Solid state 13C and 15N NMR investigations of the N intermediate of bacteriorhodopsin. 1994

K V Lakshmi, and M R Farrar, and J Raap, and J Lugtenburg, and R G Griffin, and J Herzfeld
Department of Chemistry, Brandeis University, Waltham, Massachusetts 02254-9110.

Previous solid state 13C NMR studies of bacteriorhodopsin (bR) have inferred the C = N configuration and the protonation state of the retinal-lysine Schiff base (SB) linkage from the [13-13C]-retinal, [14-13C]retinal, and [epsilon-13C]lysine-216 chemical shifts in the bR555, bR568, and M412 states. Here we determine the C = N configuration and the protonation state of the N photointermediate that is cryotrapped along with the M photointermediate at high salt concentrations (0.1 M NaCl) and high pH (10.0). We obtained 13C and 15N SSN MR spectra of [epsilon-15N]lysine bR and [12-13C]- and [13-13C]retinal bR for samples illuminated under the above conditions. Two species are observed, both of which decay to bR568 upon warming. One species has chemical shifts identical to those obtained previously for M thermally trapped in guanidine.HCl at high pH (Smith et al., 1989a; Farrar et al., 1993). In the other species, the [epsilon-15N]lysine and 13-13C chemical shifts indicate that the SB is protonated, the 12-13C shift indicates a 13 = 14 cis configuration, and the previously published [14-13C]- and [epsilon-13C]lysine shifts indicate a C = N anti configuration. These results are consistent with other studies of the N photointermediate.

UI MeSH Term Description Entries
D008239 Lysine An essential amino acid. It is often added to animal feed. Enisyl,L-Lysine,Lysine Acetate,Lysine Hydrochloride,Acetate, Lysine,L Lysine
D009587 Nitrogen Isotopes Stable nitrogen atoms that have the same atomic number as the element nitrogen but differ in atomic weight. N-15 is a stable nitrogen isotope. Nitrogen Isotope,Isotope, Nitrogen,Isotopes, Nitrogen
D009682 Magnetic Resonance Spectroscopy Spectroscopic method of measuring the magnetic moment of elementary particles such as atomic nuclei, protons or electrons. It is employed in clinical applications such as NMR Tomography (MAGNETIC RESONANCE IMAGING). In Vivo NMR Spectroscopy,MR Spectroscopy,Magnetic Resonance,NMR Spectroscopy,NMR Spectroscopy, In Vivo,Nuclear Magnetic Resonance,Spectroscopy, Magnetic Resonance,Spectroscopy, NMR,Spectroscopy, Nuclear Magnetic Resonance,Magnetic Resonance Spectroscopies,Magnetic Resonance, Nuclear,NMR Spectroscopies,Resonance Spectroscopy, Magnetic,Resonance, Magnetic,Resonance, Nuclear Magnetic,Spectroscopies, NMR,Spectroscopy, MR
D002247 Carbon Isotopes Stable carbon atoms that have the same atomic number as the element carbon but differ in atomic weight. C-13 is a stable carbon isotope. Carbon Isotope,Isotope, Carbon,Isotopes, Carbon
D001436 Bacteriorhodopsins Rhodopsins found in the PURPLE MEMBRANE of halophilic archaea such as HALOBACTERIUM HALOBIUM. Bacteriorhodopsins function as an energy transducers, converting light energy into electrochemical energy via PROTON PUMPS. Bacteriorhodopsin
D012172 Retinaldehyde A diterpene derived from the carotenoid VITAMIN A which functions as the active component of the visual cycle. It is the prosthetic group of RHODOPSIN (i.e., covalently bonded to ROD OPSIN as 11-cis-retinal). When stimulated by visible light, rhodopsin transforms this cis-isomer of retinal to the trans-isomer (11-trans-retinal). This transformation straightens-out the bend of the retinal molecule and causes a change in the shape of rhodopsin triggering the visual process. A series of energy-requiring enzyme-catalyzed reactions convert the 11-trans-retinal back to the cis-isomer. 11-trans-Retinal,3,7-dimethyl-9-(2,6,6-trimethyl-1-cyclohexen-1-yl)-2,4,6,8-Nonatetraenal,Axerophthal,Retinal,Retinene,Retinyl Aldehydde,Vitamin A Aldehyde,all-trans-Retinal,11-cis-Retinal,11 cis Retinal,11 trans Retinal,Aldehydde, Retinyl,Aldehyde, Vitamin A,all trans Retinal

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