Keyword search (4,163 papers available)

"Deshmukh SS" Authored Publications:

Title Authors PubMed ID
1 Photoactivation and conformational gating for manganese binding and oxidation in bacterial reaction centers Samaei A; Deshmukh SS; Protheroe C; Nyéki S; Tremblay-Ethier RA; Kálmán L; 36216075
PHYSICS
2 Tuning the redox potential of the primary electron donor in bacterial reaction centers by manganese binding and light-induced structural changes. Deshmukh SS, Kálmán L 32777306
PHYSICS
3 Light-induced conformational changes in photosynthetic reaction centers: dielectric relaxation in the vicinity of the dimer. Deshmukh SS, Williams JC, Allen JP, Kálmán L 21141811
PHYSICS
4 Light-induced conformational changes in photosynthetic reaction centers: redox-regulated proton pathway near the dimer. Deshmukh SS, Williams JC, Allen JP, Kálmán L 21410139
PHYSICS
5 Light-induced conformational changes in photosynthetic reaction centers: impact of detergents and lipids on the electronic structure of the primary electron donor. Deshmukh SS, Akhavein H, Williams JC, Allen JP, Kalman L 21561160
PHYSICS
6 Lipid binding to the carotenoid binding site in photosynthetic reaction centers. Deshmukh SS, Tang K, Kálmán L 21894992
PHYSICS
7 The interaction of streptococcal enolase with canine plasminogen: the role of surfaces in complex formation. Balhara V, Deshmukh SS, Kálmán L, Kornblatt JA 24520380
CHEMBIOCHEM
8 Low potential manganese ions as efficient electron donors in native anoxygenic bacteria. Deshmukh SS, Protheroe C, Ivanescu MA, Lag S, Kálmán L 29355486
PHYSICS
9 The influence of truncating the carboxy-terminal amino acid residues of streptococcal enolase on its ability to interact with canine plasminogen. Deshmukh SS, Kornblatt MJ, Kornblatt JA 30653526
BIOLOGY

 

Title:Low potential manganese ions as efficient electron donors in native anoxygenic bacteria.
Authors:Deshmukh SSProtheroe CIvanescu MALag SKálmán L
Link:https://www.ncbi.nlm.nih.gov/pubmed/29355486?dopt=Abstract
Publication:
Keywords:
PMID:29355486 Category:Biochim Biophys Acta Bioenerg Date Added:2019-06-04
Dept Affiliation: PHYSICS
1 Department of Physics, Concordia University, Montreal, QC, Canada.
2 Department of Physics, Concordia University, Montreal, QC, Canada. Electronic address: laszlo.kalman@concordia.ca.

Description:

Low potential manganese ions as efficient electron donors in native anoxygenic bacteria.

Biochim Biophys Acta Bioenerg. 2018 Apr;1859(4):227-233

Authors: Deshmukh SS, Protheroe C, Ivanescu MA, Lag S, Kálmán L

Abstract

Systematic control over molecular driving forces is essential for understanding the natural electron transfer processes as well as for improving the efficiency of the artificial mimics of energy converting enzymes. Oxygen producing photosynthesis uniquely employs manganese ions as rapid electron donors. Introducing this attribute to anoxygenic photosynthesis may identify evolutionary intermediates and provide insights to the energetics of biological water oxidation. This work presents effective environmental methods that substantially and simultaneously tune the redox potentials of manganese ions and the cofactors of a photosynthetic enzyme from native anoxygenic bacteria without the necessity of genetic modification or synthesis. A spontaneous coordination with bis-tris propane lowered the redox potential of the manganese (II) to manganese (III) transition to an unusually low value (~400?mV) at pH?9.4 and allowed its binding to the bacterial reaction center. Binding to a novel buried binding site elevated the redox potential of the primary electron donor, a dimer of bacteriochlorophylls, by up to 92?mV also at pH?9.4 and facilitated the electron transfer that is able to compete with the wasteful charge recombination. These events impaired the function of the natural electron donor and made BTP-coordinated manganese a viable model for an evolutionary alternative.

PMID: 29355486 [PubMed - indexed for MEDLINE]





BookR developed by Sriram Narayanan
for the Concordia University School of Health
Copyright © 2011-2026
Cookie settings
Concordia University