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Sinha Roy A, Marohn JA, Freed JH. An analysis of double-quantum coherence ESR in an N-spin system: Analytical expressions and predictions. J Chem Phys 2024; 160:134105. [PMID: 38557852 PMCID: PMC11087869 DOI: 10.1063/5.0200054] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/24/2024] [Accepted: 03/12/2024] [Indexed: 04/04/2024] Open
Abstract
Electron spin resonance pulsed dipolar spectroscopy (PDS) has become popular in protein 3D structure analysis. PDS studies yield distance distributions between a pair or multiple pairs of spin probes attached to protein molecules, which can be used directly in structural studies or as constraints in theoretical predictions. Double-quantum coherence (DQC) is a highly sensitive and accurate PDS technique to study protein structures in the solid state and under physiologically relevant conditions. In this work, we have derived analytical expressions for the DQC signal for a system with N-dipolar coupled spin-1/2 particles in the solid state. The expressions are integrated over the relevant spatial parameters to obtain closed form DQC signal expressions. These expressions contain the concentration-dependent "instantaneous diffusion" and the background signal. For micromolar and lower concentrations, these effects are negligible. An approximate analysis is provided for cases of finite pulses. The expressions obtained in this work should improve the analysis of DQC experimental data significantly, and the analytical approach could be extended easily to a wide range of magnetic resonance phenomena.
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Affiliation(s)
| | - John A. Marohn
- Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York, USA
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Bahrenberg T, Rosenski Y, Carmieli R, Zibzener K, Qi M, Frydman V, Godt A, Goldfarb D, Feintuch A. Improved sensitivity for W-band Gd(III)-Gd(III) and nitroxide-nitroxide DEER measurements with shaped pulses. JOURNAL OF MAGNETIC RESONANCE (SAN DIEGO, CALIF. : 1997) 2017; 283:1-13. [PMID: 28834777 DOI: 10.1016/j.jmr.2017.08.003] [Citation(s) in RCA: 36] [Impact Index Per Article: 5.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/10/2017] [Revised: 08/08/2017] [Accepted: 08/09/2017] [Indexed: 06/07/2023]
Abstract
Chirp and shaped pulses have been recently shown to be highly advantageous for improving sensitivity in DEER (double electron-electron resonance, also called PELDOR) measurements due to their large excitation bandwidth. The implementation of such pulses for pulse EPR has become feasible due to the availability of arbitrary waveform generators (AWG) with high sampling rates to support pulse shaping for pulses with tens of nanoseconds duration. Here we present a setup for obtaining chirp pulses on our home-built W-band (95GHz) spectrometer and demonstrate its performance on Gd(III)-Gd(III) and nitroxide-nitroxide DEER measurements. We carried out an extensive optimization procedure on two model systems, Gd(III)-PyMTA-spacer-Gd(III)-PyMTA (Gd-PyMTA ruler; zero-field splitting parameter (ZFS) D∼1150MHz) as well as nitroxide-spacer-nitroxide (nitroxide ruler) to evaluate the applicability of shaped pulses to Gd(III) complexes and nitroxides, which are two important classes of spin labels used in modern DEER/EPR experiments. We applied our findings to ubiquitin, doubly labeled with Gd-DOTA-monoamide (D∼550MHz) asa model for a system with a small ZFS. Our experiments were focused on the questions (i) what are the best conditions for positioning of the detection frequency, (ii) which pump pulse parameters (bandwidth, positioning in the spectrum, length) yield the best signal-to-noise ratio (SNR) improvements when compared to classical DEER, and (iii) how do the sample's spectral parameters influence the experiment. For the nitroxide ruler, we report an improvement of up to 1.9 in total SNR, while for the Gd-PyMTA ruler the improvement was 3.1-3.4 and for Gd-DOTA-monoamide labeled ubiquitin it was a factor of 1.8. Whereas for the Gd-PyMTA ruler the two setups pump on maximum and observe on maximum gave about the same improvement, for Gd-DOTA-monoamide a significant difference was found. In general the choice of the best set of parameters depends on the D parameter of the Gd(III) complex.
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Affiliation(s)
- Thorsten Bahrenberg
- Department of Chemical Physics, Weizmann Institute of Science, 76100 Rehovot, Israel
| | - Yael Rosenski
- Department of Chemical Physics, Weizmann Institute of Science, 76100 Rehovot, Israel
| | - Raanan Carmieli
- Department of Chemical Research Support, Weizmann Institute of Science, 76100 Rehovot, Israel
| | - Koby Zibzener
- Department of Chemical Physics, Weizmann Institute of Science, 76100 Rehovot, Israel
| | - Mian Qi
- Faculty of Chemistry and Center for Molecular Materials (CM(2)), Bielefeld University, 33615 Bielefeld, Germany
| | - Veronica Frydman
- Department of Chemical Research Support, Weizmann Institute of Science, 76100 Rehovot, Israel
| | - Adelheid Godt
- Faculty of Chemistry and Center for Molecular Materials (CM(2)), Bielefeld University, 33615 Bielefeld, Germany
| | - Daniella Goldfarb
- Department of Chemical Physics, Weizmann Institute of Science, 76100 Rehovot, Israel
| | - Akiva Feintuch
- Department of Chemical Physics, Weizmann Institute of Science, 76100 Rehovot, Israel.
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Martorana A, Bellapadrona G, Feintuch A, Di Gregorio E, Aime S, Goldfarb D. Probing protein conformation in cells by EPR distance measurements using Gd3+ spin labeling. J Am Chem Soc 2014; 136:13458-65. [PMID: 25163412 DOI: 10.1021/ja5079392] [Citation(s) in RCA: 165] [Impact Index Per Article: 16.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/11/2022]
Abstract
Protein structure investigations are usually carried out in vitro under conditions far from their native environment in the cell. Differences between in-cell and in vitro structures of proteins can be generated by crowding effects, local pH changes, specific and nonspecific protein and ligand binding events, and chemical modifications. Double electron-electron resonance (DEER), in conjunction with site-directed spin-labeling, has emerged in the past decade as a powerful technique for exploring protein conformations in frozen solutions. The major challenges facing the application of this methodology to in-cell measurements are the instabilities of the standard nitroxide spin labels in the cell environment and the limited sensitivity at conventional X-band frequencies. We present a new approach for in-cell DEER distance measurement in human cells, based on the use of: (i) reduction resistant Gd(3+) chelates as spin labels, (ii) high frequency (94.9 GHz) for sensitivity enhancement, and (iii) hypo-osmotic shock for efficient delivery of the labeled protein into the cell. The proof of concept is demonstrated on doubly labeled ubiquitin in HeLa cells.
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Affiliation(s)
- Andrea Martorana
- Department of Chemical Physics and ‡Department of Materials and Interfaces, Weizmann Institute of Science , Rehovot, Israel 7610001
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Abstract
Distance distributions between paramagnetic centers in the range of 1.8 to 6 nm in membrane proteins and up to 10 nm in deuterated soluble proteins can be measured by the DEER technique. The number of paramagnetic centers and their relative orientation can be characterized. DEER does not require crystallization and is not limited with respect to the size of the protein or protein complex. Diamagnetic proteins are accessible by site-directed spin labeling. To characterize structure or structural changes, experimental protocols were optimized and techniques for artifact suppression were introduced. Data analysis programs were developed, and it was realized that interpretation of the distance distributions must take into account the conformational distribution of spin labels. First methods have appeared for deriving structural models from a small number of distance constraints. The present scope and limitations of the technique are illustrated.
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Affiliation(s)
- Gunnar Jeschke
- Laboratory of Physical Chemistry, Eidgenössische Technische Hochschule Zürich, Switzerland.
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Sicoli G, Mathis G, Aci-Sèche S, Saint-Pierre C, Boulard Y, Gasparutto D, Gambarelli S. Lesion-induced DNA weak structural changes detected by pulsed EPR spectroscopy combined with site-directed spin labelling. Nucleic Acids Res 2009; 37:3165-76. [PMID: 19304747 PMCID: PMC2691821 DOI: 10.1093/nar/gkp165] [Citation(s) in RCA: 37] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/25/2008] [Revised: 02/05/2009] [Accepted: 03/01/2009] [Indexed: 12/23/2022] Open
Abstract
Double electron-electron resonance (DEER) was applied to determine nanometre spin-spin distances on DNA duplexes that contain selected structural alterations. The present approach to evaluate the structural features of DNA damages is thus related to the interspin distance changes, as well as to the flexibility of the overall structure deduced from the distance distribution. A set of site-directed nitroxide-labelled double-stranded DNA fragments containing defined lesions, namely an 8-oxoguanine, an abasic site or abasic site analogues, a nick, a gap and a bulge structure were prepared and then analysed by the DEER spectroscopic technique. New insights into the application of 4-pulse DEER sequence are also provided, in particular with respect to the spin probes' positions and the rigidity of selected systems. The lesion-induced conformational changes observed, which were supported by molecular dynamics studies, confirm the results obtained by other, more conventional, spectroscopic techniques. Thus, the experimental approaches described herein provide an efficient method for probing lesion-induced structural changes of nucleic acids.
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Affiliation(s)
- Giuseppe Sicoli
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
| | - Gérald Mathis
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
| | - Samia Aci-Sèche
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
| | - Christine Saint-Pierre
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
| | - Yves Boulard
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
| | - Didier Gasparutto
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
| | - Serge Gambarelli
- Laboratoire de Résonance Magnétique, Laboratoire Lésions des Acides Nucléiques, Service de Chimie Inorganique et Biologique UMR-E n°3 CEA-UJF FRE 3200 CNRS/Institut des Nanosciences et Cryogénie, CEA-Grenoble, 17, Avenue des Martyrs, F-38054, Grenoble Cedex 9 and Laboratoire de Biologie Intégrative, Service de Biologie Intégrative et Génétique Moléculaire, Institut de Biologie et de Technologies de Saclay; CEA-Saclay, F-91191, Gif-sur-Yvette Cedex, France
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Finiguerra MG, Prudêncio M, Ubbink M, Huber M. Accurate long-range distance measurements in a doubly spin-labeled protein by a four-pulse, double electron-electron resonance method. MAGNETIC RESONANCE IN CHEMISTRY : MRC 2008; 46:1096-1101. [PMID: 18932181 DOI: 10.1002/mrc.2290] [Citation(s) in RCA: 12] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/26/2023]
Abstract
Distance determination in disordered systems by a four-pulse double electron-electron resonance method (DEER or PELDOR) is becoming increasingly popular because long distances (several nanometers) and their distributions can be measured. From the distance distributions eventual heterogeneities and dynamics can be deduced. To make full use of the method, typical distance distributions for structurally well-defined systems are needed. Here, the structurally well-characterized protein azurin is investigated by attaching two (1-oxyl-2,2,5,5-tetramethylpyrroline-3-methyl) methanethiosulfonate spin labels (MTSL) by site-directed mutagenesis. Mutations at the surface sites of the protein Q12, K27, and N42 are combined in the double mutants Q12C/K27C and K27C/N42C. A distance of 4.3 nm is found for Q12C/K27C and 4.6 nm for K27C/N42C. For Q12C/K27C the width of the distribution (0.24 nm) is smaller than for the K27C/N42C mutant (0.36 nm). The shapes of the distributions are close to Gaussian. These distance distributions agree well with those derived from a model to determine the maximally accessible conformational space of the spin-label linker. Additionally, the expected distribution for the shorter distance variant Q12C/N42C was modeled. The width is larger than the calculated one for Q12C/K27C by 21%, revealing the effect of the different orientation and shorter distance. The widths and the shapes of the distributions are suited as a reference for two unperturbed MTSL labels at structurally well-defined sites.
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Affiliation(s)
- Michela G Finiguerra
- Department of Molecular Physics, Leiden University, 2300 RA Leiden, The Netherlands
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