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利用扩散磁共振成像估计脑相似性网络

Estimating Brain Similarity Networks With Diffusion MRI.

作者信息

Sadikov Amir, Choi Hannah L, Cai Lanya T, Mukherjee Pratik

机构信息

Radiology and Biomedical Imaging, University of California, San Francisco, California, USA.

Graduate Group in Bioengineering, University of California, San Francisco, California, USA.

出版信息

Hum Brain Mapp. 2025 Aug 1;46(11):e70313. doi: 10.1002/hbm.70313.

Abstract

Structural similarity has emerged as a promising tool in mapping the network organization of an individual, living human brain. Here, we propose diffusion similarity networks (DSNs), which employ rotationally invariant spherical harmonic features derived from diffusion magnetic resonance imaging (dMRI), to map gray matter structural organization. Compared to prior approaches, DSNs showed clearer laminar, cytoarchitectural, and micro-architectural organization; greater sensitivity to age, cognition, and sex; higher heritability in a large dataset of healthy young adults; and straightforward extension to non-cortical regions. We show DSNs are correlated with functional, structural, and gene expression connectomes, and their gradients align with the sensory-fugal and sensorimotor-association axes of the cerebral cortex, including neuronal oscillatory dynamics, metabolism, immunity, and dopaminergic and glutaminergic receptor densities. DSNs can be easily integrated into conventional dMRI analysis, adding information complementary to structural white matter connectivity, and could prove useful in investigating a wide array of neurological and psychiatric conditions.

摘要

结构相似性已成为描绘个体活体人类大脑网络组织的一种很有前景的工具。在此,我们提出扩散相似性网络(DSN),它利用从扩散磁共振成像(dMRI)得出的旋转不变球谐特征来描绘灰质结构组织。与先前的方法相比,DSN显示出更清晰的分层、细胞结构和微结构组织;对年龄、认知和性别的更高敏感性;在一大组健康年轻成年人数据集中更高的遗传力;以及对非皮质区域的直接扩展。我们表明DSN与功能、结构和基因表达连接组相关,并且它们的梯度与大脑皮质的感觉 - 离心和感觉运动 - 联合轴对齐,包括神经元振荡动力学、新陈代谢、免疫以及多巴胺能和谷氨酸能受体密度。DSN可以很容易地整合到传统的dMRI分析中,添加与结构性白质连接互补的信息,并且可能在研究广泛的神经和精神疾病中证明是有用的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d13/12335008/4f09d2a36652/HBM-46-e70313-g002.jpg

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