首页> 外文OA文献 >Peptide-Directed Supramolecular Self-Assembly of N-Substituted Perylene Imides
【2h】

Peptide-Directed Supramolecular Self-Assembly of N-Substituted Perylene Imides

机译:N取代的Im酰亚胺的肽指导超分子自组装。

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。
获取外文期刊封面目录资料

摘要

Synthetic peptides offer enormous potential to encode the assembly of molecular electronic components, provided that the complex range of interactions is distilled into simple design rules. Herein is reported a spectroscopic investigation of aggregation in an extensive series of peptide-perylene imide conjugates designed to interrogate the effect of structural variations. Throughout the course of this study, the self-assembly and photophysical properties of the compounds are explored to better understand the behavior and application of these materials. Three principal avenues of inquiry are applied: (1) the evaluation of structure-property relationships from a thermodynamic perspective, (2) the examination of peptide chiral effects upon properties and self-assembly, and (3) an application of the understanding gained from rationally designed systems to effectively utilize naturally optimized peptides in bio-organic electronics.By fitting different contributions to temperature-dependent optical absorption spectra, this study quantifies both the thermodynamics and the nature of aggregation for peptides with incrementally varying hydrophobicity, charge density, length, amphiphilic substitution with a hexyl chain, and stereocenter inversion. Coarse effects like hydrophobicity and hexyl substitution are seen to have the greatest impact on binding thermodynamics, which are evaluated separately as enthalpic and entropic contributions. Moreover, significant peptide packing effects are resolved via stereocenter inversion studies, particularly when examining the nature of aggregates formed and the coupling between π-electronic orbitals.Peptide chirality overall is seen to influence the self-assembly of the perylene imide cores into chiral nanofibers, and peptide stereogenic positions, stereochemical configurations, amphiphilic substitution, and perylene core modification are evaluated with respect to chiral assembly. Stereocenters in peptide residue positions proximal to the perylene core (1-5 units) are seen to impart helical chirality to the perylene core, while stereocenters in more distal residue positions do not exert a chiral influence. Diastereomers involving stereocenter inversions within the proximal residues consequently manifest spectroscopically as pseudo-enantiomers. Increased side-chain steric demand in the proximal positions gives a similar chiral influence but exhibits diminished Cotton Effect intensity with additional longer wavelength features attributed to interchain excimers. Amphiphilic substitution of a peptide with an alkyl chain disrupts chiral self-assembly, while an amphiphilic structure achieved through the modification of the perylene imide core with a bisester moiety prompts strongly exciton-coupled, chiral, solvent-responsive self-assembly into long nanofilaments.Informed by rationally designed sequences, and capitalizing upon the optimization seen in many natural systems, specific peptide sequences designed by inspection of protein-protein interfaces have been identified and used as tectons in hybrid functional materials. An 8-mer peptide derived from an interface of the peroxiredoxin family of self-assembling proteins is exploited to encode the assembly of perylene imide-based organic semiconductor building blocks. By augmenting the peptide with additional functionality to trigger aggregation and manipulate the directionality of peptide-semiconductor coupling, a series of hybrid materials based on the natural peptide interface is presented. Using spectroscopic probes, the mode of self-assembly and the electronic coupling between neighboring perylene units is shown to be strongly affected by the number of peptides attached, and by their backbone directionality. The disubstituted material with peptides extending in the N-C direction away from the perylene core exhibits strong coupling and long-range order, which are both attractive properties for electronic device applications. A bio-organic field-effect transistor is fabricated using this material, highlighting the possibilities of exploiting natural peptide tectons to encode self-assembly in other functional materials and devices.These results advance the development of a quantitative framework for establishing structure-function relationships that will underpin the design of self-assembling peptide electronic materials. The results further advance a model for adapting natural peptide sequences resident in β-continuous interfaces as tectons for bio-organic electronics.
机译:如果将相互作用的复杂范围提炼成简单的设计规则,合成肽具有巨大的潜力来编码分子电子组件的组装。本文报道了光谱学研究中广泛的一系列肽-per酰亚胺共轭物的聚集研究,这些肽-per酰亚胺共轭物旨在询问结构变化的影响。在整个研究过程中,对化合物的自组装和光物理性质进行了研究,以更好地了解这些材料的行为和应用。应用了三种主要的研究途径:(1)从热力学角度评估结构-性质关系;(2)检查肽手性对性质和自组装的影响;(3)从中获得的理解的应用合理设计的系统可有效利用生物有机电子学中天然优化的肽。通过对依赖于温度的光吸收光谱做出不同的贡献,本研究量化了疏水性,电荷密度,长度,己基链的两亲取代和立体中心反转。诸如疏水性和己基取代之类的粗效应被认为对结合热力学影响最大,将其分别作为焓和熵的贡献进行评估。此外,通过立体中心反转研究可解决显着的肽堆积效应,尤其是在检查形成的聚集体的性质和π电子轨道之间的耦合时。整体上看,肽的手性会影响the酰亚胺核自组装成手性纳米纤维,相对于手性组装,评估肽的立体定位,立体化学构型,两亲取代和substitution核心修饰。可以看到proximal分子核附近(1-5个单元)的肽残基位置的立体中心赋予the分子核螺旋手性,而远端残基位置更多的立体中心则没有手性影响。因此,在近端残基内涉及立体中心反转的非对映异构体在光谱上表现为假对映异构体。在近端位置侧链空间需求的增加会产生类似的手性影响,但表现出的棉花效应强度降低,而链间受激准分子的波长更长。用烷基链对肽进行两亲取代会破坏手性自组装,而通过用二酯部分修饰per酰亚胺核心而实现的两亲结构会促使激子偶联,手性,溶剂响应性自组装成为长纳米丝。通过合理设计的序列,并利用在许多自然系统中看到的最优化,可以确定通过蛋白质-蛋白质界面检查而设计的特定肽序列,并将其用作混合功能材料中的构造。有人开发了一种自组装蛋白的peroxiredoxin家族界面的8聚体肽,用于编码基于im酰亚胺的有机半导体构件的组装。通过用附加功能增强肽以触发聚集并控制肽-半导体偶联的方向性,提出了一系列基于天然肽界面的杂化材料。使用光谱探针显示,自组装的模式和相邻per单元之间的电子偶联受到附着的肽数及其骨架方向性的强烈影响。具有在N-C方向上延伸远离per核的肽的双取代材料表现出强耦合性和长程有序性,这对于电子设备应用都是有吸引力的特性。使用这种材料制造的生物有机场效应晶体管,突显了利用天然肽构造在其他功能性材料和设备中编码自组装的可能性,这些结果推动了建立结构与功能关系的定量框架的发展将支持自组装肽电子材料的设计。结果进一步提出了一种模型,该模型用于适应驻留在β-连续界面中的天然肽序列作为生物有机电子学的构造。

著录项

  • 作者

    Eakins Galen;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_NZ
  • 中图分类

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号