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本文引用的文献

1
Measuring the Spin-Polarization Power of a Single Chiral Molecule.测量单个手性分子的自旋极化功率。
Small. 2017 Jan;13(2). doi: 10.1002/smll.201602519. Epub 2016 Oct 18.
2
The electron's spin and molecular chirality - how are they related and how do they affect life processes?电子的自旋和分子手性——它们是如何相关的,以及它们如何影响生命过程?
Chem Soc Rev. 2016 Nov 21;45(23):6478-6487. doi: 10.1039/c6cs00369a.
3
Emerging Computational Methods for the Rational Discovery of Allosteric Drugs.用于变构药物合理发现的新兴计算方法
Chem Rev. 2016 Jun 8;116(11):6370-90. doi: 10.1021/acs.chemrev.5b00631. Epub 2016 Apr 13.
4
Semiempirical Quantum Mechanical Methods for Noncovalent Interactions for Chemical and Biochemical Applications.用于化学和生化应用中非共价相互作用的半经验量子力学方法
Chem Rev. 2016 May 11;116(9):5301-37. doi: 10.1021/acs.chemrev.5b00584. Epub 2016 Apr 13.
5
The S66x8 benchmark for noncovalent interactions revisited: explicitly correlated ab initio methods and density functional theory.重新审视非共价相互作用的S66x8基准:显式相关的从头算方法和密度泛函理论。
Phys Chem Chem Phys. 2016 Aug 3;18(31):20905-25. doi: 10.1039/c6cp00688d.
6
Cold denaturation induces inversion of dipole and spin transfer in chiral peptide monolayers.冷变性诱导手性肽单层中偶极反转和自旋转移。
Nat Commun. 2016 Feb 26;7:10744. doi: 10.1038/ncomms10744.
7
Large-scale determination of previously unsolved protein structures using evolutionary information.利用进化信息大规模测定先前未解决的蛋白质结构。
Elife. 2015 Sep 3;4:e09248. doi: 10.7554/eLife.09248.
8
Chiral-Induced Spin Selectivity Effect.手性诱导自旋选择性效应
J Phys Chem Lett. 2012 Aug 16;3(16):2178-87. doi: 10.1021/jz300793y. Epub 2012 Jul 31.
9
Spintronics and chirality: spin selectivity in electron transport through chiral molecules.自旋电子学与手性:通过手性分子的电子输运中的自旋选择性。
Annu Rev Phys Chem. 2015 Apr;66:263-81. doi: 10.1146/annurev-physchem-040214-121554. Epub 2015 Jan 19.
10
Local light-induced magnetization using nanodots and chiral molecules.利用纳米点和手性分子实现局域光诱导磁化。
Nano Lett. 2014 Nov 12;14(11):6042-9. doi: 10.1021/nl502391t. Epub 2014 Oct 16.

手性诱导自旋极化对生物分子相互作用施加了对称性限制。

Chirality-induced spin polarization places symmetry constraints on biomolecular interactions.

作者信息

Kumar Anup, Capua Eyal, Kesharwani Manoj K, Martin Jan M L, Sitbon Einat, Waldeck David H, Naaman Ron

机构信息

Department of Chemical Physics, Weizmann Institute of Science, Rehovot 76100, Israel.

Department of Organic Chemistry, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

Proc Natl Acad Sci U S A. 2017 Mar 7;114(10):2474-2478. doi: 10.1073/pnas.1611467114. Epub 2017 Feb 22.

DOI:10.1073/pnas.1611467114
PMID:28228525
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5347616/
Abstract

Noncovalent interactions between molecules are key for many biological processes. Necessarily, when molecules interact, the electronic charge in each of them is redistributed. Here, we show experimentally that, in chiral molecules, charge redistribution is accompanied by spin polarization. We describe how this spin polarization adds an enantioselective term to the forces, so that homochiral interaction energies differ from heterochiral ones. The spin polarization was measured by using a modified Hall effect device. An electric field that is applied along the molecules causes charge redistribution, and for chiral molecules, a Hall voltage is measured that indicates the spin polarization. Based on this observation, we conjecture that the spin polarization enforces symmetry constraints on the biorecognition process between two chiral molecules, and we describe how these constraints can lead to selectivity in the interaction between enantiomers based on their handedness. Model quantum chemistry calculations that rigorously enforce these constraints show that the interaction energy for methyl groups on homochiral molecules differs significantly from that found for heterochiral molecules at van der Waals contact and shorter (i.e., ∼0.5 kcal/mol at 0.26 nm).

摘要

分子间的非共价相互作用是许多生物过程的关键。当分子相互作用时,每个分子中的电荷必然会重新分布。在此,我们通过实验表明,在手性分子中,电荷重新分布伴随着自旋极化。我们描述了这种自旋极化如何在力中添加一个对映选择性项,从而使同手性相互作用能与异手性相互作用能不同。自旋极化是通过使用改进的霍尔效应装置测量的。沿分子施加的电场会导致电荷重新分布,对于手性分子,会测量到一个霍尔电压,该电压表明自旋极化。基于这一观察结果,我们推测自旋极化对两个手性分子之间的生物识别过程施加了对称性约束,并描述了这些约束如何基于对映体的手性导致对映体之间相互作用的选择性。严格执行这些约束的模型量子化学计算表明,同手性分子上甲基的相互作用能与范德华接触时及更短距离(即0.26 nm时约为0.5 kcal/mol)的异手性分子的相互作用能有显著差异。