大脑皮层模式的自相似性和空间周期性:神经组织建筑师的结构设计笔记

Anatomia Pub Date : 2023-07-21 DOI:10.3390/anatomia2030020
Nicolas Rouleau, N. Murugan
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引用次数: 0

摘要

组织工程是一种强大的工具,可以系统地识别生物功能的决定因素。组织工程应用于仿生大脑的设计和制造,通过在简化的模型系统中概括结构-功能关系,有助于解开神经回路和通路的复杂解剖结构。大脑皮层复杂的神经解剖学,以及其神秘的柱状和分层的细胞结构组织,对分离具有认知功能的神经组织所需的最小元素集提出了重大挑战。尽管大量的研究已经强调了早期皮层组织模式的重要遗传和物理相关性,但在文献中没有实质性的尝试来确定皮层如何获得相对保守的、狭窄的层数范围的决定因素。同样,皮质柱和皮层板是否在功能上与胚胎神经发育相关或是副现象尚不清楚。在这里,我们证明了空间频率(m−1)从大脑皮质柱的宽度与高度比中得出,预测平均皮质厚度的空间周期范围很窄。由此产生的周期性,用理论波数表示,反映了通过比较解剖学方法揭示的人类和其他几种物种中观察到的皮质层的数量。我们提出了一种假设,即皮质柱及其周期层是由神经元的固有空间维度及其嵌套的自相似聚集结构(包括小柱)产生的。最后,我们讨论了在神经组织工程背景下周期性组织模式的含义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-Similarity and Spatial Periodicity in Cerebral Cortical Patterning: Structural Design Notes for Neural Tissue Architects
Tissue engineering is a powerful tool with which to systematically identify the determinants of biological functions. Applied to the design and fabrication of biomimetic brains, tissue engineering serves to disentangle the complex anatomy of neural circuits and pathways by recapitulating structure-function relationships in simplified model systems. The complex neuroanatomy of the cerebral cortex, with its enigmatic columnar and stratified cytoarchitectonic organization, represents a major challenge toward isolating the minimal set of elements that are required to assemble neural tissues with cognitive functions. Whereas considerable efforts have highlighted important genetic and physical correlates of early cortical tissue patterning, no substantive attempt to identify the determinants of how the cortices acquire their relatively conserved, narrow range of numbered layers is evident in the literature. Similarly, it is not yet clear whether cortical columns and laminae are functionally relevant or epiphenomena of embryonic neurodevelopment. Here, we demonstrate that spatial frequencies (m−1) derived from the width-to-height ratios of cerebral cortical columns predict sinusoids with a narrow range of spatial cycles over the average cortical thickness. The resulting periodicities, denoted by theoretical wavenumbers, reflect the number of observed cortical layers among humans and across several other species as revealed by a comparative anatomy approach. We present a hypothesis that cortical columns and their periodic layers are emergent of the intrinsic spatial dimensions of neurons and their nested, self-similar aggregate structures including minicolumns. Finally, we discuss the implications of periodic tissue patterns in the context of neural tissue engineering.
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