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Protonated and deprotonated vanadyl imidazole tartrates for the mimics of the vanadium coordination in the FeV-cofactor of V-nitrogenase.

Shuang-Shuang ZhuZhen-Lang XieLan DengSi-Yuan WangGuowang DiaoZhao Hui Zhou
Published in: Dalton transactions (Cambridge, England : 2003) (2023)
Chiral imidazole-based oxidovanadium tartrates (H 2 im) 2 [Δ,Λ-VIV2O 2 ( R , R -H 2 tart)( R , R -tart)(Him) 2 ]·Him (1, H 4 tart = tartaric acid, Him = imidazole) and [Λ,Λ-VIV2O 2 ( R , R -tart)(Him) 6 ]·4H 2 O (2) and their corresponding enantiomers (H 2 im) 2 [Λ,Δ-VIV2O 2 ( S , S -H 2 tart)( S , S -tart)(Him) 2 ]·Him (3) and [Δ,Δ-VIV2O 2 ( S , S -tart)(Him) 6 ]·4H 2 O (4) were obtained in alkaline solutions. Interestingly, the tartrates chelate with vanadium bidentately through α-alkoxy/α-hydroxy and α-carboxy groups and imidazole coordinates monodentately through nitrogen atom. It is worth noting that complexes 1 and 3 contain both protonated α-hydroxy and deprotonated α-alkoxy groups simultaneously, which have short V-O α-alkoxy distances [1.976(4) av Å in 1-4] and long V-O α-hydroxy distances [2.237(3) av Å in 1 and 2.230(2) av Å in 3]. There is an interesting strong intramolecular hydrogen bond [O(11)⋯O(1) 2.731(5) Å] between the two parts in 1 and 3. The protonated V-O distances are closer to the average bond distance in reported FeV-cofactors (FeV-cos, V-O α-alkoxy 2.156 av Å) in VFe proteins, which corresponds to the feasible protonation of coordinated α-hydroxy in R -homocitrate in V-nitrogenase, showing the homocitrate in the mechanistic model for nitrogen reduction as a secondary proton donor. Furthermore, vibrational circular dichroism (VCD) and IR spectra of 1-4 pointed out the disparity between the characteristic vibrations of the C-O and C-OH groups clearly. EPR experiment and theoretical calculations support +4 oxidation states for vanadium in 1-4. Solution 13 C { 1 H} NMR spectra and CV analyses exhibited the solution properties for 1 and 2, respectively, which indicates that there should be a rapid exchange equilibrium between the protonated and deprotonated species in solutions.
Keyphrases
  • density functional theory
  • molecular dynamics
  • molecular dynamics simulations
  • magnetic resonance
  • high resolution
  • mass spectrometry
  • energy transfer
  • hydrogen peroxide