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大脑皮层神经解剖和代谢结构的恒定性与权衡。

Constancy and trade-offs in the neuroanatomical and metabolic design of the cerebral cortex.

机构信息

Nalecz Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences Warsaw, Poland ; Department of Mathematics, Informatics and Mechanics, Institute of Applied Mathematics and Mechanics, University of Warsaw Warsaw, Poland ; Division of Biology Caltech, Pasadena, CA, USA.

出版信息

Front Neural Circuits. 2014 Feb 11;8:9. doi: 10.3389/fncir.2014.00009. eCollection 2014.

Abstract

Mammalian brains span about four orders of magnitude in cortical volume and have to operate in different environments that require diverse behavioral skills. Despite these geometric and behavioral diversities, the examination of cerebral cortex across species reveals that it contains a substantial number of conserved characteristics that are associated with neuroanatomy and metabolism, i.e., with neuronal connectivity and function. Some of these cortical constants or invariants have been known for a long time but not sufficiently appreciated, and others were only recently discovered. The focus of this review is to present the cortical invariants and discuss their role in the efficient information processing. Global conservation in neuroanatomy and metabolism, as well as their correlated regional and developmental variability suggest that these two parallel systems are mutually coupled. It is argued that energetic constraint on cortical organization can be strong if cerebral blood supplied is either below or above a certain level, and it is rather soft otherwise. Moreover, because maximization or minimization of parameters associated with cortical connectivity, function and cost often leads to conflicts in design, it is argued that the architecture of the cerebral cortex is a result of structural and functional compromises.

摘要

哺乳动物大脑的皮质体积跨越了四个数量级,并且必须在不同的环境中运作,这些环境需要不同的行为技能。尽管存在这些几何和行为上的差异,但对不同物种的大脑皮质的研究表明,它包含了大量与神经解剖学和代谢相关的保守特征,即与神经元的连接和功能相关的特征。其中一些皮质常数或不变量已经存在了很长时间,但没有得到足够的重视,而另一些则是最近才发现的。这篇综述的重点是介绍皮质不变量,并讨论它们在有效信息处理中的作用。神经解剖学和代谢的全局保守性,以及它们相关的区域和发育变异性表明,这两个平行的系统是相互耦合的。有人认为,如果大脑血液供应低于或高于某个水平,那么对皮质组织的能量限制就会很强,如果不是这样,那么能量限制就会很弱。此外,由于与皮质连接、功能和成本相关的参数的最大化或最小化通常会导致设计上的冲突,因此有人认为大脑皮质的结构是结构和功能妥协的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d476/3920482/13068024ae67/fncir-08-00009-g0001.jpg

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