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通过引入功能性M(ImPhen)金属配体激活金属有机笼:从结构设计到应用

Activating Metal-Organic Cages by Incorporating Functional M(ImPhen) Metalloligands: From Structural Design to Applications.

作者信息

Lu Yu-Lin, Wang Ya-Ping, Wu Kai, Pan Mei, Su Cheng-Yong

机构信息

MOE Key Laboratory of Bioinorganic and Synthetic Chemistry, GBRCE for Functional Molecular Engineering, LIFM, IGCME, School of Chemistry, Sun Yat-Sen University, Guangzhou 510275, China.

出版信息

Acc Chem Res. 2024 Nov 19;57(22):3277-3291. doi: 10.1021/acs.accounts.4c00467. Epub 2024 Oct 9.

DOI:10.1021/acs.accounts.4c00467
PMID:39383307
Abstract

ConspectusThe emulation of ingenious biofunctions has been a research focus for several decades. Metal-organic cages (MOCs), as a type of discrete supramolecular assembly with well-defined shapes and cavities, have aroused great interest in chemists to imitate natural protein cages or enzymes. However, to genuinely achieve tailored functionalities or reactivities of enzymes, the design of cage structures combining both the confined microenvironment and the active site is a prerequisite. Therefore, the integration of functionalized motifs into MOCs is expected to provide a feasible approach to construct biofunctional confined nanospaces, which not only allows the modulation of cage properties for applications such as molecular recognition, transport, and catalysis but also creates unique microenvironments that promote enzymatic effects for special reactivities and selectivities, thereby providing a versatile platform to achieve exceptional biomimetic functions and beyond.In this Account, we specifically focus on our research toward engineering active confined-nanospaces in MOCs via incorporation of M(ImPhen) metalloligands, a typical tris-chelate coordination moiety comprising imidazophenanthroline ligands and variable metal ions, as the principle functional units for stepwise assembly of active-MOCs. Starting from their structure design and merits, we describe the versatility of M(ImPhen) centers for multifunctionalization of the confined cage-nanospaces. By integrating different metal ions like Ru, Os, Fe, Co, Ni, Zn, the metal ion inherent properties, e.g., redox activity of Fe/Co-centers, chirality, and photoactivity of Ru-centers, and dynamics of Co/Zn-centers, could be integrated and tailored on the cages as isostructural nanosized containers or reactors. Changing the Pd or Pt cage vertices to organic clips could remarkably enhance acid-base stability and endow cages with flexibility and allostery. Utilization of ImPhen organic ligands containing imidazole groups introduces proton transfer capability, which can couple with the high-positive charges on the cage to create amphoteric microenvironments in the porous open-cage solution. Moreover, the nonplanar stereoconfiguration of M(ImPhen) confers multiple peripheral pockets on the cage, which render multisite, high-order, and dynamics guest binding for the benefit of applications such as drug delivery, molecular separation, and catalytic turnover.The construction of active-MOCs from tailorable M(ImPhen) metalloligands provides us with a new perspective on their structural design and functionalities. Merging the cage confinement with distinct physicochemical properties on a supramolecular level makes it practical to realize synergistic and cooperative effects for functionality enhancement beyond molecular components or the reactivity different from the bulky solution, which could largely expand the potential of MOCs as a multirole platform to wide application scenarios such as artificial photosynthesis, unconventional catalysis, and theranostic nanomedicine.

摘要

综述

几十年来,对巧妙生物功能的模仿一直是研究热点。金属有机笼(MOCs)作为一类具有明确形状和空腔的离散超分子组装体,引发了化学家们对模仿天然蛋白质笼或酶的浓厚兴趣。然而,要真正实现酶的定制功能或反应活性,将受限微环境和活性位点结合起来设计笼状结构是一个先决条件。因此,将功能化基序整合到MOCs中有望提供一种可行的方法来构建具有生物功能的受限纳米空间,这不仅可以调节笼的性质以用于分子识别、运输和催化等应用,还能创造独特的微环境以促进特殊反应活性和选择性的酶促效应,从而提供一个通用平台来实现卓越的仿生功能及其他功能。

在本综述中,我们特别关注通过引入M(ImPhen)金属配体来构建MOCs中具有活性的受限纳米空间的研究,M(ImPhen)是一种典型的三螯合配位部分,由咪唑并菲咯啉配体和可变金属离子组成,是逐步组装活性MOCs的主要功能单元。从其结构设计和优点出发,我们描述了M(ImPhen)中心对受限笼状纳米空间进行多功能化的通用性。通过整合不同的金属离子,如Ru、Os、Fe、Co、Ni、Zn,可以将金属离子的固有性质,如Fe/Co中心的氧化还原活性、Ru中心的手性和光活性以及Co/Zn中心的动力学性质,作为同构的纳米尺寸容器或反应器整合并定制到笼上。将Pd或Pt笼顶点换成有机夹子可以显著提高酸碱稳定性,并赋予笼子灵活性和变构性。利用含有咪唑基团的ImPhen有机配体引入质子转移能力,这可以与笼上的高正电荷结合,在多孔开放笼溶液中创造两性微环境。此外,M(ImPhen)的非平面立体构型在笼上赋予多个周边口袋,这有利于药物递送、分子分离和催化周转等应用中的多位点、高阶和动态客体结合。

由可定制的M(ImPhen)金属配体构建活性MOCs为其结构设计和功能提供了新的视角。在超分子水平上将笼的限制与独特的物理化学性质相结合,使得在分子成分之外实现协同增效以增强功能或实现与大量溶液不同的反应活性成为可能,这可以极大地扩展MOCs作为多功能平台在人工光合作用、非常规催化和治疗诊断纳米医学等广泛应用场景中的潜力。

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