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Benchmarking Commercial Conformer Ensemble Generators

delete2017-10-18
delete88
PRE
AI
N
Nils‐Ole Friedrich
C
Christina de Bruyn Kops
F
Florian Flachsenberg
K
Kai Sommer
M
Matthias Rarey
J
Johannes Kirchmair *
DOI:10.1021/acs.jcim.7b00505delete
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摘要

摘要

En 中文
We assess and compare the performance of eight commercial conformer ensemble generators (ConfGen, CorifGenX, cxcalc, iCon, MOE LowModeMD, MOE Stochastic, MOE Conformation Import, and OMEGA) and one leading free algorithm, the distance geometry algorithm implemented in RD)Kit. The comparative study is based on a new version of the Platinum Diverse Dataset, a high-quality benchmarking dataset of 2859 protein-bound ligand conformations extracted from the PDB. Differences in the performance of commercial algorithms are much smaller than those observed for free algorithms in our previous study (J. Chem. Inf. Model. 2017, 57, 529-539). For commercial algorithms, the median minimum root-mean-square deviations measured between protein-bound ligand conformations and ensembles of a maximum of 250 conformers are between 0.46 and 0:61 angstrom. Commercial conformer ensemble generators are characterized by their high robustness, with at least 99% of all input molecules successfully processed and few or even no substantial geometrical errors detectable in their output conformations. The RDKit distance geometry algorithm (with minimization enabled) appears to be a good free alternative since its performance is comparable to that of the midranked commercial algorithms. Based on a statistical analysis, we elaborate on which algorithms to use and how to parametrize them for best performance in different application scenarios.
Keyword:
PROTEIN DATA-BANK
FORCE-FIELD
CONFORMATIONAL SEARCH
ALGORITHM
MOLECULES
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期刊

Journal of Chemical Information and Modeling 封面图
Journal of Chemical Information and Modeling
IF:
5.3
论文数:
9.1K
被引数:
4.0W

机构

U
university of hamburg
学者数:
3.7W
论文数: 2.9W
被引数: 30
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