Quantifying myelin density in the feline auditory cortex.

IF 2.7 3区 医学 Q1 ANATOMY & MORPHOLOGY
Brain Structure & Function Pub Date : 2024-11-01 Epub Date: 2024-07-09 DOI:10.1007/s00429-024-02821-4
Austin Robertson, Daniel J Miller, Adam Hull, Blake E Butler
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引用次数: 0

Abstract

The cerebral cortex comprises many distinct regions that differ in structure, function, and patterns of connectivity. Current approaches to parcellating these regions often take advantage of functional neuroimaging approaches that can identify regions involved in a particular process with reasonable spatial resolution. However, neuroanatomical biomarkers are also very useful in identifying distinct cortical regions either in addition to, or in place of functional measures. For example, differences in myelin density are thought to relate to functional differences between regions, are sensitive to individual patterns of experience, and have been shown to vary across functional hierarchies in a predictable manner. Accordingly, the current study provides quantitative stereological estimates of myelin density for each of the 13 regions that make up the feline auditory cortex. We demonstrate that significant differences can be observed between auditory cortical regions, with the highest myelin density observed in the regions that comprise the auditory core (i.e., the primary auditory cortex and anterior auditory field). Moreover, our myeloarchitectonic map suggests that myelin density varies in a hierarchical fashion that conforms to the traditional model of spatial organization in auditory cortex. Taken together, these results establish myelin as a useful biomarker for parcellating auditory cortical regions, and provide detailed estimates against which other, less invasive methods of quantifying cortical myelination may be compared.

Abstract Image

量化猫科动物听觉皮层的髓鞘密度。
大脑皮层由许多不同的区域组成,这些区域的结构、功能和连接模式各不相同。目前对这些区域进行划分的方法通常利用功能神经成像方法,这种方法能以合理的空间分辨率识别参与特定过程的区域。然而,神经解剖生物标志物在识别不同的皮质区域方面也非常有用,可以作为功能测量的补充或替代。例如,髓鞘密度的差异被认为与区域间的功能差异有关,对个体的经验模式非常敏感,而且已被证明会以可预测的方式在不同功能层次之间发生变化。因此,本研究对构成猫科动物听觉皮层的 13 个区域中每个区域的髓鞘密度进行了定量立体估算。我们的研究表明,听觉皮层区域之间存在明显差异,其中构成听觉核心的区域(即初级听觉皮层和前听野)的髓鞘密度最高。此外,我们的髓鞘结构图表明,髓鞘密度的变化具有层次性,符合听觉皮层空间组织的传统模型。总之,这些结果确立了髓鞘是划分听觉皮层区域的有用生物标志物,并提供了详细的估计值,可与其他侵袭性较小的皮层髓鞘化量化方法进行比较。
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来源期刊
Brain Structure & Function
Brain Structure & Function 医学-解剖学与形态学
CiteScore
6.00
自引率
6.50%
发文量
168
审稿时长
8 months
期刊介绍: Brain Structure & Function publishes research that provides insight into brain structure−function relationships. Studies published here integrate data spanning from molecular, cellular, developmental, and systems architecture to the neuroanatomy of behavior and cognitive functions. Manuscripts with focus on the spinal cord or the peripheral nervous system are not accepted for publication. Manuscripts with focus on diseases, animal models of diseases, or disease-related mechanisms are only considered for publication, if the findings provide novel insight into the organization and mechanisms of normal brain structure and function.
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