Related Experiment Videos
Membrane potential stabilizes the O intermediate in liposomes containing bacteriorhodopsin.
I V Kalaidzidis1, I N Belevich, Y L Kalaidzidis
1Department of Photobiochemistry, A.N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, 119899, Moscow, Russia.
FEBS Letters
|October 6, 1999
Summary
Laser flashes induce a long-lived bathointermediate in bacteriorhodopsin, influenced by pH and membrane potential. This intermediate
Area of Science:
- Biophysics
- Photochemistry
- Membrane Protein Dynamics
Background:
- Bacteriorhodopsin functions as a light-driven proton pump, crucial for cellular energy generation.
- Understanding the photocycle intermediates of bacteriorhodopsin is key to elucidating its proton translocation mechanism.
- The role of specific amino acid residues and membrane potential in modulating these intermediates remains an active area of research.
Purpose of the Study:
- To investigate the formation and decay kinetics of a laser-induced bathointermediate in bacteriorhodopsin.
- To determine the influence of pH, uncouplers, lipophilic ions, and specific mutations (E204Q) on this intermediate.
- To explore the effect of membrane potential on the equilibrium between bacteriorhodopsin ground and O intermediate states.
Main Methods:
- Spectroscopic analysis of bacteriorhodopsin-containing proteoliposomes and purple membranes.
- Laser flash photolysis to induce and monitor transient intermediates.
- Utilized wild-type and E204Q bacteriorhodopsin mutants.
- Varied pH conditions and employed uncouplers and lipophilic ions.
Main Results:
- A laser flash induces a bathointermediate in bacteriorhodopsin proteoliposomes, with a decay time of several seconds.
- The formation of this intermediate is suppressed in the E204Q mutant and influenced by pH and membrane-perturbing agents.
- Membrane potential appears to stabilize the O intermediate by affecting the pK of Asp-85, particularly at low pH.
Conclusions:
- The bathointermediate is sensitive to the protonation state of key residues and the surrounding membrane environment.
- Membrane potential plays a significant role in stabilizing the O intermediate, likely through direct effects on residue pK values.
- Protonation of the outward proton pathway residues is essential for the O intermediate state, with membrane potential modulating this equilibrium.