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Ipsilateral Stimulus Encoding in Primary and Secondary Somatosensory Cortex of Awake Mice
Aurélie Pala1, Garrett B Stanley2
1Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, Georgia, 30332 aurelie.pala@gmail.com.
Insights
Unilateral touch activates brain regions on both sides of the head. This study shows secondary somatosensory cortex (S2) neurons better process ipsilateral touch, suggesting S2 integrates sensory input from both sides of the body.
Area of Science:
- Neuroscience
- Somatosensory System
- Sensory Processing
Background:
- Somatosensory processing is typically lateralized, with contralateral representation.
- Unilateral tactile stimuli also influence neuronal activity in the ipsilateral hemisphere.
- The cellular basis and functional role of ipsilateral somatosensory responses remain largely unknown.
Purpose of the Study:
- Investigate the cellular organization and functional role of ipsilateral stimulus responses in awake somatosensory cortices.
- Determine how ipsilateral tactile stimuli are encoded in primary (S1) and secondary (S2) somatosensory cortices.
- Clarify the contribution of S1 and S2 to integrating tactile information across body sides.
Main Methods:
- Utilized silicon probe recordings in awake, head-fixed mice.
- Delivered ipsilateral and contralateral whisker stimuli.
- Analyzed neuronal responses and performed linear classifier analyses for stimulus decoding.
Main Results:
- Ipsilateral stimuli evoked larger, more reliable responses in S2 than S1.
- A greater proportion of stimulus-responsive neurons were found in S2 for ipsilateral stimuli.
- S2 showed more accurate decoding of ipsilateral stimuli, while S1 excelled at decoding contralateral stimuli.
Conclusions:
- Substantial encoding of ipsilateral tactile stimuli occurs in both S1 and S2, particularly in S2.
- Findings support the hypothesis that higher cortical areas integrate tactile inputs across broader spatial regions.
- Neocortical ipsilateral activity in S2 plays a key role in integrating tactile information from both body sides.
Abstract:
Lateralization is a hallmark of somatosensory processing in the mammalian brain. However, in addition to their contralateral representation, unilateral tactile stimuli also modulate neuronal activity in somatosensory cortices of the ipsilateral hemisphere. The cellular organization and functional role of these ipsilateral stimulus responses in awake somatosensory cortices, especially regarding stimulus coding, are unknown. Here, we targeted silicon probe recordings to the vibrissa region of primary (S1) and secondary (S2) somatosensory cortex of awake head-fixed mice of either sex while delivering ipsilateral and contralateral whisker stimuli. Ipsilateral stimuli drove larger and more reliable responses in S2 than in S1, and activated a larger fraction of stimulus-responsive neurons. Ipsilateral stimulus-responsive neurons were rare in layer 4 of S1, but were located in equal proportion across all layers in S2. Linear classifier analyses further revealed that decoding of the ipsilateral stimulus was more accurate in S2 than S1, whereas S1 decoded contralateral stimuli most accurately. These results reveal substantial encoding of ipsilateral stimuli in S1 and especially S2, consistent with the hypothesis that higher cortical areas may integrate tactile inputs across larger portions of space, spanning both sides of the body.SIGNIFICANCE STATEMENT Tactile information obtained by one side of the body is represented in the activity of neurons of the opposite brain hemisphere. However, unilateral tactile stimulation also modulates neuronal activity in the other, or ipsilateral, brain hemisphere. This ipsilateral activity may play an important role in the representation and processing of tactile information, in particular when the sense of touch involves both sides of the body. Our work in the whisker system of awake mice reveals that neocortical ipsilateral activity, in particular that of deep layer excitatory neurons of secondary somatosensory cortex (S2), contains information about the presence and the velocity of unilateral tactile stimuli, which supports a key role for S2 in integrating tactile information across both body sides.
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