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Electronic Effects of 11β Substituted 17β-Estradiol Derivatives and Instrumental Effects on the Relative Gas Phase Acidity
Authors:Sandrine Bourgoin-Voillard  Fran?oise Fournier  Carlos Afonso  Emilie-Laure Zins  Yves Jacquot  Claude Pèpe  Guy Leclercq  Jean-Claude Tabet
Institution:1. Equipe de Spectrom??trie de masse, Institut Parisien de Chimie Mol??culaire, UMR 7201, Universit?? Pierre et Marie Curie-Paris 6, 4 Place Jussieu, 75252, Paris Cedex 05, France
2. Laboratoire Jean-Claude Heuson de Canc??rologie Mammaire, Institut Jules Bordet, 1 rue H??ger Bordet, 1000, Brussels, Belgium
6. Inserm/Universit?? Joseph Fourier U823?CInstitut Albert Bonniot, Platform of Medical Proteomics Facility, Institut de Biologie et Pathologie, CHU de Grenoble, Boulevard la Chantourne, 38700 La Tronche, BP217, 38043, Grenoble Cedex 9, France
3. UMR CNRS 6014 COBRA, Universit?? de Rouen, INSA de Rouen, 1 rue Tesni??re, 76821, Mont Saint-Aignan, France
4. Laboratoire de Dynamique, Interactions et R??activit?? UMR 7075, Universit?? Pierre et Marie Curie-Paris 6, 4 Place Jussieu, 75252, Paris Cedex 05, France
5. Laboratoire des BioMol??cules, UMR 7203, Ecole Normale Sup??rieure, Universit?? Pierre et Marie Curie-Paris 6, 24 rue Lhomond, 75231, Paris Cedex 05, France
Abstract:Numerous studies have highlighted the role of the proton donor characteristics of the phenol group of 17??-estradiol (E2) in its association with the estrogen receptor alpha (ER??). Since the substitutions at position C(11) have been reported to modulate this association, we hypothesized that such substitutions may modify the phenol acidity. Hence, phenol gas-phase acidity of nine C(11)-substituted E2-derivatives were evaluated using the extended Cooks?? kinetic method, which is a method widely used to determine thermochemical properties by mass spectrometry. To enhance accuracy in data collection we recorded data from several instruments, including quadrupole ion trap, triple quadrupole, and hybrid QqTOF. Indeed, we report for the first time the use of the QqTOF instrument to provide a novel means to improve data accuracy by giving access to an intermediate effective temperature range. All experimental gas-phase acidity values were supported by theoretical calculations. Our results confirmed the ability of distant substituents at C(11) to modulate the phenol acidity through electrostatic interactions, electron withdrawing inductive effects, and mesomeric effects. However, no relationship was found between the phenol gas-phase acidity of investigated steroids and their binding affinity for ER?? assessed in solution. Thus, our results highlight that the intrinsic properties of the hormone do not influence sufficiently the stabilization of the hormone/ER?? complex. It is more likely that such stabilization would be more related to factors depending on the environment within the binding pocket such as hydrophobic, steric as well as direct intermolecular electrostatic effects between ER?? residues and the substituted steroidal estrogens.
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