猪扣带沟细胞结构的表征

IF 2.3 4区 医学 Q3 NEUROSCIENCES
Brendan Hoffe, Lisa Hebert, Oren E. Petel, Matthew R. Holahan
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引用次数: 0

摘要

皮质折叠(回转)是一种独特的过程,通过这种过程,大脑可以在受到颅骨内壁边界限制的情况下扩张和增加表面积。尽管关于这一过程中涉及的遗传和细胞因素的确切机制仍有很多争论,但回转导致神经元分层和细胞类型的异质组织,这在啮齿类动物的光滑无脑脑中是看不到的。在这篇文章中,我们描述了猪脑扣带沟深度(眼底)和相邻壁内神经元密度和支持细胞的差异。我们还测量了第三层和第五层内锥体神经元之间的距离,以研究扣带眼底内神经元密度的增加是否与这些层中神经元之间距离的减少有关。我们还在猪扣带沟底部发现了巨锥体神经元,这是一种在非人灵长类动物和人脑中发现的锥体神经元亚型。综上所述,本文通过描述猪扣带回沟的细胞组织,提供了进一步支持脑回化的异质性组成的证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Characterization of the Porcine Cingulate Sulcus Cytoarchitecture

Characterization of the Porcine Cingulate Sulcus Cytoarchitecture

Cortical folding (gyrification) is a unique process by which the brain can expand and increase surface area while confined by the boundaries of the inner wall of the skull. Although there is still much debate about the exact mechanisms concerning the genetic and cellular factors involved in this process, gyrification results in a heterogenous organization of neuronal layering and cell types not seen in the smooth, lissencephalic brain of rodents. In this article, we describe differences in neuronal density and supporting cells within the depths (fundus) and adjacent walls of the cingulate sulcus of the porcine brain. We also measured the distance between pyramidal neurons within Layers III and V to investigate if the observed increase in density of neurons within the cingulate fundus is associated with a decrease in distance between neurons in these layers. We also identify the presence of the gigantopyramidal neuron within the fundus of the porcine cingulate sulcus, a pyramidal neuron subtype seen in nonhuman primates and human brains. Taken together, this article provides evidence that further supports the heterogeneous composition of the gyrified brain by describing the cellular organization of the porcine cingulate sulcus.

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来源期刊
CiteScore
5.80
自引率
8.00%
发文量
158
审稿时长
3-6 weeks
期刊介绍: Established in 1891, JCN is the oldest continually published basic neuroscience journal. Historically, as the name suggests, the journal focused on a comparison among species to uncover the intricacies of how the brain functions. In modern times, this research is called systems neuroscience where animal models are used to mimic core cognitive processes with the ultimate goal of understanding neural circuits and connections that give rise to behavioral patterns and different neural states. Research published in JCN covers all species from invertebrates to humans, and the reports inform the readers about the function and organization of nervous systems in species with an emphasis on the way that species adaptations inform about the function or organization of the nervous systems, rather than on their evolution per se. JCN publishes primary research articles and critical commentaries and review-type articles offering expert insight in to cutting edge research in the field of systems neuroscience; a complete list of contribution types is given in the Author Guidelines. For primary research contributions, only full-length investigative reports are desired; the journal does not accept short communications.
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