Longnian Lin, Guifen Chen, Hui Kuang, Dong Wang, and Joe Z. Tsien
PNAS | April 3, 2007 | vol. 104 | no. 14 | 6066-6071
As important as memory is to our daily functions, the ability to extract fundamental features and commonalities from various episodic experiences and to then generalize them into abstract concepts is even more crucial for both humans and animals to adapt to novel and complex situations. Here, we report the neural correlates of the abstract concept of nests or beds in mice. Specifically, we find hippocampal neurons that selectively fire or cease to fire when the mouse perceives nests or beds, regardless of their locations and environments. Parametric analyses show that responses of nest cells remain invariant over changes in the nests' physical shape, style, color, odor, or construction materials; rather, their responses are driven by conscious awareness and physical determination of the categorical features that would functionally define nests. Such functionality-based abstraction and generalization of conceptual knowledge, emerging from episodic experiences, suggests that the hippocampus is an intrinsic part of the hierarchical structure for generating concepts and knowledge in the brain.
Free Fulltext: http://www.pnas.org/cgi/reprint/104/14/6066
Wednesday, April 4, 2007
Neural encoding of the concept of nest in the mouse brain
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Labels: bed cell, episodic memory, Hippocampus, nest cell, semantic memory
Wednesday, March 14, 2007
Paradoxical influence of hippocampal neurogenesis on working memory
Michael D. Saxe, Gaël Malleret, Svetlana Vronskaya, Indira Mendez, A. Denise Garcia, Michael V. Sofroniew, Eric R. Kandel, and René Hen
PNAS | March 13, 2007 | vol. 104 | no. 11 | 4642-4646
To explore the function of adult hippocampal neurogenesis, we ablated cell proliferation by using two independent and complementary methods: (i) a focal hippocampal irradiation and (ii) an inducible and reversible genetic elimination of neural progenitor cells. Previous studies using these methods found a weakening of contextual fear conditioning but no change in spatial reference memory, suggesting a supportive role for neurogenesis in some, but not all, hippocampal-dependent memory tasks. In the present study, we examined hippocampal-dependent and -independent working memory using different radial maze tasks. Surprisingly, ablating neurogenesis caused an improvement of hippocampal-dependent working memory when repetitive information was presented in a single day. These findings suggest that adult-born cells in the dentate gyrus have different, and in some cases, opposite roles in distinct types of memory.
Free Fulltext: http://www.pnas.org/cgi/reprint/104/11/4642
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Labels: Hippocampus, Irradiation, Radial maze
Monday, February 26, 2007
Hippocampal remapping and grid realignment in entorhinal cortex
Marianne Fyhn, Torkel Hafting1, Alessandro Treves, May-Britt Moser & Edvard I. Moser
doi:10.1038/nature05601
A fundamental property of many associative memory networks is the ability to decorrelate overlapping input patterns before information is stored. In the hippocampus, this neuronal pattern separation is expressed as the tendency of ensembles of place cells to undergo extensive ‘remapping’ in response to changes in the sensory or motivational inputs to the hippocampus. Remapping is expressed under some conditions as a change of firing rates in the presence of a stable place code (‘rate remapping’), and under other conditions as a complete reorganization of the hippocampal place code in which both place and rate of firing take statistically independent values (‘global remapping’). Here we show that the nature of hippocampal remapping can be predicted by ensemble dynamics in place-selective grid cells in the medial entorhinal cortex, one synapse upstream of the hippocampus. Whereas rate remapping is associated with stable grid fields, global remapping is always accompanied by a coordinate shift in the firing vertices of the grid cells. Grid fields of co-localized medial entorhinal cortex cells move and rotate in concert during this realignment. In contrast to the multiple environment-specific representations coded by place cells in the hippocampus, local ensembles of grid cells thus maintain a constant spatial phase structure, allowing position to be represented and updated by the same translation mechanism in all environments encountered by the animal.
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Labels: Grid Cell, Hippocampus, Remapping