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Rapid and accurate assessment of GPCR–ligand interactions Using the fragment molecular orbital‐based density‐functional tight‐binding method

机译:使用基于片段分子轨道的密度功能紧密结合方法快速准确地评估GPCR与配体之间的相互作用

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摘要

The reliable and precise evaluation of receptor–ligand interactions and pair‐interaction energy is an essential element of rational drug design. While quantum mechanical (QM) methods have been a promising means by which to achieve this, traditional QM is not applicable for large biological systems due to its high computational cost. Here, the fragment molecular orbital (FMO) method has been used to accelerate QM calculations, and by combining FMO with the density‐functional tight‐binding (DFTB) method we are able to decrease computational cost 1000 times, achieving results in seconds, instead of hours. We have applied FMO‐DFTB to three different GPCR–ligand systems. Our results correlate well with site directed mutagenesis data and findings presented in the published literature, demonstrating that FMO‐DFTB is a rapid and accurate means of GPCR–ligand interactions. © 2017 Authors. Journal of Computational Chemistry Published by Wiley Periodicals, Inc.
机译:可靠,精确地评估受体-配体相互作用和配对相互作用能是合理药物设计的基本要素。尽管量子力学(QM)方法已成为实现此目标的一种有前途的手段,但传统的QM由于计算成本高而不适用于大型生物系统。在这里,碎片分子轨道(FMO)方法已被用于加速QM计算,并且通过将FMO与密度泛函紧密结合(DFTB)方法相结合,我们能够将计算成本降低1000倍,而在几秒钟内获得结果小时。我们已将FMO-DFTB应用于三个不同的GPCR-配体系统。我们的结果与定点诱变数据和已发表文献中提供的发现密切相关,表明FMO-DFTB是GPCR-配体相互作用的快速而准确的手段。 ©2017作者。 Wiley Periodicals,Inc.发布的《计算化学杂志》。

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