Literature DB >> 28684540

Suppression of ciliary movements by a hypertonic stress in the newt olfactory receptor neuron.

Yoshihiko Wakazono1,2, Takashi Sakurai1, Susumu Terakawa3,4.   

Abstract

Olfactory receptor neurons isolated from the newt maintain a high activity of the ciliary beat. A cilium of neuron is so unique that only little is known about regulatory factors for its beat frequency. We examined the olfactory receptor neuron immersed in various extracellular media under the video-enhanced differential interference contrast microscope. The activation of voltage-gated Ca2+ channels by K+ depolarization or by application of Ca2+ to membrane-permeabilized olfactory cells did not affect the ciliary movement, suggesting that Ca2+ influx through the cell membrane has no direct effect on the movement. However, when an extracellular medium contained NaCl or sucrose at concentrations only 30% higher than normal levels, ciliary movement was greatly and reversibly suppressed. In contrast, a hypotonic solution of such a solute did not change the ciliary movement. The hypertonic solutions had no effect when applied to permeabilized cells. Suction of the cell membrane with a patch pipette easily suppressed the ciliary movement in an isotonic medium. Application of positive pressure inside the cell through the same patch pipette eliminated the suppressive effect. From these findings, we concluded that the hypertonic stress suppressed the ciliary movement not by disabling the motor proteins, microtubules, or their associates in the cilia, but rather by modifying the chemical environment for the motor proteins. The ciliary motility of the olfactory receptor cell is directly sensitive to the external environment, namely, the air or water on the nasal epithelium, depending on lifestyle of the animal.
Copyright © 2017 the American Physiological Society.

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Keywords:  VEC-DIC-microscopy; ciliary movement; newt; olfactory sensory neuron; osmotic tension

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Year:  2017        PMID: 28684540     DOI: 10.1152/ajpcell.00243.2016

Source DB:  PubMed          Journal:  Am J Physiol Cell Physiol        ISSN: 0363-6143            Impact factor:   4.249


  1 in total

1.  Parallel Processing of Olfactory and Mechanosensory Information in the Honey Bee Antennal Lobe.

Authors:  Ettore Tiraboschi; Luana Leonardelli; Gianluca Segata; Albrecht Haase
Journal:  Front Physiol       Date:  2021-12-07       Impact factor: 4.566

  1 in total

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