Photonics Research, Preeminent Medical Photonics Education & Research Center, Hamamatsu University School of Medicine, Hamamatsu, Japan.

Human Informatics Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Japan.

出版信息

Sci Rep. 2019 Jun 24;9(1):9165. doi: 10.1038/s41598-019-45736-5.

Abstract

An accurate knowledge of tissue optical properties (absorption coefficients, μ, and reduced scattering coefficients, μ') is critical for precise modeling of light propagation in biological tissue, essential for developing diagnostic and therapeutic optical techniques that utilize diffusive photons. A great number of studies have explored the optical properties of various tissue, and these values are not known in detail due to difficulties in the experimental determination and significant variations in tissue constitution. Especially, in situ estimates of the optical properties of brain tissue, a common measurement target in optical imaging, is a challenge because of its layer structure (where the thin gray matter covers the white matter). Here, we report an approach to in situ estimates of the μ and μ' of the gray and white matter in living rat and monkey brains by using femtosecond time-resolved measurements and Monte Carlo simulation. The results demonstrate that the μ of the gray matter is larger than that of the white matter, while there was no significant difference in the μ' between the gray and white matter. The optical properties of the rat brain were very similar to those of the monkey brain except for the μ of the gray matter here.

摘要

准确了解组织的光学特性(吸收系数μ和散射系数μ')对于精确模拟生物组织中的光传播至关重要,这对于开发利用扩散光子的诊断和治疗光学技术至关重要。大量研究已经探索了各种组织的光学特性,但由于实验测定的困难和组织构成的显著变化,这些值并不详细。特别是,由于其层状结构(薄灰质覆盖白质),对脑组织结构中常见的光学成像测量目标的组织光学特性的原位估计是一个挑战。在这里,我们报告了一种通过飞秒时间分辨测量和蒙特卡罗模拟来原位估计活体大鼠和猴子脑的灰质和白质μ和μ'的方法。结果表明,灰质的μ大于白质的μ,而灰质和白质之间的μ'没有显著差异。大鼠脑的光学特性与猴脑非常相似,除了这里的灰质μ。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7488/6591507/6f1a355f8041/41598_2019_45736_Fig1_HTML.jpg

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