Published March 6, 2023 | Version Published
Journal Article Open

Mice and primates use distinct strategies for visual segmentation

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon University of Geneva
  • 3. ROR icon University of California, Berkeley

Abstract

The rodent visual system has attracted great interest in recent years due to its experimental tractability, but the fundamental mechanisms used by the mouse to represent the visual world remain unclear. In the primate, researchers have argued from both behavioral and neural evidence that a key step in visual representation is 'figure-ground segmentation', the delineation of figures as distinct from backgrounds. To determine if mice also show behavioral and neural signatures of figure-ground segmentation, we trained mice on a figure-ground segmentation task where figures were defined by gratings and naturalistic textures moving counterphase to the background. Unlike primates, mice were severely limited in their ability to segment figure from ground using the opponent motion cue, with segmentation behavior strongly dependent on the specific carrier pattern. Remarkably, when mice were forced to localize naturalistic patterns defined by opponent motion, they adopted a strategy of brute force memorization of texture patterns. In contrast, primates, including humans, macaques, and mouse lemurs, could readily segment figures independent of carrier pattern using the opponent motion cue. Consistent with mouse behavior, neural responses to the same stimuli recorded in mouse visual areas V1, RL, and LM also did not support texture-invariant segmentation of figures using opponent motion. Modeling revealed that the texture dependence of both the mouse's behavior and neural responses could be explained by a feedforward neural network lacking explicit segmentation capabilities. These findings reveal a fundamental limitation in the ability of mice to segment visual objects compared to primates.

Acknowledgement

This work was supported by NIH (DP1-NS083063) and the Howard Hughes Medical Institute. We thank Audo Flores and Daniel Wagenaar for technical support, Sotiris Masmanidis for supplying the silicon recording probes, and David Fitzpatrick and Yong-Gang Yau for invaluable help setting up a tree shrew colony. FJL was supported by an Arnold O Beckman postdoctoral fellowship and a Burroughs Wellcome PDEP Award. DH and CLAH were supported by the Swiss National Science Foundation (310030E_190060) and the Human Frontiers Science Program (RGP0024/2016).

Copyright and License

© 2023, Luongo, Liu et al. This article is distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use and redistribution provided that the original author and source are credited.

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Article: elife-74394-v4.pdf
Figures and figure supplements: elife-74394-figures-v4.pdf

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Additional details

Funding

National Institutes of Health
DP1-NS083063
Arnold and Mabel Beckman Foundation
Swiss National Science Foundation
310030E_190060
Howard Hughes Medical Institute
Burroughs Wellcome Fund
International Human Frontier Science Program Organization
RGP0024/2016

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Publication Status
Published