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April 29, 2026ACS Omega0 citationsOpen Access

Formate Dehydrogenase: The Role of the AMP Cofactor Fragment in Stabilization of the Transition State for Enzyme-Catalyzed Hydride Transfer

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RHRania HegazyAKAstrid P. KoudelkaJRJohn P. Richard

Key Points

  • To investigate the role of AMP and NAD+ in stabilizing the transition state during hydride transfer in formate dehydrogenase.
  • Conducted experiments examining the binding interactions of FDH with AMP and NAD+ fragments.
  • Measured the stabilization free energy for the transition states during hydride transfer.
  • Analyzed conformational changes of FDH in response to ligand binding.
  • Binding of ADP fragment to FDH stabilizes the transition state by 11.9 kcal/mol.
  • AMP fragment provides a 5.6 kcal/mol stabilization for the transition state during hydride transfer to nicotinamide riboside.
  • Conformational shifts were noted from open to closed states in FDH upon binding of cofactors.

Abstract

We report experiments that probe the role of the NAD+-driven protein conformational change in the formate dehydrogenase (FDH)-catalyzed hydride transfer. The binding interactions between FDH and the ADP fragment of NAD+ provide an 11.9 kcal/mol stabilization of the transition state for FDH-catalyzed hydride transfer from formate to NAD+ and a 7.9 kcal/mol stabilization of the complex between FDH and the putative transition state analogue azide anion. The binding interactions between FDH and the AMP cofactor piece likewise provide a 5.6 kcal/mol stabilization of the transition state for FDH-catalyzed hydride transfer from formate to nicotinamide riboside (NR) and a 1.4 kcal/mol stabilization of the complex between FDH and the azide anion. The results provide support for the conclusion that binding of NAD+ or the AMP cofactor fragment to FDH drives a change in protein conformation from a flexible open conformation to the tight closed conformation that locks the active site side chains into positions that provide optimal stabilization of both the hydride transfer transition state and the azide anion mimic for this transition state.

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Cite This Study

Hegazy et al. (2026) studied this question.

synapsesocial.com/papers/69f154e0879cb923c49452e8https://doi.org/10.1021/acsomega.6c02728
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