Inertial Sensing and Encoding of Self-Motion: Structural and Functional Similarities across Metazoan Taxa

Integr Comp Biol. 2018 Nov 1;58(5):832-843. doi: 10.1093/icb/icy041.

Abstract

To properly orient and navigate, moving animals must obtain information about the position and motion of their bodies. Animals detect inertial signals resulting from body accelerations and rotations using a variety of sensory systems. In this review, we briefly summarize current knowledge on inertial sensing across widely disparate animal taxa with an emphasis on neuronal coding and sensory transduction. We outline systems built around mechanosensory hair cells, including the chordate vestibular complex and the statocysts seen in many marine invertebrates. We next compare these to schemes employed by flying insects for managing inherently unstable aspects of flapping flight, built around comparable mechanosensory cells but taking unique advantage of the physics of rotating systems to facilitate motion encoding. Finally, we highlight fundamental similarities across taxa with respect to the partnering of inertial senses with visual senses and conclude with a discussion of the functional utility of maintaining a multiplicity of encoding schemes for self-motion information.

Publication types

  • Research Support, U.S. Gov't, Non-P.H.S.
  • Review

MeSH terms

  • Animals
  • Feedback, Sensory*
  • Flight, Animal
  • Insecta / physiology
  • Invertebrates / physiology*
  • Locomotion*
  • Motion Perception*
  • Vertebrates / physiology*