Accurate and Computationally Efficient Prediction
of Thermochemical Properties of Biomolecules Using the Generalized
Connectivity-Based Hierarchy
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Abstract
In
this study we have used the connectivity-based hierarchy (CBH)
method to derive accurate heats of formation of a range of biomolecules,
18 amino acids and 10 barbituric acid/uracil derivatives. The hierarchy
is based on the connectivity of the different atoms in a large molecule.
It results in error-cancellation reaction schemes that are automated,
general, and can be readily used for a broad range of organic molecules
and biomolecules. Herein, we first locate stable conformational and
tautomeric forms of these biomolecules using an accurate level of
theory (viz. CCSD(T)/6-311++G(3df,2p)). Subsequently, the heats of
formation of the amino acids are evaluated using the CBH-1 and CBH-2
schemes and routinely employed density functionals or wave function-based
methods. The calculated heats of formation obtained herein using modest
levels of theory and are in very good agreement with those obtained
using more expensive W1-F12 and W2-F12 methods on amino acids and
G3 results on barbituric acid derivatives. Overall, the present study
(a) highlights the small effect of including multiple conformers in
determining the heats of formation of biomolecules and (b) in concurrence
with previous CBH studies, proves that use of the more effective error-cancelling
isoatomic scheme (CBH-2) results in more accurate heats of formation
with modestly sized basis sets along with common density functionals
or wave function-based methods