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Published on: February 20, 2014
A scalable touchscreen-based spatial working memory task for cross-species research
Casey R Vanderlip1, Shelby R Dunn2, Payton A Asch2
1Department of Neurobiology and Behavior, University of California Irvine, United States.
We developed a touchscreen spatial working memory task for marmosets and humans. This scalable task effectively measures memory maintenance and interference, aiding neuroscience research.
Area of Science:
- Neuroscience
- Cognitive Science
- Primate Models
Background:
- The common marmoset is a valuable nonhuman primate model in neuroscience.
- Development of cognitive tasks for marmosets has not kept pace with neural and genetic tools.
- Scalable and mechanistically informative cognitive paradigms are needed.
Purpose of the Study:
- Introduce and validate a touchscreen-based spatial working memory task.
- Enable direct cross-species translation between marmosets and humans.
- Provide parametric control over memory maintenance and interference demands.
Main Methods:
- A Delayed Non-Match-to-Position task was administered on touchscreens.
- Twelve marmosets and seventy-one humans participated.
- Retention delay (1, 5, 10s) and spatial separation were systematically varied.
Main Results:
- Accuracy decreased with increased delay and decreased spatial separation in both species.
- Delay and spatial separation showed interacting, additive effects on performance.
- Choice latency analyses supported performance interpretations, with slower responses on incorrect trials.
Conclusions:
- The developed task is scalable and translationally aligned for spatial working memory research.
- This paradigm effectively captures interacting maintenance and interference processes.
- It serves as a platform for circuit-level investigations and cognitive assays in marmosets.
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