All-trans-retinal Is a Closed-state Inhibitor of Rod Cyclic Nucleotide–gated Ion Channels
Open Access
- 12 April 2004
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 123 (5) , 521-531
- https://doi.org/10.1085/jgp.200409011
Abstract
Rod vision begins when 11-cis-retinal absorbs a photon and isomerizes to all-trans-retinal (ATR) within the photopigment, rhodopsin. Photoactivated rhodopsin triggers an enzyme cascade that lowers the concentration of cGMP, thereby closing cyclic nucleotide–gated (CNG) ion channels. After isomerization, ATR dissociates from rhodopsin, and after a bright light, this release is expected to produce a large surge of ATR near the CNG channels. Using excised patches from Xenopus oocytes, we recently showed that ATR shuts down cloned rod CNG channels, and that this inhibition occurs in the nanomolar range (aqueous concentration) at near-physiological concentrations of cGMP. Here we further characterize the ATR effect and present mechanistic information. ATR was found to decrease the apparent cGMP affinity, as well as the maximum current at saturating cGMP. When ATR was applied to outside-out patches, inhibition was much slower and less effective than when it was applied to inside-out patches, suggesting that ATR requires access to the intracellular surface of the channel or membrane. The apparent ATR affinity and maximal inhibition of heteromeric (CNGA1/CNGB1) channels was similar to that of homomeric (CNGA1) channels. Single-channel and multichannel data suggest that channel inhibition by ATR is reversible. Inhibition by ATR was not voltage dependent, and the form of its dose–response relation suggested multiple ATR molecules interacting per channel. Modeling of the data obtained with cAMP and cGMP suggests that ATR acts by interfering with the allosteric opening transition of the channel and that it prefers closed, unliganded channels. It remains to be determined whether ATR acts directly on the channel protein or instead alters channel–bilayer interactions.Keywords
This publication has 70 references indexed in Scilit:
- Functional Role of Lipid Raft Microdomains in Cyclic Nucleotide-Gated Channel ActivationMolecular Pharmacology, 2004
- State-dependent Block of CNG Channels by DequaliniumThe Journal of general physiology, 2004
- DequaliniumThe Journal of general physiology, 2002
- Looking at lipid rafts?Trends in Cell Biology, 1999
- Spring Constants for Channel-Induced Lipid Bilayer Deformations Estimates Using Gramicidin ChannelsBiophysical Journal, 1999
- Activin A andAll-Trans-Retinoic Acid Cooperatively Enhanced the Functional Activity of L-type Ca2+Channels in the Neuroblastoma C1300 Cell LineBiochemical and Biophysical Research Communications, 1997
- Retinoids and the Visual ProcessPhotochemistry and Photobiology, 1996
- Cooperativity in cyclic nucleotide-gated ion channels.The Journal of general physiology, 1996
- Protein phosphatases modulate the apparent agonist affinity of the light-regulated ion channel in retinal rodsNeuron, 1992
- Retinoic acid blocks potassium channels in human lymphocytesBiochemical and Biophysical Research Communications, 1986