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听觉中脑的下行投射:进化方面的考虑。

Descending projections to the auditory midbrain: evolutionary considerations.

机构信息

Department of Biology, Texas A & M University, College Station, TX, USA.

Department of Molecular and Integrative Physiology, University of Illinois Urbana-Champaign, Urbana, Il, USA.

出版信息

J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2023 Jan;209(1):131-143. doi: 10.1007/s00359-022-01588-5. Epub 2022 Nov 3.

Abstract

The mammalian inferior colliculus (IC) is massively innervated by multiple descending projection systems. In addition to a large projection from the auditory cortex (AC) primarily targeting the non-lemniscal portions of the IC, there are less well-characterized projections from non-auditory regions of the cortex, amygdala, posterior thalamus and the brachium of the IC. By comparison, the frog auditory midbrain, known as the torus semicircularis, is a large auditory integration center that also receives descending input, but primarily from the posterior thalamus and without a projection from a putative cortical homolog: the dorsal pallium. Although descending projections have been implicated in many types of behaviors, a unified understanding of their function has not yet emerged. Here, we take a comparative approach to understanding the various top-down modulators of the IC to gain insights into their functions. One key question that we identify is whether thalamotectal projections in mammals and amphibians are homologous and whether they interact with evolutionarily more newly derived projections from the cerebral cortex. We also consider the behavioral significance of these descending pathways, given anurans' ability to navigate complex acoustic landscapes without the benefit of a corticocollicular projection. Finally, we suggest experimental approaches to answer these questions.

摘要

哺乳动物的下丘(IC)被多个下行投射系统大量支配。除了来自听觉皮层(AC)的主要针对 IC 的非薄束部分的大投射外,还有来自皮层、杏仁核、后丘脑和 IC 的臂的不太特征化的投射。相比之下,青蛙的听觉中脑,称为半规管,是一个大型的听觉整合中心,也接收下行输入,但主要来自后丘脑,并且没有来自假定的皮质同源物的投射:背侧脑皮层。尽管下行投射与许多类型的行为有关,但它们的功能尚未形成统一的理解。在这里,我们采取比较的方法来理解 IC 的各种自上而下的调节剂,以深入了解它们的功能。我们确定的一个关键问题是哺乳动物和两栖动物的丘脑顶盖投射是否同源,以及它们是否与来自大脑皮层的进化上更新的投射相互作用。鉴于无尾两栖动物在没有皮质投射的情况下能够在复杂的声学环境中导航,我们还考虑了这些下行通路的行为意义。最后,我们提出了实验方法来回答这些问题。

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