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水中种子诱导的二维(2D)超分子聚合:对蛋白质吸附和酶抑制的影响

Seed-Induced Living Two-Dimensional (2D) Supramolecular Polymerization in Water: Implications on Protein Adsorption and Enzyme Inhibition.

作者信息

Khanra Payel, Rajdev Priya, Das Anindita

机构信息

School of Applied and Interdisciplinary Sciences, Indian Association for the Cultivation of Science (IACS), 2A & 2B Raja S. C. Mullick Road, Jadavpur, Kolkata, 700032, India.

出版信息

Angew Chem Int Ed Engl. 2024 Apr 8;63(15):e202400486. doi: 10.1002/anie.202400486. Epub 2024 Feb 14.

Abstract

In biological systems, programmable supramolecular frameworks characterized by coordinated directional non-covalent interactions are widespread. However, only a small number of reports involve pure water-based dynamic supramolecular assembly of artificial π-amphiphiles, primarily due to the formidable challenge of counteracting the strong hydrophobic dominance of the π-surface in water, leading to undesired kinetic traps. This study reveals the pathway complexity in hydrogen-bonding-mediated supramolecular polymerization of an amide-functionalized naphthalene monoimide (NMI) building block with a hydrophilic oligo-oxyethylene (OE) wedge. O-NMI-2 initially produced entropically driven, collapsed spherical particles in water (Agg-1); however, over a span of 72 h, these metastable Agg-1 gradually transformed into two-dimensional (2D) nanosheets (Agg-2), favoured by both entropy and enthalpy contributions. The intricate self-assembly pathways in O-NMI-2 enable us to explore seed-induced living supramolecular polymerization (LSP) in water for controlled synthesis of monolayered 2D assemblies. Furthermore, we demonstrated the nonspecific surface adsorption of a model enzyme, serine protease α-Chymotrypsin (α-ChT), and consequently the enzyme activity, which could be regulated by controlling the morphological transformation of O-NMI-2 from Agg-1 to Agg-2. We delve into the thermodynamic aspects of such shape-dependent protein-surface interactions and unravel the impact of seed-induced LSP on temporally controlling the catalytic activity of α-ChT.

摘要

在生物系统中,以配位定向非共价相互作用为特征的可编程超分子框架广泛存在。然而,仅有少数报道涉及人工π-两亲分子基于纯水的动态超分子组装,这主要是因为要克服π表面在水中强大的疏水主导作用面临巨大挑战,从而导致不期望的动力学陷阱。本研究揭示了一种酰胺功能化萘单酰亚胺(NMI)构建块与亲水性低聚氧乙烯(OE)楔通过氢键介导的超分子聚合过程中的途径复杂性。O-NMI-2最初在水中产生熵驱动的塌缩球形颗粒(Agg-1);然而,在72小时的时间跨度内,这些亚稳态的Agg-1逐渐转变为二维(2D)纳米片(Agg-2),熵和焓的贡献均有利于这一转变。O-NMI-2中复杂的自组装途径使我们能够探索水中种子诱导的活性超分子聚合(LSP),以可控合成单层二维组装体。此外,我们证明了模型酶丝氨酸蛋白酶α-胰凝乳蛋白酶(α-ChT)的非特异性表面吸附,进而证明了酶活性,这可以通过控制O-NMI-2从Agg-1到Agg-2的形态转变来调节。我们深入研究了这种形状依赖性蛋白质-表面相互作用的热力学方面,并揭示了种子诱导的LSP对α-ChT催化活性的时间控制的影响。

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