Semi-empirical studies of cobalamins, corrin models, and cobaloximes. The nucleotide loop does not strain the corrin ring in cobalamins

Citation
Kp. Jensen et Kv. Mikkelsen, Semi-empirical studies of cobalamins, corrin models, and cobaloximes. The nucleotide loop does not strain the corrin ring in cobalamins, INORG CHIM, 323(1-2), 2001, pp. 5-15
Citations number
74
Categorie Soggetti
Inorganic & Nuclear Chemistry
Journal title
INORGANICA CHIMICA ACTA
ISSN journal
00201693 → ACNP
Volume
323
Issue
1-2
Year of publication
2001
Pages
5 - 15
Database
ISI
SICI code
0020-1693(20011029)323:1-2<5:SSOCCM>2.0.ZU;2-S
Abstract
PM3(tm) semi-empirical geometry optimization was applied to a variety of co rrins. Notably, we present here the first quantum-mechanical equilibrium st ructures of cobalamins. Adenosylcobalamin (AdoB12) and methylcobalamin (MeB 12) in their native and 5,6-dimethylbenzimidazole (DMB)-off, imidazole-on f orms, and cob(II)alamin were subjected to full geometry optimization. The s tudy presents three levels of in vacuo B12 models: the cobalamins themselve s, the corrins, and the cobaloximes. We compare PM3(tm) data for corrins wi th other kinds of theory and experiment. The cobaloximes were less good B12 models due to their charge and the flexibility of the bis(dimethylglyoxima to) framework. We found that the nucleotide loop and the amide chains had m inor effect on the corrin geometry. This suggests that corrins are suitable as B12 models and that cobalamins are not particularly strained in compari son to the simpler corrin analogues. We have evaluated the differential pre ference of the two coenzymes for the two axial ligands imidazole and 5,6-di methylbenzimidazole. AdoB12 prefers the imidazole ligand relative to MeB12 by 27 kcal mol(-1). Finally, calculated electron affinities indicate that D MB serves as a delocalization reservoir, increasing electron affinity by 59 kcal mol(-1) relative to ammonia. Hence, apo-enzymatic control of the Co-N (ax) bond length may be a means to govern the homolysis-heterolysis selecti vity, rendering delocalization of the SOMO electron possible during homolys is. (C) 2001 Elsevier Science B.V. All rights reserved,