Jiang Xi, Zhang Tuo, Zhang Shu, Kendrick Keith M, Liu Tianming
School of Life Science and Technology, MOE Key Laboratory for Neuroinformation, University of Electronic Science and Technology of China, Chengdu 611731, China.
School of Automation, Northwestern Polytechnical University, Xi'an 710129, China.
Psychoradiology. 2021 Mar 25;1(1):23-41. doi: 10.1093/psyrad/kkab002. eCollection 2021 Mar.
Folding of the cerebral cortex is a prominent characteristic of mammalian brains. Alterations or deficits in cortical folding are strongly correlated with abnormal brain function, cognition, and behavior. Therefore, a precise mapping between the anatomy and function of the brain is critical to our understanding of the mechanisms of brain structural architecture in both health and diseases. Gyri and sulci, the standard nomenclature for cortical anatomy, serve as building blocks to make up complex folding patterns, providing a window to decipher cortical anatomy and its relation with brain functions. Huge efforts have been devoted to this research topic from a variety of disciplines including genetics, cell biology, anatomy, neuroimaging, and neurology, as well as involving computational approaches based on machine learning and artificial intelligence algorithms. However, despite increasing progress, our understanding of the functional anatomy of gyro-sulcal patterns is still in its infancy. In this review, we present the current state of this field and provide our perspectives of the methodologies and conclusions concerning functional differentiation between gyri and sulci, as well as the supporting information from genetic, cell biology, and brain structure research. In particular, we will further present a proposed framework for attempting to interpret the dynamic mechanisms of the functional interplay between gyri and sulci. Hopefully, this review will provide a comprehensive summary of anatomo-functional relationships in the cortical gyro-sulcal system together with a consideration of how these contribute to brain function, cognition, and behavior, as well as to mental disorders.
大脑皮层的折叠是哺乳动物大脑的一个显著特征。皮层折叠的改变或缺陷与脑功能、认知和行为异常密切相关。因此,大脑解剖结构与功能之间的精确映射对于我们理解健康和疾病状态下大脑结构构建机制至关重要。脑回和脑沟作为皮层解剖结构的标准命名,是构成复杂折叠模式的基本单元,为解读皮层解剖结构及其与脑功能的关系提供了一个窗口。包括遗传学、细胞生物学、解剖学、神经影像学和神经学在内的多个学科,以及基于机器学习和人工智能算法的计算方法,都在这个研究课题上投入了巨大努力。然而,尽管取得了越来越多的进展,我们对脑回 - 脑沟模式功能解剖学的理解仍处于起步阶段。在这篇综述中,我们介绍了该领域的现状,并提供了关于脑回和脑沟功能差异的方法和结论的观点,以及来自遗传学、细胞生物学和脑结构研究的支持信息。特别是,我们将进一步提出一个框架,试图解释脑回和脑沟之间功能相互作用的动态机制。希望这篇综述能够全面总结皮层脑回 - 脑沟系统中的解剖 - 功能关系,并思考这些关系如何影响脑功能、认知和行为,以及精神障碍。