Organization and evolution of the avian forebrain.

Anton Reiner, Kei Yamamoto, Harvey J Karten
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引用次数: 197

Abstract

Early 20th-century comparative anatomists regarded the avian telencephalon as largely consisting of a hypertrophied basal ganglia, with thalamotelencephalic circuitry thus being taken to be akin to thalamostriatal circuitry in mammals. Although this view has been disproved for more than 40 years, only with the recent replacement of the old telencephalic terminology that perpetuated this view by a new terminology reflecting more accurate understanding of avian brain organization has the modern view of avian forebrain organization begun to become more widely appreciated. The modern view, reviewed in the present article, recognizes that the avian basal ganglia occupies no more of the telencephalon than is typically the case in mammals, and that it plays a role in motor control and motor learning as in mammals. Moreover, the vast majority of the telencephalon in birds is pallial in nature and, as true of cerebral cortex in mammals, provides the substrate for the substantial perceptual and cognitive abilities evident among birds. While the evolutionary relationship of the pallium of the avian telencephalon and its thalamic input to mammalian cerebral cortex and its thalamic input remains a topic of intense interest, the evidence currently favors the view that they had a common origin from forerunners in the stem amniotes ancestral to birds and mammals.

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鸟类前脑的组织和进化。
20世纪早期的比较解剖学家认为鸟类端脑主要由肥大的基底神经节组成,因此认为丘脑端脑回路与哺乳动物的丘脑纹状体回路相似。尽管这一观点已经被反驳了40多年,但直到最近旧的端脑术语被一个反映对鸟类大脑组织更准确理解的新术语所取代,这一观点才得以延续,鸟类前脑组织的现代观点才开始得到更广泛的认可。在本文中回顾的现代观点认为,鸟类基底神经节并不比哺乳动物占据更多的端脑,而且它在哺乳动物的运动控制和运动学习中发挥作用。此外,鸟类的绝大多数端脑在本质上是苍白的,就像哺乳动物的大脑皮层一样,为鸟类明显的大量感知和认知能力提供了基础。虽然鸟类端脑白质及其丘脑输入到哺乳动物大脑皮层及其丘脑输入的进化关系仍然是一个非常感兴趣的话题,但目前的证据支持这样的观点,即它们从干羊膜动物祖先到鸟类和哺乳动物的先驱有一个共同的起源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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