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纳米石墨烯-肽复合物的相互作用、电子和光学性质:一项理论研究。

Interactions, electronic and optical properties of nanographene-peptide complexes: a theoretical study.

作者信息

Srivastava Ruby

机构信息

CSIR-Centre for Cellular and Molecular Biology Hyderabad India

出版信息

RSC Adv. 2020 Oct 21;10(63):38654-38662. doi: 10.1039/d0ra07961h. eCollection 2020 Oct 15.

Abstract

We studied the interaction of planar phenylalanine (phe), tryptophan (try), tyrosine (tyr); amide asparagine (asn) and glutamine (gln); arginine (arg) side-chains, charged histidine (his-c) and charged lysine (lys-c) side-chains on a nanographene (g) surface by Density Functional theory (DFT) and Time Dependent Density Functional Theory (TDDFT). The occupied number of states by the system at each energy level and relative contribution of a particular atom/orbital has been studied by Density of States (DOS) and Partial Density of States (PDOS) respectively. Atom-in Molecules (AIM) analysis and non-covalent interaction (NCI) PLOT are used to study the interactions in these complexes. The absorption spectra and HOMO-LUMO (HL) gaps are quantitatively analysed to study the correlation between the optical properties of the studied complexes. The HL gap of peptides is larger than the HL gap of graphene-peptide complexes, indicating strong interactions. All the peptides interact from the above the nanographene surfaces. garg, glys-c, gtry and gtyr complexes have smaller bond distance as compared to gasn, ggln, ghis-c and gphe complexes. AIM analysis and (NCI) PLOT showed noncovalent interactions for these complexes. TDDFT calculations indicated the applicability of these complexes as biosensors.

摘要

我们通过密度泛函理论(DFT)和含时密度泛函理论(TDDFT)研究了平面苯丙氨酸(phe)、色氨酸(try)、酪氨酸(tyr);酰胺天冬酰胺(asn)和谷氨酰胺(gln);精氨酸(arg)侧链、带电荷的组氨酸(his-c)和带电荷的赖氨酸(lys-c)侧链在纳米石墨烯(g)表面的相互作用。通过态密度(DOS)和分态密度(PDOS)分别研究了系统在每个能级上的占据态数以及特定原子/轨道的相对贡献。采用分子中的原子(AIM)分析和非共价相互作用(NCI)PLOT来研究这些配合物中的相互作用。对吸收光谱和最高已占分子轨道-最低未占分子轨道(HOMO-LUMO,HL)能隙进行了定量分析,以研究所研究配合物的光学性质之间的相关性。肽的HL能隙大于石墨烯-肽配合物的HL能隙,表明存在强相互作用。所有肽均从纳米石墨烯表面上方进行相互作用。与gasn、ggln、ghis-c和gphe配合物相比,garg、glys-c、gtry和gtyr配合物具有更小的键距。AIM分析和(NCI)PLOT表明这些配合物存在非共价相互作用。TDDFT计算表明这些配合物作为生物传感器的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a83/9057264/e5af034a15a4/d0ra07961h-f1.jpg

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