» Articles » PMID: 22304687

Adaptation As a Mechanism for Gain Control in Cockroach ON and OFF Olfactory Receptor Neurons

Overview
Journal Eur J Neurosci
Specialty Neurology
Date 2012 Feb 7
PMID 22304687
Citations 10
Authors
Affiliations
Soon will be listed here.
Abstract

In many sensory systems adaptation acts as a gain control mechanism that optimizes sensory performance by trading increased sensitivity to low stimulus intensity for decreased sensitivity to high stimulus intensity. Adaptation of insect antennal olfactory receptor neurons (ORNs) has been studied for strong odour concentrations, either pulsed or constant. Here, we report that during slowly oscillating changes in the concentration of the odour of lemon oil, the ON and OFF ORNs on the antenna of the cockroach Periplaneta americana adapt to the actual odour concentration and the rate at which concentration changes. When odour concentration oscillates rapidly with brief periods, adaptation improves gain for instantaneous odour concentration and reduces gain for the rate of concentration change. Conversely, when odour concentration oscillates slowly with long periods, adaptation increases gain for the rate of change at the expense of instantaneous concentration. Without this gain control the ON and OFF ORNs would, at brief oscillation periods, soon reach their saturation level and become insensitive to further concentration increments and decrements. At long oscillation periods, on the other hand, the cue would simply be that the discharge begins to change. Because of the high gain for the rate of change, the cockroach will receive creeping changes in odour concentration, even if they persist in one direction. Gain control permits a high degree of precision at small rates when it counts most, without sacrificing the range of detection and without extending the measuring scale.

Citing Articles

Gain control in olfactory receptor neurons and the detection of temporal fluctuations in odor concentration.

Tichy H, Hellwig M Front Physiol. 2023; 14:1158855.

PMID: 37501922 PMC: 10368873. DOI: 10.3389/fphys.2023.1158855.


Multielectrode recordings of cockroach antennal lobe neurons in response to temporal dynamics of odor concentrations.

Tichy H, Martzok A, Linhart M, Zopf L, Hellwig M J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2023; 209(3):411-436.

PMID: 36645471 PMC: 10102049. DOI: 10.1007/s00359-022-01605-7.


The Performance of Olfactory Receptor Neurons: The Rate of Concentration Change Indicates Functional Specializations in the Cockroach Peripheral Olfactory System.

Tichy H, Linhart M, Martzok A, Hellwig M Front Physiol. 2021; 11:599086.

PMID: 33424623 PMC: 7793652. DOI: 10.3389/fphys.2020.599086.


Adaptive temporal processing of odor stimuli.

Brandao S, Silies M, Martelli C Cell Tissue Res. 2021; 383(1):125-141.

PMID: 33404843 PMC: 7873106. DOI: 10.1007/s00441-020-03400-9.


Developing and testing of an air dilution flow olfactometer with known rates of concentration change.

Tichy H, Zeiner R, Traunmuller P, Martzok A, Hellwig M J Neurosci Methods. 2020; 341:108794.

PMID: 32446941 PMC: 7614200. DOI: 10.1016/j.jneumeth.2020.108794.