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On the molecular mechanisms of the Schiff base deprotonation during the bacteriorhodopsin photocycle
Author(s) -
Eric L. Chronister,
Timothy C. Corcoran,
Song Li,
Mostafa A. ElSayed
Publication year - 1986
Publication title -
proceedings of the national academy of sciences of the united states of america
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.83.22.8580
Subject(s) - deprotonation , bacteriorhodopsin , protonation , halobacteriaceae , chemistry , flash photolysis , raman spectroscopy , schiff base , proton , photochemistry , ion , crystallography , kinetics , reaction rate constant , organic chemistry , membrane , halobacterium salinarum , biochemistry , physics , quantum mechanics , optics
Using optical flash photolysis and time-resolved Raman methods, we examined intermediates formed during the photocycle of bacteriorhodopsin (bR), as well as the bR color change, as a function of pH (in the 7.0-1.5 region) and as a function of the number of bound Ca2+ ions. It is found that at a pH just below 3 or with less than two bound Ca2+ per bR, the deprotonation (the L550 → M412 ) step ceases, yet the K610 and L550 analogues are still formed as in native bR. The lack of deprotonation in the photocycle of both acid blue and deionized blue bR and the similarity of their Raman spectra as well as of their K610 and L550 analogues strongly suggest that both blue samples have nearly the same retinal active site. It is suggested that in both blue species, bound cations are removed via a proton-cation exchange equilibrium, either on the cation exchange column for the deionized sample or in solution for the acid blue sample. The proton-cation exchange equilibrium is found to quantitatively account for the pH dependence of the purple-to-blue color change. The different mechanisms responsible for the large reduction (≈11 units) of the pKa value of the protonated Schiff base (PSB) during the photocycle are discussed. The absence of the L550 → M412 deprotonation process in both blue species is discussed in terms of the previously proposed cation model for the deprotonation of the PSB during the photocycle of native bR. The extent of the deprotonation and the blue-to-purple color change are found to follow the same dependence on either the pH or the amount of cations added to deionized blue bR. This observed correlation is briefly discussed.

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