Applegate Marissa C, Gutnichenko Konstantin S, Mackevicius Emily L, Aronov Dmitriy
Zuckerman Mind Brain Behavior Institute, Columbia University.
bioRxiv. 2023 Jan 6:2023.01.05.522940. doi: 10.1101/2023.01.05.522940.
The mammalian entorhinal cortex routes inputs from diverse sources into the hippocampus. This information is mixed and expressed in the activity of many specialized entorhinal cell types, which are considered indispensable for hippocampal function. However, functionally similar hippocampi exist even in non-mammals that lack an obvious entorhinal cortex, or generally any layered cortex. To address this dilemma, we mapped extrinsic hippocampal connections in chickadees, whose hippocampi are used for remembering numerous food caches. We found a well-delineated structure in these birds that is topologically similar to the entorhinal cortex and interfaces between the hippocampus and other pallial regions. Recordings of this structure revealed entorhinal-like activity, including border and multi-field grid-like cells. These cells were localized to the subregion predicted by anatomical mapping to match the dorsomedial entorhinal cortex. Our findings uncover an anatomical and physiological equivalence of vastly different brains, suggesting a fundamental nature of entorhinal-like computations for hippocampal function.
哺乳动物的内嗅皮质将来自不同来源的输入信号传入海马体。这些信息在许多特殊的内嗅细胞类型的活动中混合并表达,这些细胞类型被认为是海马体功能不可或缺的。然而,即使在缺乏明显内嗅皮质或通常任何分层皮质的非哺乳动物中,也存在功能相似的海马体。为了解决这一困境,我们绘制了山雀海马体的外部连接图谱,山雀的海马体用于记忆大量食物储存点。我们在这些鸟类中发现了一个界限分明的结构,其在拓扑结构上与内嗅皮质相似,是海马体与其他脑皮层区域之间的接口。对该结构的记录揭示了类似内嗅皮质的活动,包括边界细胞和多野网格样细胞。这些细胞定位于通过解剖图谱预测的与背内侧内嗅皮质相匹配的子区域。我们的发现揭示了截然不同的大脑在解剖学和生理学上的等效性,这表明类似内嗅皮质的计算对于海马体功能具有基本性质。