1 research outputs found
AM1/d-CB1: A Semiempirical Model for QM/MM Simulations of Chemical Glycobiology Systems
A semiempirical method based on the
AM1/d Hamiltonian is introduced
to model chemical glycobiological systems. We included in the parameter
training set glycans and the chemical environment often found about
them in glycoenzymes. Starting with RM1 and AM1/d-PhoT models we optimized
H, C, N, O, and P atomic parameters targeting the best performing
molecular properties that contribute to enzyme catalyzed glycan reaction
mechanisms. The training set comprising glycans, amino acids, phosphates
and small organic model systems was used to derive parameters that
reproduce experimental data or high-level density functional results
for carbohydrate, phosphate and amino acid heats of formation, amino
acid proton affinities, amino acid and monosaccharide dipole moments,
amino acid ionization potentials, water-phosphate interaction energies,
and carbohydrate ring pucker relaxation times. The result is the AM1/d-Chemical
Biology 1 or AM1/d-CB1 model that is considerably more accurate than
existing NDDO methods modeling carbohydrates and the amino acids often
present in the catalytic domains of glycoenzymes as well as the binding
sites of lectins. Moreover, AM1/d-CB1 computed proton affinities,
dipole moments, ionization potentials and heats of formation for transition
state puckered carbohydrate ring conformations, observed along glycoenzyme
catalyzed reaction paths, are close to values computed using DFT M06-2X.
AM1/d-CB1 provides a platform from which to accurately model reactions
important in chemical glycobiology