4.7 Article

Repeating Firing Fields of CA1 Neurons Shift Forward in Response to Increasing Angular Velocity

期刊

JOURNAL OF NEUROSCIENCE
卷 34, 期 1, 页码 232-241

出版社

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.1199-13.2014

关键词

angular acceleration; hippocampus; memory; navigation; place fields

资金

  1. Neurosciences Research Foundation
  2. G. Harold and Leila Y. Mathers Charitable Foundation
  3. DARPA [N00014-08-1-0728]

向作者/读者索取更多资源

Self-motion information influences spatially-specific firing patterns exhibited by hippocampal neurons. Moreover, these firing patterns can repeat across similar subsegments of an environment, provided that there is similarity of path shape and head orientations across subsegments. The influence of self-motion variables on repeating fields remains to be determined. To investigate the role of path shape and angular rotation on hippocampal activity, we recorded the activity of CA1 neurons from rats trained to run on spiral-shaped tracks. During inbound traversals of circular-spiral tracks, angular velocity increases continuously. Under this condition, most neurons (74%) exhibited repeating fields across at least three adjacent loops. Of these neurons, 86% exhibited forward shifts in the angles of field centers relative to centers on preceding loops. Shifts were absent on squared-spiral tracks, minimal and less reliable on concentric-circle tracks, and absent on outward-bound runs on circular-spiral tracks. However, outward-bound runs on the circular-spiral track in the dark were associated with backward shifts. Together, the most parsimonious interpretation of the results is that continuous increases or decreases in angular velocity are particularly effective at shifting the center of mass of repeating fields, although it is also possible that a nonlinear integration of step counts contributes to the shift. Furthermore, the unexpected absence of field shifts during outward journeys in light (but not darkness) suggests visual cues around the goal location anchored the map of space to an allocentric reference frame.

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