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Research Article | Open Access

Modeling Grid Cell Distortions with a Grid Cell Calibration Mechanism

Daniel Strauß1,( )Zhenshan Bing1,( )Genghang Zhuang1Kai Huang2Alois Knoll1
Chair of Robotics, Artificial Intelligence and Real-time Systems, TUM School of Computation, Information and Technology, Technical University of Munich, Munich, Germany
School of Data and Computer Science, Sun Yat-sen University, Guangzhou, China

†These authors contributed equally to this work.

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Abstract

The medial entorhinal cortex of rodents is known to contain grid cells that exhibit precise periodic firing patterns based on the animal’s position, resulting in a distinct hexagonal pattern in space. These cells have been extensively studied due to their potential to unveil the navigational computations that occur within the mammalian brain and interesting phenomena such as so-called grid cell distortions have been observed. Previous neuronal models of grid cells assumed their firing fields were independent of environmental boundaries. However, more recent research has revealed that the grid pattern is, in fact, dependent on the environment’s boundaries. When rodents are placed in nonsquare cages, the hexagonal pattern tends to become disrupted and adopts different shapes. We believe that these grid cell distortions can provide insights into the underlying neural circuitry involved in grid cell firing. To this end, a calibration circuit for grid cells is proposed. Our simulations demonstrate that this circuit is capable of reproducing grid distortions observed in several previous studies. Our model also reproduces distortions in place cells and incorporates experimentally observed distortions of speed cells, which present further opportunities for exploration. It generates several experimentally testable predictions, including an alternative behavioral description of boundary vector cells that predicts behaviors in nonsquare environments different from the current model of boundary vector cells. In summary, our study proposes a calibration circuit that reproduces observed grid distortions and generates experimentally testable predictions, aiming to provide insights into the neural mechanisms governing spatial computations in mammals.

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Cyborg and Bionic Systems
Article number: 0140

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Cite this article:
Strauß D, Bing Z, Zhuang G, et al. Modeling Grid Cell Distortions with a Grid Cell Calibration Mechanism. Cyborg and Bionic Systems, 2024, 5: 0140. https://doi.org/10.34133/cbsystems.0140

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Received: 06 November 2023
Accepted: 20 May 2024
Published: 12 September 2024
© 2024 Daniel Strauß et al. Exclusive licensee Beijing Institute of Technology Press. No claim to original U.S. Government Works.

Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0).