Bergmann Eyal, Zur Gil, Bershadsky Guy, Kahn Itamar
Department of Neuroscience, Rappaport Faculty of Medicine, Technion - Israel Institute of Technology, Haifa 31096, Israel.
Department of Neuroscience, Rappaport Faculty of Medicine, Technion - Israel Institute of Technology, Haifa 31096, Israel
Cereb Cortex. 2016 Dec;26(12):4497-4512. doi: 10.1093/cercor/bhw327. Epub 2016 Oct 25.
While the hippocampal memory system has been relatively conserved across mammals, the cerebral cortex has undergone massive expansion. A central question in brain evolution is how cortical development affected the nature of cortical inputs to the hippocampus. To address this question, we compared cortico-hippocampal connectivity using intrinsic functional connectivity MRI (fcMRI) in awake mice and humans. We found that fcMRI recapitulates anatomical connectivity, demonstrating sensory mapping within the mouse parahippocampal region. Moreover, we identified a similar topographical modality-specific organization along the longitudinal axis of the mouse hippocampus, indicating that sensory information arriving at the hippocampus is only partly integrated. Finally, comparing cortico-hippocampal connectivity across species, we discovered preferential hippocampal connectivity of sensory cortical networks in mice compared with preferential connectivity of association cortical networks in humans. Supporting this observation in humans but not in mice, sensory and association cortical networks are connected to spatially distinct subregions within the parahippocampal region. Collectively, these findings indicate that sensory cortical networks are coupled to the mouse but not the human hippocampal memory system, suggesting that the emergence of expanded and new association areas in humans resulted in the rerouting of cortical information flow and dissociation of primary sensory cortices from the hippocampus.
虽然海马记忆系统在哺乳动物中相对保守,但大脑皮层却经历了大规模扩张。大脑进化中的一个核心问题是皮层发育如何影响海马体的皮层输入性质。为了解决这个问题,我们使用清醒小鼠和人类的内在功能连接磁共振成像(fcMRI)比较了皮质-海马连接性。我们发现fcMRI概括了解剖学连接性,证明了小鼠海马旁区域内的感觉映射。此外,我们在小鼠海马体的纵轴上确定了类似的拓扑模态特异性组织,表明到达海马体的感觉信息仅部分整合。最后,比较不同物种间的皮质-海马连接性,我们发现与人类联合皮质网络的优先连接性相比,小鼠中感觉皮质网络与海马体有优先连接。在人类而非小鼠中支持这一观察结果的是,感觉和联合皮质网络与海马旁区域内空间上不同的子区域相连。总体而言,这些发现表明感觉皮质网络与小鼠而非人类的海马记忆系统相连,这表明人类中扩展的新联合区域的出现导致了皮质信息流的重新路由以及初级感觉皮层与海马体的分离。