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Qian, F. K.

Publications and source records attributed to Qian, F. K..

2 recordsLinked to original sources

Memory traces bias new learning for hippocampal generalization

The ability to use generalized prior experience to guide behavior in novel situations is a fundamental cognitive function1. While recent evidence suggests that the hippocampus supports generalization how this is accomplished is poorly understood2-9. Here we combined longitudinal optical imaging in head-fixed mice with computational modeling to examine generalization in hippocampal area CA1. We found that prior training accelerated behavioral adaptation to a novel environment and that this was accompanied by highly stable hippocampal representations. We identified putative memory traces from prior experience that enabled this generalization at multiple levels. At the population level, novel-context network dynamics rapidly aligned with low-dimensional neural subspaces10 established during prior experience. At the cellular level, spatially-informative weak "residual" activity reflecting generalizable information about the task structure appeared to bias which neurons form place fields (PFs) and where via behavioral timescale synaptic plasticity (BTSP)11,12. Finally, this was an active process as many PFs changed their reference frame in the novel environment to reflect the consistent task structure. In sum, the influence of memory traces on new PF formation may allow past experience to guide new learning such that representations are based on generalizable features, thus enabling rapid adaptive behavior in new contexts.

neuroscience↗

Experience-dependent place-cell referencing in hippocampal area CA1

CA1 hippocampal place cells (PCs) are known for using both self-centric (egocentric) and world-centric (allocentric) reference frames to support a cognitive map1,2. The mechanism of PC referencing and the role of experience in this process, however, remain poorly understood3-5. Here we longitudinally recorded the activity of CA1 PCs while mice performed a spatial learning task. In a familiar environment, the CA1 representation consisted of PCs that were referenced to either spatial locations (allocentric PCs) or mouse running (egocentric PCs) in approximately equal proportions. In a novel environment, however, the CA1 representation became predominately egocentrically referenced. Notably, individual allocentric PCs in a familiar environment adaptively switched reference frames to become egocentric in a novel environment. In addition, intracellular membrane potential recordings revealed that individual CA1 neurons simultaneously received both ego- and allo-centric synaptic inputs, and the ratio of these two input streams correlated with the level of individual PC referencing. Furthermore, behavioral timescale synaptic plasticity6,7 (BTSP) was an active participant in shaping PC referencing through the rapid adjustment of synaptic weights on many PCs. Together, these results suggest that experience-dependent adjustment of synaptic input shapes ego and allocentric PC referencing to support a flexible cognitive map in CA1.

neuroscience↗