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首页> 外文期刊>ACS nano >Slow-Motion Self-Assembly: Access to Intermediates with Heterochiral Peptides to Gain Control over Alignment Media Development
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Slow-Motion Self-Assembly: Access to Intermediates with Heterochiral Peptides to Gain Control over Alignment Media Development

机译:慢动作自组装:使用异单元肽的中间体获得对准培养基开发的控制

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摘要

Understanding the intermediates or transition states in organic reactions has made it possible to develop theories and to synthesize important compounds. In contrast to organic reaction intermediates and even protein folding intermediates, the intermediates of peptide/protein self assembly are not very well understood. Here we report that the self-assembly kinetics of linear heterochiral peptides are significantly slower than those of the corresponding homochiral peptides, which enables direct microscopic observation of assembly intermediates. By designing racemic or asymmetric heterochiral peptides, we were able to discover unusual mixed helical (MP-helix) and overtwisted intermediates. The convergence of equilibrium morphology between the homochiral and heterochiral peptides enables us to reasonably deduce the unobservable intermediates of rapidly assembling homochiral peptides. By utilizing the discovered information about the assembly intermediates, we were able to develop a functional NMR alignment medium that enables the measurement of residual dipolar couplings (RDCs) in a time-dependent manner. Although much less studied than their cyclic counterparts, the linear form of heterochiral peptides provides a means of obtaining a more in-depth understanding of the self-assembly pathway and of developing sophisticated bottom-up materials.
机译:理解有机反应中的中间体或过渡态使得可以制造理论和合成重要化合物。与有机反应中间体甚至蛋白质折叠中间体相比,肽/蛋白质自组装的中间体不是很好地理解。在这里,我们报告说,线性异质肽的自组装动力学显着慢于相应的冠本肽,其能够直接显微镜观察组装中间体。通过设计外消旋或不对称的异质肽,我们能够发现不寻常的混合螺旋(MP-HELIX)和过度的中间体。 Homochiral和异形肽之间的平衡形态的收敛使得我们能够合理地推导出快速组装的HomoChiral肽的不可察觉中间体。通过利用关于组装中间体的发现的信息,我们能够开发功能性NMR对准介质,其能够以时间依赖的方式测量残留的双极耦合(RDC)。虽然比循环对应物更少研究,但是异种肽的线性形式提供了一种获得对自组装途径和开发复杂的自下而上材料的更深入理解的方法。

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