| Literature DB >> 34135512 |
Edward H Nieh1, Manuel Schottdorf1, Nicolas W Freeman1, Ryan J Low1, Sam Lewallen1, Sue Ann Koay1, Lucas Pinto1,2, Jeffrey L Gauthier1, Carlos D Brody3,4,5, David W Tank6,7,8.
Abstract
Hippocampal neurons encode physical variables1-7 such as space1 or auditory frequency6 in cognitive maps8. In addition, functional magnetic resonance imaging studies in humans have shown that the hippocampus can also encode more abstract, learned variables9-11. However, their integration into existing neural representations of physical variables12,13 is unknown. Here, using two-photon calcium imaging, we show that individual neurons in the dorsal hippocampus jointly encode accumulated evidence with spatial position in mice performing a decision-making task in virtual reality14-16. Nonlinear dimensionality reduction13 showed that population activity was well-described by approximately four to six latent variables, which suggests that neural activity is constrained to a low-dimensional manifold. Within this low-dimensional space, both physical and abstract variables were jointly mapped in an orderly manner, creating a geometric representation that we show is similar across mice. The existence of conjoined cognitive maps suggests that the hippocampus performs a general computation-the creation of task-specific low-dimensional manifolds that contain a geometric representation of learned knowledge.Entities:
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Year: 2021 PMID: 34135512 PMCID: PMC9549979 DOI: 10.1038/s41586-021-03652-7
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 69.504