Quantum Mechanics/Molecular Mechanics Study of the Sialyltransferase Reaction Mechanism

Biochemistry. 2016 Oct 11;55(40):5764-5771. doi: 10.1021/acs.biochem.6b00267. Epub 2016 Sep 30.

Abstract

The sialyltransferase is an enzyme that transfers the sialic acid moiety from cytidine 5'-monophospho-N-acetyl-neuraminic acid (CMP-NeuAc) to the terminal position of glycans. To elucidate the catalytic mechanism of sialyltransferase, we explored the potential energy surface along the sialic acid transfer reaction coordinates by the hybrid quantum mechanics/molecular mechanics method on the basis of the crystal structure of sialyltransferase CstII. Our calculation demonstrated that CstII employed an SN1-like reaction mechanism via the formation of a short-lived oxocarbenium ion intermediate. The computational barrier height was 19.5 kcal/mol, which reasonably corresponded with the experimental reaction rate. We also found that two tyrosine residues (Tyr156 and Tyr162) played a vital role in stabilizing the intermediate and the transition states by quantum mechanical interaction with CMP.

MeSH terms

  • Protein Conformation
  • Quantum Theory*
  • Sialyltransferases / chemistry*

Substances

  • Sialyltransferases