横跨人类感觉皮层的皮层场图

IF 2.1 4区 医学 Q2 MATHEMATICAL & COMPUTATIONAL BIOLOGY
Alyssa A. Brewer, Brian Barton
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引用次数: 0

摘要

哺乳动物大脑皮层的感官信息处理路径往往被组织成地形表征,这些表征编码各种基本的感官维度。目前,许多实验室已经证明了这些表征是如何在整个视觉和听觉皮层中组织成无数皮层场图(CMF)的,每个皮层场图都支持一种或一系列专门的计算,这些计算是相关知觉行为的基础。单个 CFM 由两个正交的地形梯度定义,这两个梯度反映了该感官特征空间的两个基本方面。然后,多个相邻的 CFM 在视觉和听觉皮层中被组织成宏观结构模式,称为苜蓿叶簇。苜蓿叶簇内的CFM被认为具有共同的特性,如感受野分布、皮层放大和处理特化。最近的测量结果表明,在其他感官中也可能存在CFM,在躯体感觉、味觉和可能的嗅觉皮层通路中至少有一个感官维度的地形表征。在此,我们将讨论人类感觉皮层中 CFM 和四叶草簇组织的证据,以及用于识别此类组织模式的方法。通过了解这些地形表征是如何在大脑皮层中组织起来的,我们可以深入了解我们的意识知觉是如何从我们的基本感觉输入中产生的。此外,研究这些表征如何在发育、创伤和疾病过程中发生变化,也是开发改善感官缺陷的临床疗法和康复的重要工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cortical field maps across human sensory cortex
Cortical processing pathways for sensory information in the mammalian brain tend to be organized into topographical representations that encode various fundamental sensory dimensions. Numerous laboratories have now shown how these representations are organized into numerous cortical field maps (CMFs) across visual and auditory cortex, with each CFM supporting a specialized computation or set of computations that underlie the associated perceptual behaviors. An individual CFM is defined by two orthogonal topographical gradients that reflect two essential aspects of feature space for that sense. Multiple adjacent CFMs are then organized across visual and auditory cortex into macrostructural patterns termed cloverleaf clusters. CFMs within cloverleaf clusters are thought to share properties such as receptive field distribution, cortical magnification, and processing specialization. Recent measurements point to the likely existence of CFMs in the other senses, as well, with topographical representations of at least one sensory dimension demonstrated in somatosensory, gustatory, and possibly olfactory cortical pathways. Here we discuss the evidence for CFM and cloverleaf cluster organization across human sensory cortex as well as approaches used to identify such organizational patterns. Knowledge of how these topographical representations are organized across cortex provides us with insight into how our conscious perceptions are created from our basic sensory inputs. In addition, studying how these representations change during development, trauma, and disease serves as an important tool for developing improvements in clinical therapies and rehabilitation for sensory deficits.
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来源期刊
Frontiers in Computational Neuroscience
Frontiers in Computational Neuroscience MATHEMATICAL & COMPUTATIONAL BIOLOGY-NEUROSCIENCES
CiteScore
5.30
自引率
3.10%
发文量
166
审稿时长
6-12 weeks
期刊介绍: Frontiers in Computational Neuroscience is a first-tier electronic journal devoted to promoting theoretical modeling of brain function and fostering interdisciplinary interactions between theoretical and experimental neuroscience. Progress in understanding the amazing capabilities of the brain is still limited, and we believe that it will only come with deep theoretical thinking and mutually stimulating cooperation between different disciplines and approaches. We therefore invite original contributions on a wide range of topics that present the fruits of such cooperation, or provide stimuli for future alliances. We aim to provide an interactive forum for cutting-edge theoretical studies of the nervous system, and for promulgating the best theoretical research to the broader neuroscience community. Models of all styles and at all levels are welcome, from biophysically motivated realistic simulations of neurons and synapses to high-level abstract models of inference and decision making. While the journal is primarily focused on theoretically based and driven research, we welcome experimental studies that validate and test theoretical conclusions. Also: comp neuro
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