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手性决定化学驱动自组装的成败。

Chirality Makes or Breaks Chemically Driven Self-Assembly.

作者信息

Saile Lenard, Dai Kun, Pol Mahesh D, Pramod Thejus, Thomann Ralf, Pappas Charalampos G

机构信息

Cluster of Excellence livMatS @FIT - Freiburg Center for Interactive Materials and Bioinspired Technologies, University of Freiburg, Georges-Köhler-Allee 105, 79110, Freiburg, Germany.

Institute of Organic Chemistry, University of Freiburg, Albertstrasse 21, 79104, Freiburg, Germany.

出版信息

Angew Chem Int Ed Engl. 2025 Sep 15;64(38):e202508481. doi: 10.1002/anie.202508481. Epub 2025 Jul 31.

Abstract

Nature has consistently selected homochiral building blocks from millions of possible diastereomers across diverse biomolecular structures to drive molecular recognition, catalysis and self-assembly. Despite its central role in biology, chirality's influence on chemically driven reaction networks remains unexplored. Here, we demonstrate that chiral aminoacyl phosphate esters, synthetic analogs of biological acylating intermediates, drive self-assembly and reaction pathways, that are modulated purely by their configuration, without the need for changes in functional groups. Using enantiopure aminoacyl phosphate esters, we show that these left- and right-handed acylating agents generate transient epimeric (thio)-esters from homochiral peptide substrates, leading to supramolecular architectures with distinct lifetimes and self-assembly dynamics. Moreover, chirality regulates downstream reactivity in cascade reactions, where stereochemical control over an intermediate propagates into subsequent transformations. Finally, chiral acylating agents differentiate between two reaction cycles, selectively modulating one pathway while keeping another invariant - a level of control that remains difficult to achieve with conventional chemical strategies. Stereochemical programming enables control over reactivity and self-assembly, offering new opportunities to encode chirality in reaction networks and modulate their function through a single molecular parameter.

摘要

自然界始终从数百万种可能的非对映异构体中选择同手性的构建单元,用于各种生物分子结构,以驱动分子识别、催化和自组装。尽管手性在生物学中起着核心作用,但其对化学驱动反应网络的影响仍未得到探索。在这里,我们证明了手性氨基酰基磷酸酯,即生物酰化中间体的合成类似物,能够驱动自组装和反应途径,这些途径纯粹由其构型调节,而无需官能团的变化。使用对映体纯的氨基酰基磷酸酯,我们表明这些左旋和右旋酰化剂从同手性肽底物生成瞬态差向异构(硫代)酯,导致具有不同寿命和自组装动力学的超分子结构。此外,手性调节级联反应中的下游反应性,其中对中间体的立体化学控制会传播到后续转化中。最后,手性酰化剂区分两个反应循环,选择性地调节一个途径,同时保持另一个不变——这是传统化学策略难以实现的控制水平。立体化学编程能够控制反应性和自组装,为在反应网络中编码手性并通过单一分子参数调节其功能提供了新机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a6c/12435440/0f05702b555a/ANIE-64-e202508481-g002.jpg

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