Skip to main content
SHARE
Publication

Catalysis of Ground State cis→ trans Isomerization of Bacteriorhodopsin’s Retinal Chromophore by a Hydrogen-Bond Network...

by Nadia Elghobashi-meinhardt, Abhijit Phatak, Ana-nicoleta Bondar, Marcus Elstner, Jeremy C Smith
Publication Type
Journal
Journal Name
The Journal of Membrane Biology
Publication Date
Page Numbers
315 to 327
Volume
251
Issue
3

For the photocycle of the membrane protein bacteriorhodopsin to proceed efficiently, the thermal 13-cis to all-trans back-isomerization of the retinal chromophore must return the protein to its resting state on a time-scale of milliseconds. Here, we report on quantum mechanical/molecular mechanical energy calculations examining the structural and energetic determinants of the retinal cis–trans isomerization in the protein environment. The results suggest that a hydrogen-bonded network consisting of the retinal Schiff base, active site amino acid residues, and water molecules can stabilize the twisted retinal, thus reducing the intrinsic energy cost of the cis–trans thermal isomerization barrier.