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Widloski, J.

Publications and source records attributed to Widloski, J..

3 recordsLinked to original sources

Self-avoidance dominates the selection of hippocampal replay

Spontaneous neural activity sequences are generated by the brain in the absence of external input1-12, yet how they are produced remains unknown. During immobility, hippocampal replay sequences depict spatial paths related to the animals past experience or predicted future13. By recording from large ensembles of hippocampal place cells14 in combination with optogenetic manipulation of cortical input in freely behaving rats, we show here that the selection of hippocampal replay is governed by a novel self-avoidance principle. Following movement cessation, replay of the animals past path is strongly avoided, while replay of the future path predominates. Moreover, when the past and future paths overlap, early replays avoid both and depict entirely different trajectories. Further, replays avoid self-repetition, on a shorter timescale compared to the avoidance of previous behavioral trajectories. Eventually, several seconds into the stopping period, replay of the past trajectory dominates. This temporal organization contrasts with established and recent predictions9,10,15,16 but is well-recapitulated by a symmetry-breaking attractor model of sequence generation in which individual neurons adapt their firing rates over time26-35. However, while the model is sufficient to produce avoidance of recently traversed or reactivated paths, it requires an additional excitatory input into recently activated cells to produce the later window of past-dominance. We performed optogenetic perturbations to demonstrate that this input is provided by medial entorhinal cortex, revealing its role in maintaining a memory of past experience that biases hippocampal replay. Together, these data provide specific evidence for how hippocampal replays are generated.

neuroscience↗

Spontaneous emergence of alternating hippocampal theta sequences in a simple 2D adaptation model.

Spatial sequences encoded by cells in the hippocampal-entorhinal region have been observed to spontaneously alternate across the animals midline during navigation in the open field, but it is unknown how this occurs. We show that sinusoidal sampling patterns emerge rapidly and robustly in a simple model of the hippocampus that makes no assumptions about sequence direction. We corroborate our findings using hippocampal data from rats navigating in the open field.

neuroscience↗

Replay without sharp wave ripples in a spatial memory task.

Sharp-wave ripples in the hippocampus are believed to be a fundamental mechanism for the consolidation of episodic memories. During ripples, hippocampal neurons are re-activated in sequences called replay, which have been hypothesized to reflect episodic memory content. Ripples and replay are usually reported to co-occur, and are commonly thought to reflect the same process. Here we report that, in rats performing an open field spatial memory task, replays readily occur in the complete absence of ripples. Moreover, the occurrence of ripple-less and ripple-containing replays is not random, but precisely organized in terms of virtual space: Ripples are confined to "ripple fields", which are spatially-restricted areas defined over the virtual locations depicted during replay and independent of the actual location of the animal. Similar to allocentric coding by place fields, ripple fields are independent of the direction of travel, and stable throughout the recording session. Ripple fields track changes to environmental structure caused by the addition or subtraction of barriers to movement, consistent with ripples conveying information about the incorporation of novel experiences. Moreover, ripple fields were matched across different rats experiencing the same barrier configuration, highlighting the robustness of the ripple field spatial code. We hypothesize a new relationship between ripples and replay, in which a subset of replays that is particularly relevant to learning or novelty is paired with ripples, in order to promote its selective broadcast to the rest of the brain for consolidation.

neuroscience↗