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基于客体分子封装的异双核镧系配合物纳米粒子比率型发光传感策略用于人血清中葡萄糖的检测。

Integrated ratiometric luminescence sensing strategy based on encapsulation of guests in heterobinuclear lanthanide coordination polymer nanoparticles for glucose detection in human serum.

机构信息

School of Chemistry and Chemical Engineering, Nanchang University, Nanchang, 330031, China.

School of Chemistry and Chemical Engineering, Nanchang University, Nanchang, 330031, China.

出版信息

Talanta. 2023 Dec 1;265:124854. doi: 10.1016/j.talanta.2023.124854. Epub 2023 Jun 25.

DOI:10.1016/j.talanta.2023.124854
PMID:37413722
Abstract

Lanthanide coordination polymers (LnCPs) can be used as a host platform to encapsulate functional guest molecules for the construction of integrated sensing platforms. In this work, two guest molecules, rhodamine B (RhB) and glucose oxidase (GOx), were successfully encapsulated in a heterobinuclear lanthanide coordination polymer synthesized by self-assembly of Ce, Tb and adenosine monophosphate (AMP) to form RhB&GOx@AMP-Tb/Ce. Both guest molecules show good storage stability and minimal leakage. The higher catalytic activity and stability of RhB&GOx@AMP-Tb/Ce is obtained due to the confinement effect compared to free GOx. RhB&GOx@AMP-Tb/Ce exhibits superior luminescence based on the internal tandem energy transfer process of the nanoparticles (Ce→Tb→RhB). Glucose can be oxidized in the presence of GOx to form gluconic acid and HO. Subsequently, Ce in the AMP-Tb/Ce host structure can be oxidized by HO to Ce, thereby interrupt the internal energy transfer process and cause ratiometric luminescence response. Benefiting from the synergistic effect, the smart integrated luminescent glucose probe exhibits a wide linear range (0.4-80 μM) and a low detection limit (74.3 nM) with high sensitivity, selectivity and simplicity, enabling the quantitative detection of glucose in human serum. This work describes a good strategy to construct an integrated luminescence sensor based on lanthanide coordination polymers.

摘要

镧系配位聚合物(LnCPs)可用作封装功能性客体分子的主体平台,用于构建集成传感平台。在这项工作中,通过 Ce、Tb 和单磷酸腺苷(AMP)的自组装合成了一种异双核镧系配位聚合物,成功封装了两种客体分子,罗丹明 B(RhB)和葡萄糖氧化酶(GOx),形成了 RhB&GOx@AMP-Tb/Ce。两种客体分子均表现出良好的储存稳定性和最小的泄漏。与游离 GOx 相比,由于受限效应,RhB&GOx@AMP-Tb/Ce 具有更高的催化活性和稳定性。RhB&GOx@AMP-Tb/Ce 基于纳米粒子(Ce→Tb→RhB)的内部串联能量转移过程表现出优异的发光性能。在 GOx 的存在下,葡萄糖可以被氧化形成葡萄糖酸和 HO。随后,HO 可将 AMP-Tb/Ce 主体结构中的 Ce 氧化为 Ce,从而中断内部能量转移过程并引起比率型发光响应。得益于协同效应,智能集成发光葡萄糖探针具有较宽的线性范围(0.4-80 μM)和较低的检测限(74.3 nM),具有较高的灵敏度、选择性和简单性,可实现对人血清中葡萄糖的定量检测。这项工作描述了一种基于镧系配位聚合物构建集成发光传感器的良好策略。

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