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Lewin, U.

Publications and source records attributed to Lewin, U..

3 recordsLinked to original sources

Topography of distance-modulated multisensory object location encoding in mouse area RL

The spatial arrangement of an animals sensory environment is encoded by spatial codes of the external world, often simultaneously in different modalities. How these modalities are brought together in a universal spatial map and how potential differences are reconciled during multisensory integration remains unclear. To tackle this question, we systematically mapped object location receptive fields (OLRFs) across different sensory modalities in area RL, a pivot of visuo-tactile integration within mouse posterior parietal cortex, using a custom high-resolution three-dimensional multisensory stimulation system. Most RL neurons have three-dimensional receptive fields, with many exhibiting OLRFs across visual, tactile (i.e. vibrissal), and bimodal stimulus conditions. Comparing OLRFs across modalities revealed that distance strongly shapes visuo-tactile integration, reflected in the shift of bimodal OLRFs from tactile-dominant to visual-dominant with increasing distance. Distance also affects the linearity and spatial mode of integration. At near distances, neurons integrate object location information sublinearly from overlapping regions of visual and tactile OLRFs. At far distances, information is integrated supralinearly from regions covered by OLRFs of either modality. This distance dependency extends to cortical organization, leading to a distance tuning gradient along which the spatial, modality, and integration properties of RL neurons are aligned. Together, our findings suggest distance as a key factor in visuo-tactile integration, reflecting that the limited reach of whiskers makes visual information more important for farther objects. In parallel, the system shifts from a localization dominated mode for nearby objects to a detection dominated mode for farther objects.

neuroscience↗

Excitatory neurons of the anterior cingulate cortex encode chosen actions and their outcomes rather than cognitive state

The anterior cingulate cortex (ACC) causally influences cognitive control of goal-directed behaviour. However, it is unclear whether ACC directly encodes cognitive variables like attention or impulsivity, or implements goal-directed action selection mechanisms that are modulated by them. We recorded ACC activity with miniature endoscopic microscopes in mice performing the 5-choice-serial-reaction time task, and applied decoding and encoding analyses. ACC pyramidal cells represented specific actions before and during the behavioural response, whereas the response type (e.g. correct/incorrect/premature) - indicating the state of attentional and impulse control - could only be decoded during and after the response with high reliability. Devaluation and extinction experiments further revealed that action encoding depended on reward expectation. Our findings support a role for ACC in goal-directed action selection and monitoring, that is modulated by cognitive state, rather than in tracking levels of attention or impulsivity directly in individual trials.

neuroscience↗

Sensory experience steers representational drift in mouse visual cortex

Representational drift - the gradual continuous change of neuronal representations - has been observed across many brain areas. It is unclear whether drift is caused by synaptic plasticity elicited by sensory experience, or by the intrinsic volatility of synapses. Here, using chronic two-photon calcium imaging in mouse primary visual cortex, we find that the preferred stimulus orientation of individual neurons slowly drifts over the course of weeks. By using cylinder lens goggles to limit visual experience to a narrow range of orientations, we show that the direction of drift, but not its magnitude, is biased by the statistics of visual input. A network model suggests that drift of preferred orientation largely results from synaptic volatility, which under normal visual conditions is counteracted by experience-driven Hebbian mechanisms, stabilizing preferred orientation. Under deprivation conditions these Hebbian mechanisms enable adaptation. Thus, Hebbian synaptic plasticity steers drift to match the statistics of the environment.

neuroscience↗