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Libraries of Extremely Localized Molecular Orbitals. 3. Construction and Preliminary Assessment of the New Databanks

机译:极其局部分子轨道的文库。 3.对新数据库的建设和初步评估

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The fast and reliable determination of wave functions and electron densities of macromolecules has been one of the goals of theoretical chemistry for a long time, and in this context, several linear scaling techniques have been successfully devised over the years. Different approaches have been adopted to tackle this problem, and one of them exploits the fact that, according to the traditional chemical perception, molecules can be seen as constituted of recurring units (e.g., functional groups) with well-defined chemical features. This has led to the development of methods in which the global wave functions or electron densities of macromolecules are obtained by simply transferring density matrices or fuzzy electron densities associated with molecular fragments. In this context, we propose an alternative strategy that aims at quickly reconstructing wave functions and electron densities of proteins through the transfer of extremely localized molecular orbitals (ELMOs), which are orbitals strictly localized on small molecular units and, for this reason, easily transferable from molecule to molecule. To accomplish this task we have constructed original libraries of ELMOs that cover all the possible elementary fragments of the 20 natural amino acids in all their possible protonation states and forms. Our preliminary test calculations have shown that, compared to more traditional methods of quantum chemistry, the transfers from the novel ELMO databanks allow to obtain wave function and electron densities of large polypeptides and proteins at a significantly reduced computational cost. Furthermore, notwithstanding expected discrepancies, the obtained electron distributions and electrostatic potentials are in very good agreement with those obtained at Hartree-Fock and density functional theory (DFT) levels. Therefore, the results encourage to use the new libraries as alternatives to the popular pseudoatom-databases of crystallography in the refinement of crystallographic structures of macromolecules. In particular, in this context, we have already envisaged the coupling of the ELMO databanks with the promising Hirshfeld atom refinement technique to extend the applicability of the latter to very large systems.
机译:快速可靠的波浪函数和电子密度的确定长期以来一直是理论化学的目标之一,并且在这种情况下,多年来已经成功设计了几种线性缩放技术。已经采用不同的方法来解决这个问题,其中一个人利用了根据传统化学感知的事实,分子可以被视为具有明确定义的化学特征的重复单元(例如,官能团)构成。这导致了通过简单地传递与分子片段相关的密度矩阵或模糊电子密度来获得全局波函数或大分子的电子密度的方法的发展。在这种情况下,我们提出了一种替代策略,旨在通过转移极其局部分子轨道(ELMOS)来快速重建蛋白质的波函数和电子密度,这是严格地局限于小分子单位的轨道,因此易于转移从分子到分子。为了完成这项任务,我们已经构建了ELMO的原始文库,其在所有可能的质子化状态和形式中涵盖了20个天然氨基酸的所有可能的基本碎片。我们的初步测试计算表明,与更多传统的量子化学方法相比,来自新型ELMO数据库的转移允许以显着降低的计算成本获得大型多肽和蛋白质的波形功能和电子密度。此外,尽管预期的差异,但是获得的电子分布和静电电位与在Hartree-Fock和密度泛函理论(DFT)水平上获得的那些非常好。因此,结果鼓励使用新图书馆作为晶体学初级数据库的替代品在细胞内容的晶体中的细晶结构中的晶体中。特别是,在这种情况下,我们已经设想了ELMO数据库的耦合,使希望的HIRSHFELD原子细化技术将后者的适用性扩展到非常大的系统。

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