Department of Neurosurgery, Yale School of Medicine, New Haven, CT, USA.
Department of Biomedical Engineering, Yale University, New Haven, CT, USA.
Nat Commun. 2024 Aug 16;15(1):7063. doi: 10.1038/s41467-024-51395-6.
Functional coactivation between human brain regions is partly explained by white matter connections; however, how the structure-function relationship varies by function remains unclear. Here, we reference large data repositories to compute maps of structure-function correspondence across hundreds of specific functions and brain regions. We use natural language processing to accurately predict structure-function correspondence for specific functions and to identify macroscale gradients across the brain that correlate with structure-function correspondence as well as cortical thickness. Our findings suggest structure-function correspondence unfolds along a sensory-fugal organizational axis, with higher correspondence in primary sensory and motor cortex for perceptual and motor functions, and lower correspondence in association cortex for cognitive functions. Our study bridges neuroscience and natural language to describe how structure-function coupling varies by region and function in the brain, offering insight into the diversity and evolution of neural network properties.
大脑区域之间的功能协同部分由白质连接解释;然而,功能之间的结构-功能关系如何变化尚不清楚。在这里,我们参考大型数据库,计算数百个特定功能和大脑区域的结构-功能对应关系图。我们使用自然语言处理来准确预测特定功能的结构-功能对应关系,并识别与结构-功能对应关系以及皮质厚度相关的大脑的宏观梯度。我们的研究结果表明,结构-功能对应关系沿着感觉放射组织轴展开,在初级感觉和运动皮层中,感知和运动功能的对应关系更高,而在联合皮层中,认知功能的对应关系更低。我们的研究将神经科学和自然语言联系起来,描述了大脑中结构-功能耦合如何因区域和功能而异,为神经网络特性的多样性和进化提供了深入了解。