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基于深度学习的全脑 MRI 图像基因组关联研究的新型分类框架。

A novel classification framework for genome-wide association study of whole brain MRI images using deep learning.

机构信息

Department of Computer Science, Emory University, Atlanta, Georgia, United States of America.

Department of Radiology and Imaging Sciences, School of Medicine, Emory University, Atlanta, Georgia, United States of America.

出版信息

PLoS Comput Biol. 2024 Oct 15;20(10):e1012527. doi: 10.1371/journal.pcbi.1012527. eCollection 2024 Oct.

Abstract

Genome-wide association studies (GWASs) have been widely applied in the neuroimaging field to discover genetic variants associated with brain-related traits. So far, almost all GWASs conducted in neuroimaging genetics are performed on univariate quantitative features summarized from brain images. On the other hand, powerful deep learning technologies have dramatically improved our ability to classify images. In this study, we proposed and implemented a novel machine learning strategy for systematically identifying genetic variants that lead to detectable nuances on Magnetic Resonance Images (MRI). For a specific single nucleotide polymorphism (SNP), if MRI images labeled by genotypes of this SNP can be reliably distinguished using machine learning, we then hypothesized that this SNP is likely to be associated with brain anatomy or function which is manifested in MRI brain images. We applied this strategy to a catalog of MRI image and genotype data collected by the Alzheimer's Disease Neuroimaging Initiative (ADNI) consortium. From the results, we identified novel variants that show strong association to brain phenotypes.

摘要

全基因组关联研究(GWAS)已广泛应用于神经影像学领域,以发现与大脑相关特征相关的遗传变异。到目前为止,神经影像学遗传学中进行的几乎所有 GWAS 都是基于从脑图像中总结的单变量定量特征进行的。另一方面,强大的深度学习技术极大地提高了我们对图像分类的能力。在这项研究中,我们提出并实施了一种新的机器学习策略,用于系统地识别导致磁共振成像(MRI)上可检测细微差异的遗传变异。对于特定的单核苷酸多态性(SNP),如果使用机器学习可以可靠地区分标记有该 SNP 基因型的 MRI 图像,那么我们假设该 SNP 很可能与大脑解剖结构或功能有关,而这些在 MRI 脑图像中表现出来。我们将该策略应用于由阿尔茨海默病神经影像学倡议(ADNI)联盟收集的 MRI 图像和基因型数据目录。从结果中,我们确定了与脑表型具有强烈关联的新型变体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db5b/11508069/2b1d3e21f75a/pcbi.1012527.g001.jpg

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