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1.
J Synchrotron Radiat ; 8(Pt 2): 1006-8, 2001 Mar 01.
Article in English | MEDLINE | ID: mdl-11512702

ABSTRACT

Mo L-edge and S K-edge X-ray absorption spectroscopy were applied to investigate the charge distribution between Mo and S in a series of Mo thiolate compounds, which serve as amide-sulfur H-bonding models and exhibit different redox potentials arising from polar group effects and ligand hydrogen bonds near the redox center. For all oxidized complexes, the S K-edge spectra exhibit a thiolate-based pre-edge feature centered at 2470.2 eV and the inflection point oCCurs at 2472.0 eV. No intense pre-edge feature is observed in the spectra for the reduced Mo model compounds and the energy shift of the S K-edge position depends on the S-ligand. Correlations between ligand charge density and the redox potential of the Mo-S cores are observed.


Subject(s)
Molybdenum/chemistry , Organometallic Compounds/chemistry , Sulfur Compounds/chemistry , Ligands , Oxidation-Reduction , Spectrometry, X-Ray Emission/methods
2.
J Synchrotron Radiat ; 8(Pt 2): 199-203, 2001 Mar 01.
Article in English | MEDLINE | ID: mdl-11512725

ABSTRACT

The combination of large-acceptance high-resolution X-ray optics with bright synchrotron sources permits quantitative analysis of rare events such as X-ray fluorescence from very dilute systems, weak fluorescence transitions or X-ray Raman scattering. Transition-metal Kbeta fluorescence contains information about spin and oxidation state; examples of the characterization of the Mn oxidation states in the oxygen-evolving complex of photosystem II and Mn-consuming spores from the marine bacillus SG- are presented. Weaker features of the Kbeta spectrum resulting from valence-level and 'interatomic' ligand to metal transitions contain detailed information on the ligand- atom type, distance and orientation. Applications of this spectral region to characterize the local structure of model compounds are presented. X-ray Raman scattering (XRS) is an extremely rare event, but also represents a unique technique to obtain bulk-sensitive low-energy (<600 eV) X-ray absorption fine structure (XAFS) spectra using hard (approximately 10 keV) X-rays. A photon is inelastically scattered, losing part of its energy to promote an electron into an unoccupied level. In many cases, the cross section is proportional to that of the corresponding absorption process yielding the same X-ray absorption near-edge structure (XANES) and extended X-ray absorption fine structure (EXAFS) features. XRS finds application for systems that defy XAFS analysis at low energies, e.g. liquids or highly concentrated complex systems, reactive compounds and samples under extreme conditions (pressure, temperature). Recent results are discussed.


Subject(s)
Spectrometry, X-Ray Emission/methods , Bacillus/metabolism , Cyclotrons , Manganese/metabolism , Photons , Photosynthetic Reaction Center Complex Proteins/chemistry , Photosystem II Protein Complex , Scattering, Radiation , Spectrometry, Fluorescence/methods , Spectrum Analysis, Raman/methods , Spores, Bacterial/metabolism , X-Rays
3.
J Am Chem Soc ; 123(32): 7804-20, 2001 Aug 15.
Article in English | MEDLINE | ID: mdl-11493054

ABSTRACT

A key question for the understanding of photosynthetic water oxidation is whether the four oxidizing equivalents necessary to oxidize water to dioxygen are accumulated on the four Mn ions of the oxygen-evolving complex (OEC), or whether some ligand-centered oxidations take place before the formation and release of dioxygen during the S(3) --> [S(4)] --> S(0) transition. Progress in instrumentation and flash sample preparation allowed us to apply Mn Kbeta X-ray emission spectroscopy (Kbeta XES) to this problem for the first time. The Kbeta XES results, in combination with Mn X-ray absorption near-edge structure (XANES) and electron paramagnetic resonance (EPR) data obtained from the same set of samples, show that the S(2) --> S(3) transition, in contrast to the S(0) --> S(1) and S(1) --> S(2) transitions, does not involve a Mn-centered oxidation. On the basis of new structural data from the S(3)-state, manganese mu-oxo bridge radical formation is proposed for the S(2) --> S(3) transition, and three possible mechanisms for the O-O bond formation are presented.


Subject(s)
Manganese/chemistry , Photosynthesis , Water/chemistry , Electron Spin Resonance Spectroscopy , Oxidation-Reduction , Oxidoreductases/chemistry , Oxygen/chemistry , Photosynthetic Reaction Center Complex Proteins/chemistry , Photosystem II Protein Complex , Spectrometry, X-Ray Emission , Spectroscopy, Fourier Transform Infrared
4.
J Synchrotron Radiat ; 8(3): 1056-8, 2001 May 01.
Article in English | MEDLINE | ID: mdl-11486415

ABSTRACT

X-ray Absorption Spectroscopy (XAS) is a powerful tool to investigate sulfur in biological molecules. The spectral features are sensitive to the local electronic and geometric environment of the atom; thus, they constitute a fingerprint of the different chemical forms in which the sulfur is present. This allows straightforward detection of the ratio between free thiols and disulfides. Intra- or inter-molecular disulfide bond formation between residues plays an important role in structural and conformational changes in proteins, and such changes can be investigated using sulfur XAS. Also, a thiolate-disulfide equilibrium is involved in the regulation of the redox potential in the cells by means of modulating the concentrations of the reduced (thiolate) and oxidized (disulfide) form of the tripeptide glutathione. Thus, we can monitor the redox state of a cell by means of sulfur XAS. Thiols also exhibit an acid-base equilibrium, and sulfur XAS can be used to determine the local pKa of the -SH group. Here we report examples of how sulfur XAS has been used for these applications.


Subject(s)
Cysteine/chemistry , Disulfides/chemistry , Proteins/chemistry , Sulfhydryl Compounds/chemistry , Papain/chemistry , Serum Albumin/chemistry , Spectrum Analysis , X-Rays , alpha-Amylases/chemistry
5.
J Am Chem Soc ; 123(29): 7031-9, 2001 Jul 25.
Article in English | MEDLINE | ID: mdl-11459481

ABSTRACT

Two structurally homologous Mn compounds in different oxidation states were studied to investigate the relative influence of oxidation state and ligand environment on Mn K-edge X-ray absorption near-edge structure (XANES) and Mn Kbeta X-ray emission spectroscopy (Kbeta XES). The two manganese compounds are the di-mu-oxo compound [L'2Mn(III)O2Mn(IV)L'2](ClO4)3, where L' is 1,10-phenanthroline (Cooper, S. R.; Calvin, M. J. Am. Chem. Soc. 1977, 99, 6623-6630) and the linear mono-mu-oxo compound [LMn(III)OMn(III)L](ClO4)2, where L- is the monoanionic N,N-bis(2-pyridylmethyl)-N'-salicylidene-1,2-diaminoethane ligand (Horner, O.; Anxolabéhère-Mallart, E.; Charlot, M. F.; Tchertanov, L.; Guilhem, J.; Mattioli, T. A.; Boussac, A.; Girerd, J.-J. Inorg. Chem. 1999, 38, 1222-1232). Preparative bulk electrolysis in acetonitrile was used to obtain higher oxidation states of the compounds: the Mn(IV)Mn(IV) species for the di-mu-oxo compound and the Mn(III)Mn(IV) and Mn(IV)Mn(IV) species for the mono-mu-oxo compound. IR, UV/vis, EPR, and EXAFS spectra were used to determine the purity and integrity of the various sample solutions. The Mn K-edge XANES spectra shift to higher energy upon oxidation when the ligand environment remains similar. However, shifts in energy are also observed when only the ligand environment is altered. This is achieved by comparing the di-mu-oxo and linear mono-mu-oxo Mn-Mn moieties in equivalent oxidation states, which represent major structural changes. The magnitude of an energy shift due to major changes in ligand environment can be as large as that of an oxidation-state change. Therefore, care must be exercised when correlating the Mn K-edge energies to manganese oxidation states without taking into account the nature of the ligand environment and the overall structure of the compound. In contrast to Mn K-edge XANES, Kbeta XES spectra show less dependence on ligand environment. The Kbeta1,3 peak energies are comparable for the di-mu-oxo and mono-mu-oxo compounds in equivalent oxidation states. The energy shifts observed due to oxidation are also similar for the two different compounds. The study of the different behavior of the XANES pre-edge and main-edge features in conjunction with Kbeta XES provides significant information about the oxidation state and character of the ligand environment of manganese atoms.


Subject(s)
Manganese/chemistry , Oxygen/chemistry , Photosynthetic Reaction Center Complex Proteins/chemistry , Electrochemistry , Ligands , Models, Molecular , Oxidation-Reduction , Oxygen/metabolism , Photosystem II Protein Complex , Spectrometry, X-Ray Emission , Spectrum Analysis , X-Rays
6.
Biochim Biophys Acta ; 1503(1-2): 7-23, 2001 Jan 05.
Article in English | MEDLINE | ID: mdl-11115621

ABSTRACT

The mechanism by which the Mn-containing oxygen evolving complex (OEC) produces oxygen from water has been of great interest for over 40 years. This review focuses on how X-ray spectroscopy has provided important information about the structure of this Mn complex and its intermediates, or S-states, in the water oxidation cycle. X-ray absorption near-edge structure spectroscopy and high-resolution Mn Kbeta X-ray emission spectroscopy experiments have identified the oxidation states of the Mn in the OEC in each of the intermediate S-states, while extended X-ray absorption fine structure experiments have shown that 2.7 A Mn-Mn di-mu-oxo and 3.3 A Mn-Mn mono-mu-oxo motifs are present in the OEC. X-ray spectroscopy has also been used to probe the two essential cofactors in the OEC, Ca2+ and Cl-, and has shown that Ca2+ is an integral component of the OEC and is proximal to Mn. In addition, dichroism studies on oriented PS II membranes have provided angular information about the Mn-Mn and Mn-Ca vectors. Based on these X-ray spectroscopy data, refined models for the structure of the OEC and a mechanism for oxygen evolution by the OEC are presented.


Subject(s)
Manganese/chemistry , Oxygen/chemistry , Photosynthetic Reaction Center Complex Proteins/chemistry , Binding Sites , Electron Spin Resonance Spectroscopy , Models, Chemical , Molecular Structure , Oxidation-Reduction , Photosynthesis , Spectrometry, X-Ray Emission , Water/chemistry
8.
Biophys J ; 74(4): 2089-99, 1998 Apr.
Article in English | MEDLINE | ID: mdl-9545068

ABSTRACT

A quantum mechanical model is developed for the observed resonance enhancement of light scattering by aggregates of electronically interacting chromophores. Aggregate size, monomer oscillator strength, extent of electronic coupling, and aggregate geometry are all important determinants of intensity in resonance light scattering (RLS) spectra. The theory also predicts the value of the depolarization ratio (rho(v)(90)) of RLS for a given aggregate geometry. These results are used to interpret the RLS depolarization ratios of four aggregates: tetrakis(4-sulfonatophenyl)porphine aggregated at low pH (rho(v)(90) = 0.17 at 488 nm), trans-bis(N-methylpyridinium-4-yl)-diphenylporphinato copper(II) aggregated in 0.2 M NaCl solution (rho(v)(90) = 0.13 at 450 nm) and on calf thymus DNA (rho(v)(90) = 0.20 at 454 nm), and chlorophyll a aggregates in formamide/water (rho(v)(90) = 0.23 and 0.32 at 469 and 699 nm, respectively). The analysis is consistent with a J-aggregate geometry for all four systems. Furthermore, the specific values of rho(v)(90) allow us to estimate the orientation of the monomer transition dipoles with respect to the long axis of the aggregate. We conclude that depolarized resonance light scattering spectroscopy is a powerful probe of the geometric and electronic structures of extended aggregates of strong chromophores.


Subject(s)
Chlorophyll/chemistry , Porphyrins/chemistry , Animals , Biophysical Phenomena , Biophysics , Cattle , Chlorophyll A , Chromogenic Compounds/chemistry , DNA/chemistry , Light , Macromolecular Substances , Models, Chemical , Molecular Structure , Quantum Theory , Scattering, Radiation
9.
Biophys J ; 68(1): 335-41, 1995 Jan.
Article in English | MEDLINE | ID: mdl-7711259

ABSTRACT

We report the resonance light scattering (RLS) spectra of chlorophyll a aggregated in a 9:1 solution of formamide and pH 6.8 phosphate buffer. The aggregate formed after 2 h of mixing, referred to as Chl469, shows a strong scattering feature at 469 nm (Soret band) and a much weaker feature at 699 nm (Qy band). A kinetic investigation confirmed that the aggregation process is cooperative, and also detected one intermediate (Chl458) with a strong RLS spectrum but only a weak CD spectrum. We propose that aggregation proceeds via at least three steps: 1) formation of a nucleating species, probably a dimer of chlorophylls; 2) formation of large aggregates with little or no secondary structure (e.g., Chl458); and 3) conformational change to form helical aggregate (Chl469).


Subject(s)
Chlorophyll/chemistry , Biophysical Phenomena , Biophysics , Chlorophyll A , Circular Dichroism , Formamides , Hydrogen-Ion Concentration , Kinetics , Light , Molecular Conformation , Scattering, Radiation , Sensitivity and Specificity , Solutions , Spectrophotometry/methods , Spectrophotometry/statistics & numerical data , Water
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