Literature DB >> 29346751

The Brain Compass: A Perspective on How Self-Motion Updates the Head Direction Cell Attractor.

Jean Laurens1, Dora E Angelaki2.   

Abstract

Head direction cells form an internal compass signaling head azimuth orientation even without visual landmarks. This property is generated by a neuronal ring attractor that is updated using rotation velocity cues. The properties and origin of this velocity drive remain, however, unknown. We propose a quantitative framework whereby this drive represents a multisensory self-motion estimate computed through an internal model that uses sensory prediction errors of vestibular, visual, and somatosensory cues to improve on-line motor drive. We show how restraint-dependent strength of recurrent connections within the attractor can explain differences in head direction cell firing between free foraging and restrained passive rotation. We also summarize recent findings on how gravity influences azimuth coding, indicating that the velocity drive is not purely egocentric. Finally, we show that the internal compass may be three-dimensional and hypothesize that the additional vertical degrees of freedom use global allocentric gravity cues.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  attractor network; internal model; navigation; vestibular; virtual reality

Mesh:

Year:  2018        PMID: 29346751      PMCID: PMC5777220          DOI: 10.1016/j.neuron.2017.12.020

Source DB:  PubMed          Journal:  Neuron        ISSN: 0896-6273            Impact factor:   17.173


  80 in total

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  14 in total

Review 1.  The head direction cell network: attractor dynamics, integration within the navigation system, and three-dimensional properties.

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3.  Anticipatory Neural Activity Improves the Decoding Accuracy for Dynamic Head-Direction Signals.

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4.  A model-based reassessment of the three-dimensional tuning of head direction cells in rats.

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Review 8.  On the absence or presence of 3D tuned head direction cells in rats: a review and rebuttal.

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9.  A hierarchical anti-Hebbian network model for the formation of spatial cells in three-dimensional space.

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10.  A gravity-based three-dimensional compass in the mouse brain.

Authors:  Dora E Angelaki; Julia Ng; Amada M Abrego; Henry X Cham; Eftihia K Asprodini; J David Dickman; Jean Laurens
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