State Key Laboratory of Medical Proteomics, National Chromatographic R. & A. Center, CAS Key Laboratory of Separation Science for Analytical Chemistry, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, P. R. China.
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, P. R. China.
Adv Sci (Weinh). 2024 Oct;11(40):e2405613. doi: 10.1002/advs.202405613. Epub 2024 Aug 28.
Saccharides are involved in nearly all life processes. However, due to the complexity and diversity of saccharide structures, their selective recognition is one of the most challenging tasks. Distinct from conventional receptor designs that rely on delicate and complicated molecular structures, here a novel and precise ternary co-assembled strategy is reported for achieving saccharide recognition, which originates from a halogen ions-driven aggregation-induced emission module called p-Toluidine, N, N'-1-propen-1-yl-3-ylidene hydrochloride (PN-Tol). It exhibits ultra-strong self-assembly capability and specifically binds to 4-mercaptophenylboronic acid (MPBA), forming highly ordered co-assemblies. Subsequent binding of various saccharides results in heterogeneous ternary assembly behaviors, generating cluster-like, spherical, and rod-like microstructures with well-defined crystalline patterns, accompanied by significant enhancement of fluorescence. Owing to the excellent expandability of the PN module, an array sensor is constructed that enables easy classification of diverse saccharides, including epimer and optical isomers. This strategy demonstrates wide applicability and paves a new avenue for saccharide recognition, analysis, and sequencing.
糖类几乎参与了所有生命过程。然而,由于糖类结构的复杂性和多样性,对其进行选择性识别是最具挑战性的任务之一。与传统依赖于精细复杂分子结构的受体设计不同,本文报道了一种新颖而精确的三元共组装策略,用于实现糖类识别,该策略源于一种卤离子驱动的聚集诱导发射模块,称为对甲苯胺、N,N'-1-丙烯基-3-亚基盐酸盐(PN-Tol)。它表现出超强的自组装能力,并特异性地与 4-巯基苯硼酸(MPBA)结合,形成高度有序的共组装体。随后与各种糖类结合导致了不均匀的三元组装行为,生成了具有明确定晶图案的类簇状、球状和棒状微结构,同时荧光显著增强。由于 PN 模块的出色可扩展性,构建了一个阵列传感器,能够轻松分类各种糖类,包括差向异构体和对映异构体。该策略具有广泛的适用性,为糖类识别、分析和测序开辟了新途径。