Light activation of rhodopsin: insights from molecular dynamics simulations guided by solid-state NMR distance restraints
- PMID: 20004206
- PMCID: PMC2822010
- DOI: 10.1016/j.jmb.2009.12.003
Light activation of rhodopsin: insights from molecular dynamics simulations guided by solid-state NMR distance restraints
- PMID: 20004206
- PMCID: PMC2822010
- DOI: 10.1016/j.jmb.2009.12.003
Abstract
Structural restraints provided by solid-state NMR measurements of the metarhodopsin II intermediate are combined with molecular dynamics simulations to help visualize structural changes in the light activation of rhodopsin. Since the timescale for the formation of the metarhodopsin II intermediate (>1 ms) is beyond that readily accessible by molecular dynamics, we use NMR distance restraints derived from 13C dipolar recoupling measurements to guide the simulations. The simulations yield a working model for how photoisomerization of the 11-cis retinylidene chromophore bound within the interior of rhodopsin is coupled to transmembrane helix motion and receptor activation. The mechanism of activation that emerges is that multiple switches on the extracellular (or intradiscal) side of rhodopsin trigger structural changes that converge to disrupt the ionic lock between helices H3 and H6 on the intracellular side of the receptor.
Copyright (c) 2009. Elsevier Ltd. All rights reserved.
Figures
Fig. 1
Crystal structure of rhodopsin. The…
Fig. 1
Crystal structure of rhodopsin. The photoreactive 11- cis retinal chromophore (red) is buried…
Fig. 2
Trajectory of the C20 methyl…
Fig. 2
Trajectory of the C20 methyl group and Schiff base proton upon retinal isomerization.…
Fig. 3
Two-dimensional residue map of close…
Fig. 3
Two-dimensional residue map of close (< 6 Å) interactions near the retinal-binding…
Fig. 4
Displacement of EL2 upon rhodopsin…
Fig. 4
Displacement of EL2 upon rhodopsin activation. (A) The β4 strand of EL2 forms…
Fig. 5
Hydrogen bonding of His211 in…
Fig. 5
Hydrogen bonding of His211 in rhodopsin (A) and Meta II (B). Meta II…
Fig. 6
Hydrogen bonding changes involving EL2.…
Fig. 6
Hydrogen bonding changes involving EL2. (A) Crystal structure of rhodopsin highlighting the hydrogen…
Fig. 7
Coupling of retinal isomerization and…
Fig. 7
Coupling of retinal isomerization and displacement of EL2 to motion of H7. (A)…
Fig. 8
Working model of rhodopsin activation.…
Fig. 8
Working model of rhodopsin activation. Retinal isomerization leads to the strain in retinal…
Fig. 9
Computational model used in the…
Fig. 9
Computational model used in the MD simulations. Rhodopsin (magenta) is embedded in an…
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