Representational drift in barrel cortex is receptive field dependent

Curr Biol. 2024 Dec 16;34(24):5623-5634.e4. doi: 10.1016/j.cub.2024.10.021. Epub 2024 Nov 13.

Abstract

Cortical populations often exhibit changes in activity even when behavior is stable. How behavioral stability is maintained in the face of such "representational drift" remains unclear. One possibility is that some neurons are more stable than others. We examined whisker touch responses in layers 2-4 of the primary vibrissal somatosensory cortex (vS1) over several weeks in mice stably performing an object detection task with two whiskers. Although the number of touch neurons remained constant, individual neurons changed with time. Touch-responsive neurons with broad receptive fields were more stable than narrowly tuned neurons. Transitions between functional types were non-random: before becoming broadly tuned, unresponsive neurons first passed through a period of narrower tuning. Broadly tuned neurons in layers 2 and 3 with higher pairwise correlations to other touch neurons were more stable than neurons with lower correlations. Thus, a small population of broadly tuned and synchronously active touch neurons exhibits elevated stability and may be particularly important for behavior.

Keywords: barrel cortex; cortical plasticity; representational drift.

MeSH terms

  • Animals
  • Male
  • Mice
  • Mice, Inbred C57BL
  • Neurons / physiology
  • Somatosensory Cortex* / physiology
  • Touch / physiology
  • Touch Perception / physiology
  • Vibrissae* / physiology