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Insight into the kinetics and thermodynamics of the hydride transfer reactions between quinones and lumiflavin: a density functional theory study.
Reinhardt, Clorice R; Jaglinski, Tanner C; Kastenschmidt, Ashly M; Song, Eun H; Gross, Adam K; Krause, Alyssa J; Gollmar, Jonathan M; Meise, Kristin J; Stenerson, Zachary S; Weibel, Tyler J; Dison, Andrew; Finnegan, Mackenzie R; Griesi, Daniel S; Heltne, Michael D; Hughes, Tom G; Hunt, Connor D; Jansen, Kayla A; Xiong, Adam H; Hati, Sanchita; Bhattacharyya, Sudeep.
Afiliação
  • Reinhardt CR; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Jaglinski TC; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Kastenschmidt AM; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Song EH; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Gross AK; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Krause AJ; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Gollmar JM; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Meise KJ; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Stenerson ZS; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Weibel TJ; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Dison A; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Finnegan MR; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Griesi DS; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Heltne MD; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Hughes TG; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Hunt CD; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Jansen KA; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Xiong AH; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Hati S; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA.
  • Bhattacharyya S; Department of Chemistry, University of Wisconsin-Eau Claire, Eau Claire, WI, 54702, USA. bhattas@uwec.edu.
J Mol Model ; 22(9): 199, 2016 Sep.
Article em En | MEDLINE | ID: mdl-27491848
The kinetics and equilibrium of the hydride transfer reaction between lumiflavin and a number of substituted quinones was studied using density functional theory. The impact of electron withdrawing/donating substituents on the redox potentials of quinones was studied. In addition, the role of these substituents on the kinetics of the hydride transfer reaction with lumiflavin was investigated in detail under the transition state (TS) theory assumption. The hydride transfer reactions were found to be more favorable for an electron-withdrawing substituent. The activation barrier exhibited a quadratic relationship with the driving force of these reactions as derived under the formalism of modified Marcus theory. The present study found a significant extent of electron delocalization in the TS that is stabilized by enhanced electrostatic, polarization, and exchange interactions. Analysis of geometry, bond-orders, and energetics revealed a predominant parallel (Leffler-Hammond) effect on the TS. Closer scrutiny reveals that electron-withdrawing substituents, although located on the acceptor ring, reduce the N-H bond order of the donor fragment in the precursor complex. Carried out in the gas-phase, this is the first ever report of a theoretical study of flavin's hydride transfer reactions with quinones, providing an unfiltered view of the electronic effect on the nuclear reorganization of donor-acceptor complexes.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: J Mol Model Assunto da revista: BIOLOGIA MOLECULAR Ano de publicação: 2016 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: J Mol Model Assunto da revista: BIOLOGIA MOLECULAR Ano de publicação: 2016 Tipo de documento: Article País de afiliação: Estados Unidos