Bacteriorhodopsin and halorhodopsin are the simplest ion pumps, and prototypes of the ubiquitous seven-transmembrane-helical proteins. We have made unusual progress in the past years and now propose to test and extend the resulting detailed step-by-step hypothesis for the mechanism of proton transport. It includes not only the proton transfer steps in the protein but also the thermodynamic and structural rationales for the unidirectionality and the vectoriality of the ion translocation. All aspects of this comprehensive hypothesis are now open to critical examination, and in the proposed work we will pay particular attention to the numerous mutant phenotypes not predicted by its present version. We will continue to use our present approach of combining site- specific mutagenesis, time-resolved spectroscopy, and high-resolution protein x-ray crystallography to investigate i) structural questions at the proton release step, ii) howthe pK's of dissociable groups are modulated, Hi)the nature and causes of conformational coupling, iv) the mechanism of proton transport in the absence of asp-85 and asp-96, and v) the lessons to be learned from halorhodopsin and the D85T bacteriorhodopsin mutant, that both transport chloride ions and in the opposite direction from protons. The goal of this proposal is to establish, finally, a full and explicit model for the molecular mechanism of this kind of ion pump.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Method to Extend Research in Time (MERIT) Award (R37)
Project #
5R37GM029498-28
Application #
7448437
Study Section
Special Emphasis Panel (NSS)
Program Officer
Chin, Jean
Project Start
1981-07-01
Project End
2010-06-30
Budget Start
2008-07-01
Budget End
2009-06-30
Support Year
28
Fiscal Year
2008
Total Cost
$477,883
Indirect Cost
Name
University of California Irvine
Department
Physiology
Type
Schools of Medicine
DUNS #
046705849
City
Irvine
State
CA
Country
United States
Zip Code
92697
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Krishnamani, Venkatramanan; Lanyi, Janos K (2012) Molecular dynamics simulation of the unfolding of individual bacteriorhodopsin helices in sodium dodecyl sulfate micelles. Biochemistry 51:1061-9
Krishnamani, Venkatramanan; Lanyi, Janos K (2011) Structural changes in bacteriorhodopsin during in vitro refolding from a partially denatured state. Biophys J 100:1559-67
Imasheva, Eleonora S; Balashov, Sergei P; Wang, Jennifer M et al. (2011) Removal and reconstitution of the carotenoid antenna of xanthorhodopsin. J Membr Biol 239:95-104

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