Elevated cAMP improves signal-to-noise ratio in amphibian rod photoreceptors

Author:

Astakhova Luba A.1ORCID,Nikolaeva Darya A.1ORCID,Fedotkina Tamara V.1ORCID,Govardovskii Victor I.1,Firsov Michael L.1ORCID

Affiliation:

1. Sechenov Institute for Evolutionary Physiology and Biochemistry, Russian Academy of Science, St. Petersburg, Russia

Abstract

The absolute sensitivity of vertebrate retinas is set by a background noise, called dark noise, which originates from several different cell types and is generated by different molecular mechanisms. The major share of dark noise is produced by photoreceptors and consists of two components, discrete and continuous. Discrete noise is generated by spontaneous thermal activations of visual pigment. These events are undistinguishable from real single-photon responses (SPRs) and might be considered an equivalent of the signal. Continuous noise is produced by spontaneous fluctuations of the catalytic activity of the cGMP phosphodiesterase. This masks both SPR and spontaneous SPR-like responses. Circadian rhythms affect photoreceptors, among other systems by periodically increasing intracellular cAMP levels ([cAMP]in), which increases the size and changes the shape of SPRs. Here, we show that forskolin, a tool that increases [cAMP]in, affects the magnitude and frequency spectrum of the continuous and discrete components of dark noise in photoreceptors. By changing both components of rod signaling, the signal and the noise, cAMP is able to increase the photoreceptor signal-to-noise ratio by twofold. We propose that this results in a substantial improvement of signal detection, without compromising noise rejection, at the rod bipolar cell synapse.

Funder

Russian Foundation for Basic Research

Academic Program for Basic Research

Publisher

Rockefeller University Press

Subject

Physiology

Reference38 articles.

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