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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Unravelling the Structural Changes in alpha-Helical Peptides on Interaction with Convex, Concave, and Planar Surfaces of Boron-Nitride-Based Nanomaterials
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Unravelling the Structural Changes in alpha-Helical Peptides on Interaction with Convex, Concave, and Planar Surfaces of Boron-Nitride-Based Nanomaterials

机译:揭示基于氮化硼的纳米材料与凸,凹和平面表面相互作用时α-螺旋肽的结构变化

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The interaction between polyalanine (PA) peptide in a a helical conformation with boron-nitride-based nanomaterials such as boron nitride nanotube (BNNT) and boron nitride sheet (BNS) has been studied using classical molecular dynamics simulations and density functional theory (DFT)-based calculations. PA interacts with convex (exohedral mode) and concave (endohedral mode) surfaces of BNNT. The interaction of PA with the planar surface of BNS is also investigated. It is evident from the findings that the helical structure of the peptide undergoes conformational changes, which depend on the nature of curvature of the surface. It is found from the results that transition of a-helical conformation to turns takes place in the presence of these BNS, in contrast with the interaction of PA with graphene. The large structural changes in the PA upon interaction with BNS compared with graphene are due to the appreciable van der Waals interaction between PA and BNS. The DFT calculations have also predicted that the dispersion interaction is responsible for the stabilization of alanine on the surface of boron nitride sheet. Furthermore, to assess the effect of amino acid composition of peptide in the interaction pattern with BNS, we have also explored the adsorption of polyphenylalanine (PF), amphiphilic peptide (Nano-1), and a peptide derived from membrane protein (SNARE) on the surface of BNS. Results reveal that BNS induces the secondary structural changes in these peptides.
机译:使用经典的分子动力学模拟和密度泛函理论(DFT)研究了聚丙氨酸(PA)肽与呈氮化硼基纳米材料(如氮化硼纳米管(BNNT)和氮化硼片(BNS))呈螺旋构型的相互作用。基于计算。 PA与BNNT的凸(外面模)和凹(内面模)表面相互作用。还研究了PA与BNS平面的相互作用。从发现中显而易见的是,肽的螺旋结构经历构象变化,这取决于表面曲率的性质。从结果中发现,与PA与石墨烯的相互作用相反,在这些BNS的存在下发生α-螺旋构象向转折的转变。与石墨烯相比,与BNS相互作用时PA中的结构发生了很大变化,这是由于PA与BNS之间发生了明显的范德华相互作用。 DFT计算还预测,分散相互作用是氮化硼片材表面丙氨酸稳定的原因。此外,为了评估肽的氨基酸组成对与BNS相互作用的影响,我们还探索了聚苯丙氨酸(PF),两亲性肽(Nano-1)和衍生自膜蛋白(SNARE)的肽的吸附BNS的表面。结果表明,BNS诱导了这些肽的二级结构变化。

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