Kersten Ylva, Friedrich-Müller Bettina, Nieder Andreas
Animal Physiology Unit, Institute of Neurobiology, University of Tübingen, Tübingen, Germany.
J Comp Neurol. 2022 Dec;530(17):3011-3038. doi: 10.1002/cne.25392. Epub 2022 Aug 8.
Corvidae, passerine songbirds such as jays, crows, and ravens known as corvids, have become model systems for the study of avian cognition. The superior cognitive capabilities of corvids mainly emerge from a disproportionally large telencephalon found in these species. However, a systematic mapping of the neuroanatomy of the corvid brain, and the telencephalon in particular, is lacking so far. Here, we present a brain atlas of the carrion crow, Corvus corone, with special emphasis on the telencephalic pallium. We applied four staining techniques to brain slices (Nissl, myelin, combination of Nissl and myelin, and tyrosine hydroxylase targeting catecholaminergic neurons). This allowed us to identify brain nuclei throughout the brain and delineate the known pallial subdivisions termed hyperpallium, entopallium, mesopallium, nidopallium, arcopallium, and hippocampal complex. The extent of these subdivisions and brain nuclei are described according to stereotaxic coordinates. In addition, 3D depictions of pallial regions were reconstructed from these slices. While the overall organization of the carrion crow's brain matches other songbird brains, the relative proportions and expansions of associative pallial areas differ considerably in agreement with enhanced cognitive skills found in corvids. The presented global organization of the crow brain in stereotaxic coordinates will help to guide future neurobiological studies in corvids.
鸦科鸟类,如松鸦、乌鸦和渡鸦等雀形目鸣禽,被称为鸦科动物,已成为研究鸟类认知的模型系统。鸦科动物卓越的认知能力主要源于这些物种中不成比例的大端脑。然而,迄今为止,缺乏对鸦科动物大脑神经解剖结构,尤其是端脑的系统图谱。在此,我们展示了食腐鸦(Corvus corone)的脑图谱,特别强调端脑皮质。我们对脑切片应用了四种染色技术(尼氏染色、髓鞘染色、尼氏和髓鞘联合染色,以及针对儿茶酚胺能神经元的酪氨酸羟化酶染色)。这使我们能够识别整个大脑中的脑核,并描绘出已知的皮质亚区,即超皮质、内皮质、中皮质、巢皮质、弓状皮质和海马复合体。根据立体定位坐标描述了这些亚区和脑核的范围。此外,从这些切片重建了皮质区域的三维图像。虽然食腐鸦大脑的整体组织结构与其他鸣禽大脑相匹配,但联想皮质区域的相对比例和扩展差异很大,这与鸦科动物增强的认知技能相一致。所呈现的以立体定位坐标表示的乌鸦大脑全局组织结构将有助于指导未来对鸦科动物的神经生物学研究。