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Spectroscopic Studies of the EutT Adenosyltransferase from Salmonella Enterica: Mechanism of Four-Coordinate Co(II)Cbl Formation

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Journal J Am Chem Soc
Specialty Chemistry
Date 2016 Feb 18
PMID 26886077
Citations 7
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Abstract

EutT from Salmonella enterica is a member of a class of enzymes termed ATP:Co(I)rrinoid adenosyltransferases (ACATs), implicated in the biosynthesis of adenosylcobalamin (AdoCbl). In the presence of cosubstrate ATP, ACATs raise the Co(II)/Co(I) reduction potential of their cob(II)alamin [Co(II)Cbl] substrate by >250 mV via the formation of a unique four-coordinate (4c) Co(II)Cbl species, thereby facilitating the formation of a "supernucleophilic" cob(I)alamin intermediate required for the formation of the AdoCbl product. Previous kinetic studies of EutT revealed the importance of a HX11CCX2C(83) motif for catalytic activity and have led to the proposal that residues in this motif serve as the binding site for a divalent transition metal cofactor [e.g., Fe(II) or Zn(II)]. This motif is absent in other ACAT families, suggesting that EutT employs a distinct mechanism for AdoCbl formation. To assess how metal ion binding to the HX11CCX2C(83) motif affects the relative yield of 4c Co(II)Cbl generated in the EutT active site, we have characterized several enzyme variants by using electronic absorption, magnetic circular dichroism, and electron paramagnetic resonance spectroscopies. Our results indicate that Fe(II) or Zn(II) binding to the HX11CCX2C(83) motif of EutT is required for promoting the formation of 4c Co(II)Cbl. Intriguingly, our spectroscopic data also reveal the presence of an equilibrium between five-coordinate "base-on" and "base-off" Co(II)Cbl species bound to the EutT active site at low ATP concentrations, which shifts in favor of "base-off" Co(II)Cbl in the presence of excess ATP, suggesting that the base-off species serves as a precursor to 4c Co(II)Cbl.

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References
1.
Escalante-Semerena J, Suh S, Roth J . cobA function is required for both de novo cobalamin biosynthesis and assimilation of exogenous corrinoids in Salmonella typhimurium. J Bacteriol. 1990; 172(1):273-80. PMC: 208428. DOI: 10.1128/jb.172.1.273-280.1990. View

2.
Stich T, Buan N, Brunold T . Spectroscopic and computational studies of Co2+corrinoids: spectral and electronic properties of the biologically relevant base-on and base-off forms of Co2+cobalamin. J Am Chem Soc. 2004; 126(31):9735-49. DOI: 10.1021/ja0481631. View

3.
Conrad K, Brunold T . Spectroscopic and computational studies of glutathionylcobalamin: nature of Co-S bonding and comparison to Co-C bonding in coenzyme B12. Inorg Chem. 2011; 50(18):8755-66. DOI: 10.1021/ic200428r. View

4.
Jorge-Finnigan A, Aguado C, Sanchez-Alcudia R, Abia D, Richard E, Merinero B . Functional and structural analysis of five mutations identified in methylmalonic aciduria cblB type. Hum Mutat. 2010; 31(9):1033-42. PMC: 2932867. DOI: 10.1002/humu.21307. View

5.
Stich T, Buan N, Escalante-Semerena J, Brunold T . Spectroscopic and computational studies of the ATP:corrinoid adenosyltransferase (CobA) from Salmonella enterica: insights into the mechanism of adenosylcobalamin biosynthesis. J Am Chem Soc. 2005; 127(24):8710-9. DOI: 10.1021/ja042142p. View