First, we characterized the responses of wide-field neurons to a comparative set of visual stimuli. We found that wide-field neurons strongly respond to dark and bright moving edges but not to ambient brightness changes. Responses of wide-field neurons to dark expanding discs at different locations and expansion speeds, did not depend on the specific location but rather on the size of the stimulus. This invariance to stimulus location is typical for higher visual brain areas but was not observed in the retina or the superficial superior colliculus before. Further, we found, that neurons looking at a region above the horizon, were more selective to dark expanding discs than other stimuli. Neurons looking at the bottom responded to a more diverse set of stimuli. The increased selectivity to dark expanding discs in the upper visual field could provide a better detection of approaching aerial predators, important for the animal’s survival.
Second, we characterized the responses of retinal ganglion cell types that target wide-field neurons to the same set of visual stimuli used for wide-field neurons. A recent publication from the lab could identify 10 different types based on anatomical cues and molecular markers. We found that responses within an anatomical type were very similar to each other whereas responses between types were very diverse (Fig. 2).
Third, we were able to predict some of the responses of wide-field neurons by summing the retinal inputs (Fig. 3), however, for many stimuli, there was a large discrepancy in magnitude and timing. By measuring the inputs to wide-field neurons at different depths of the dendritic tree, we found that summing the retinal responses was successful in explaining the responses in the dendritic tips, but progressively failed closer to the soma. This hints to a more complex processing in wide-field neurons than previously thought.
The results of this project were communicated to the expert audience at several international neuroscience conferences, as the FENS meeting 2018 (Berlin, Germany) and the European Visual Cortex Meeting 2019 (Leiden, The Netherlands). An invited talk at the European Retina Meeting 2019 (Helsinki, Finland) increased the visibility of the project further. Thus far, there is one open-access scientific publication associated to the project. Three more manuscripts for disseminating results of the project are in preparation, one publication on the processing of retinal signals in wide-field neuron dendrites, one on the distribution of retinal inputs to superior colliculus across visual space and one on how biases in the responses of wide-field neurons across visual space relate to behavior. The project activities are communicated to the general public via press releases, social media outlets, and on the project webpage.