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用于非荧光转化的荧光连接整合(FLINT)

Fluorogenic Linkage Integration for Nonfluorescent Transformations (FLINT).

作者信息

Pokhrel Bishal, Farhana Fatiha, Zuo Li, Stratton Rebecca L, Pokhrel Pravin, Hossain Mohammad Akter, Ji Jiahao, Mao Hanbin, Shen Hao

机构信息

Department of Chemistry and Biochemistry, Kent State University, Kent, Ohio 44242, United States.

Advanced Materials and Liquid Crystals Institute, Kent State University, Kent, Ohio 44242, United States.

出版信息

Chem Biomed Imaging. 2025 Mar 3;3(4):253-259. doi: 10.1021/cbmi.4c00114. eCollection 2025 Apr 28.

Abstract

Since its creation, single-molecule optical imaging has revolutionized the study of catalytic processes, yet its application largely relies on probing fluorogenic reactions. To overcome this limitation, we propose the Fluorogenic Linkage Integration for Nonfluorescent Transformation (FLINT) approach, an imaging method to resolve nonfluorogenic reactions at the single-molecule level. Using glucose oxidation as a model reaction, we coupled this nonfluorogenic reaction with a fluorogenic Amplex Red (AR) → resorufin (RF) transformation to create a cascading reaction. This integration allowed us to monitor single-turnover events and extract key kinetic parameters for glucose oxidation despite their being invisible under the optical microscope. Our ensemble measurements combining cyclic voltammetry and fluorescence spectroscopy confirmed the cascade reaction mechanism and revealed first-order kinetics for both elementary reaction steps. At the single-molecule level, turnover time analysis provided detailed information on the reaction kinetics, distinguishing the relatively fast glucose oxidation from slower AR oxidation. We further confirmed the validity of the FLINT approach by comparing the catalytic performances of 5 nm gold nanoparticles (AuNPs) against that of 18 × 52 nm gold nanorods (AuNRs) and AuNP@DNA coronazymes. Furthermore, FLINT was used to evaluate the chiral selectivity of d- and l-glucose on coronazymes, suggesting the potential application of FLINT in enantioselective reactions. The FLINT approach is a significant advancement in single-molecule imaging as it enables the study of nonfluorogenic reactions with high spatiotemporal resolution.

摘要

自诞生以来,单分子光学成像彻底改变了催化过程的研究,但其应用在很大程度上依赖于探测荧光反应。为克服这一局限性,我们提出了用于非荧光转化的荧光连接整合(FLINT)方法,这是一种在单分子水平解析非荧光反应的成像方法。以葡萄糖氧化作为模型反应,我们将这种非荧光反应与荧光性的Amplex Red(AR)→试卤灵(RF)转化偶联,以创建级联反应。这种整合使我们能够监测单周转事件,并提取葡萄糖氧化的关键动力学参数,尽管它们在光学显微镜下不可见。我们结合循环伏安法和荧光光谱的总体测量证实了级联反应机制,并揭示了两个基本反应步骤的一级动力学。在单分子水平上,周转时间分析提供了有关反应动力学的详细信息,区分了相对较快的葡萄糖氧化和较慢的AR氧化。我们通过比较5纳米金纳米颗粒(AuNPs)与18×52纳米金纳米棒(AuNRs)以及AuNP@DNA冠酶的催化性能,进一步证实了FLINT方法的有效性。此外,FLINT被用于评估冠酶上d-葡萄糖和l-葡萄糖的手性选择性,这表明FLINT在对映选择性反应中的潜在应用。FLINT方法是单分子成像领域的一项重大进展,因为它能够以高时空分辨率研究非荧光反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f3ac/12042045/d28de70798a0/im4c00114_0001.jpg

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