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1.
J Neurosci ; 43(50): 8663-8680, 2023 12 13.
Article in English | MEDLINE | ID: mdl-37879894

ABSTRACT

The processing of sensory input is constantly adapting to behavioral demands and internal states. The drive to obtain reward, e.g., searching for water when thirsty, is a strong behavioral demand and associating the reward with its source, a certain environment or action, is paramount for survival. Here, we show that water reward increases subsequent visual activity in the superficial layers of the superior colliculus (SC), which receive direct input from the retina and belong to the earliest stages of visual processing. We trained mice of either sex to perform a visual decision task and recorded the activity of neurons in the SC using two-photon calcium imaging and high-density electrophysiological recordings. Responses to visual stimuli in around 20% of visually responsive neurons in the superficial SC were affected by reward delivered in the previous trial. Reward mostly increased visual responses independent from modulations due to pupil size changes. The modulation of visual responses by reward could not be explained by movements like licking. It was specific to responses to the following visual stimulus, independent of slow fluctuations in neural activity and independent of how often the stimulus was previously rewarded. Electrophysiological recordings confirmed these results and revealed that reward affected the early phase of the visual response around 80 ms after stimulus onset. Modulation of visual responses by reward, but not pupil size, significantly improved the performance of a population decoder to detect visual stimuli, indicating the relevance of reward modulation for the visual performance of the animal.SIGNIFICANCE STATEMENT To learn which actions lead to food, water, or safety, it is necessary to integrate the receiving of reward with sensory stimuli related to the reward. Cortical stages of sensory processing have been shown to represent stimulus-reward associations. Here, we show, however, that reward influences neurons at a much earlier stage of sensory processing, the superior colliculus (SC), receiving direct input from the retina. Visual responses were increased shortly after the animal received the water reward, which led to an improved stimulus signal in the population of these visual neurons. Reward modulation of early visual responses may thus improve perception of visual environments predictive of reward.


Subject(s)
Neurons , Superior Colliculi , Mice , Animals , Superior Colliculi/physiology , Neurons/physiology , Visual Perception/physiology , Reward , Water
2.
Elife ; 102021 02 04.
Article in English | MEDLINE | ID: mdl-33538692

ABSTRACT

During navigation, the visual responses of neurons in mouse primary visual cortex (V1) are modulated by the animal's spatial position. Here we show that this spatial modulation is similarly present across multiple higher visual areas but negligible in the main thalamic pathway into V1. Similar to hippocampus, spatial modulation in visual cortex strengthens with experience and with active behavior. Active navigation in a familiar environment, therefore, enhances the spatial modulation of visual signals starting in the cortex.


Subject(s)
Primary Visual Cortex/physiology , Visual Pathways/physiology , Visual Perception/physiology , Animals , Mice , Neurons/physiology
3.
Neuron ; 107(3): 487-495.e9, 2020 08 05.
Article in English | MEDLINE | ID: mdl-32445624

ABSTRACT

At various stages of the visual system, visual responses are modulated by arousal. Here, we find that in mice this modulation operates as early as in the first synapse from the retina and even in retinal axons. To measure retinal activity in the awake, intact brain, we imaged the synaptic boutons of retinal axons in the superior colliculus. Their activity depended not only on vision but also on running speed and pupil size, regardless of retinal illumination. Arousal typically reduced their visual responses and selectivity for direction and orientation. Recordings from retinal axons in the optic tract revealed that arousal modulates the firing of some retinal ganglion cells. Arousal had similar effects postsynaptically in colliculus neurons, independent of activity in the other main source of visual inputs to the colliculus, the primary visual cortex. These results indicate that arousal modulates activity at every stage of the mouse visual system.


Subject(s)
Arousal/physiology , Axons/physiology , Neurons/physiology , Orientation, Spatial/physiology , Retinal Ganglion Cells/physiology , Superior Colliculi/physiology , Animals , Axons/metabolism , Locomotion , Mice , Neurons/cytology , Neurons/metabolism , Optic Tract , Presynaptic Terminals/metabolism , Retinal Ganglion Cells/cytology , Retinal Ganglion Cells/metabolism , Superior Colliculi/diagnostic imaging , Superior Colliculi/metabolism , Visual Pathways/physiology , Wakefulness
4.
Cell Rep ; 20(10): 2513-2524, 2017 Sep 05.
Article in English | MEDLINE | ID: mdl-28877482

ABSTRACT

Research in neuroscience increasingly relies on the mouse, a mammalian species that affords unparalleled genetic tractability and brain atlases. Here, we introduce high-yield methods for probing mouse visual decisions. Mice are head-fixed, facilitating repeatable visual stimulation, eye tracking, and brain access. They turn a steering wheel to make two alternative choices, forced or unforced. Learning is rapid thanks to intuitive coupling of stimuli to wheel position. The mouse decisions deliver high-quality psychometric curves for detection and discrimination and conform to the predictions of a simple probabilistic observer model. The task is readily paired with two-photon imaging of cortical activity. Optogenetic inactivation reveals that the task requires mice to use their visual cortex. Mice are motivated to perform the task by fluid reward or optogenetic stimulation of dopamine neurons. This stimulation elicits a larger number of trials and faster learning. These methods provide a platform to accurately probe mouse vision and its neural basis.


Subject(s)
Choice Behavior/physiology , Dopaminergic Neurons/metabolism , Psychophysics/methods , Visual Cortex/metabolism , Visual Cortex/physiology , Animals , Female , Male , Mice , Photic Stimulation
5.
J Neurosci ; 36(8): 2494-502, 2016 Feb 24.
Article in English | MEDLINE | ID: mdl-26911695

ABSTRACT

The local field potential (LFP) is thought to reflect a temporal reference for neuronal spiking, which may facilitate information coding and orchestrate the communication between neural populations. To explore this proposed role, we recorded the LFP and simultaneously the spike activity of one to three nearby neurons in V1 of anesthetized cats during the presentation of drifting sinusoidal gratings, binary dense noise stimuli, and natural movies. In all stimulus conditions and during spontaneous activity, the average LFP power at frequencies >20 Hz was higher when neurons were spiking versus not spiking. The spikes were weakly but significantly phase locked to all frequencies of the LFP. The average spike phase of the LFP was stable across high and low levels of LFP power, but the strength of phase locking at low frequencies (≤10 Hz) increased with increasing LFP power. In a next step, we studied how strong stimulus responses of single neurons are reflected in the LFP and the LFP-spike relationship. We found that LFP power was slightly increased and phase locking was slightly stronger during strong compared with weak stimulus-locked responses. In summary, the coupling strength between high frequencies of the LFP and spikes was not strongly modulated by LFP power, which is thought to reflect spiking synchrony, nor was it strongly influenced by how strongly the neuron was driven by the stimulus. Furthermore, a comparison between neighboring neurons showed no clustering of preferred LFP phase. We argue that hypotheses on the relevance of phase locking in their current form are inconsistent with our findings.


Subject(s)
Action Potentials/physiology , Neurons/physiology , Photic Stimulation/methods , Visual Cortex/physiology , Animals , Cats , Female , Male
6.
Neuron ; 84(1): 6-8, 2014 Oct 01.
Article in English | MEDLINE | ID: mdl-25277449

ABSTRACT

The superior colliculus, or tectum, is a key sensorimotor structure that long predates the cortex. In this issue of Neuron, Zhao et al. (2014) show that the visual cortex controls the tectum's gain precisely and retinotopically, without otherwise altering its operations.


Subject(s)
Evoked Potentials, Visual/physiology , Photic Stimulation/methods , Superior Colliculi/physiology , Visual Cortex/physiology , Visual Pathways/physiology , Wakefulness/physiology , Animals
7.
J Neurosci ; 33(17): 7325-44, 2013 Apr 24.
Article in English | MEDLINE | ID: mdl-23616540

ABSTRACT

Neurons in primary visual cortex of many mammals are clustered according to their preference to stimulus parameters such as orientation and spatial frequency. Nevertheless, responses to complex visual stimuli are highly heterogeneous between adjacent neurons. To investigate the relation between these observations, we recorded from pairs of neighboring neurons in area 17 of anesthetized cats in response to stimuli of differing complexity: sinusoidal drifting gratings, binary dense noise, and natural movies. Comparisons of the tuning curves revealed similar orientation and direction preferences for neighboring neurons, but large differences in preferred phase, direction selectivity, and tuning width of spatial frequency. No pair was similar across all tuning properties. The neurons' firing rates averaged across multiple stimulus repetitions (the "signal") were also compared. Binned between 10 and 200 ms, the correlation between these signals was close to zero in the median across all pairs for all stimulus classes. Signal correlations agreed poorly with differences in tuning properties, except for receptive field offset and relative modulation (i.e., the strength of phase modulation). Nonetheless, signal correlations for different stimulus classes were well correlated with each other, even for gratings and movies. Conversely, trial-to-trial fluctuations (termed "noise") were poorly correlated between neighboring neurons, suggesting low degrees of common input. In response to gratings and visual noise, signal and noise correlations were well correlated with each other, but less so for responses to movies. These findings have relevance for our understanding of the processing of natural stimuli in a functionally heterogeneous cortical network.


Subject(s)
Action Potentials/physiology , Neurons/physiology , Photic Stimulation/methods , Visual Cortex/physiology , Visual Pathways/physiology , Animals , Cats , Cell Communication/physiology , Female , Male , Random Allocation , Visual Pathways/cytology
8.
PLoS Comput Biol ; 6(5): e1000791, 2010 May 20.
Article in English | MEDLINE | ID: mdl-20502672

ABSTRACT

Visual attention is thought to be driven by the interplay between low-level visual features and task dependent information content of local image regions, as well as by spatial viewing biases. Though dependent on experimental paradigms and model assumptions, this idea has given rise to varying claims that either bottom-up or top-down mechanisms dominate visual attention. To contribute toward a resolution of this discussion, here we quantify the influence of these factors and their relative importance in a set of classification tasks. Our stimuli consist of individual image patches (bubbles). For each bubble we derive three measures: a measure of salience based on low-level stimulus features, a measure of salience based on the task dependent information content derived from our subjects' classification responses and a measure of salience based on spatial viewing biases. Furthermore, we measure the empirical salience of each bubble based on our subjects' measured eye gazes thus characterizing the overt visual attention each bubble receives. A multivariate linear model relates the three salience measures to overt visual attention. It reveals that all three salience measures contribute significantly. The effect of spatial viewing biases is highest and rather constant in different tasks. The contribution of task dependent information is a close runner-up. Specifically, in a standardized task of judging facial expressions it scores highly. The contribution of low-level features is, on average, somewhat lower. However, in a prototypical search task, without an available template, it makes a strong contribution on par with the two other measures. Finally, the contributions of the three factors are only slightly redundant, and the semi-partial correlation coefficients are only slightly lower than the coefficients for full correlations. These data provide evidence that all three measures make significant and independent contributions and that none can be neglected in a model of human overt visual attention.


Subject(s)
Attention/physiology , Eye Movements/physiology , Models, Biological , Photic Stimulation , Vision, Ocular/physiology , Adolescent , Adult , Algorithms , Face , Female , Humans , Linear Models , Male , Multivariate Analysis
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