Xuanxiang Mao, Qianqian Chen, Shijiong Wei, Dehui Qiu, Xiaobo Zhang, Jianping Lei, Jean-Louis Mergny, Huangxian Ju and Jun Zhou*,
{"title":"用于灵敏生物传感的生物启发式双血红素键合 G 型四联体和组氨酸功能化金属有机框架","authors":"Xuanxiang Mao, Qianqian Chen, Shijiong Wei, Dehui Qiu, Xiaobo Zhang, Jianping Lei, Jean-Louis Mergny, Huangxian Ju and Jun Zhou*, ","doi":"10.1021/acs.analchem.4c0001010.1021/acs.analchem.4c00010","DOIUrl":null,"url":null,"abstract":"<p >Biomimetic enzymes have emerged as ideal alternatives to natural enzymes, and there is considerable interest in designing biomimetic enzymes with enhanced catalytic performance to address the low activity of the current biomimetic enzymes. In this study, we proposed a meaningful strategy for constructing an efficient peroxidase-mimicking catalyst, called HhG-MOF, by anchoring histidine (H) and dual hemin-G-quadruplex DNAzyme (double hemin covalently linked to 3′ and 5′ terminals of G-quadruplex DNA, short as hG) to a mesoporous metal–organic framework (MOF). This design aims to mimic the microenvironment of natural peroxidase. Remarkably, taking a terbium MOF as a typical model, the initial rate of the resulting catalyst was found to be 21.1 and 4.3 times higher than that of Hh-MOF and hG-MOF, respectively. The exceptional catalytic properties of HhG-MOF can be attributed to its strong affinity for substrates. Based on the inhibitory effect of thiocholine (TCh) produced by the reaction between acetylcholinesterase (AChE) and acetylthiocholine, a facile, cost-effective, and sensitive colorimetric method was designed based on HhG-MOF for the measurement of AChE, a marker of several neurological diseases, and its inhibitor. This allowed a linear response in the 0.002 to 1 U L<sup>–1</sup> range, with a detection limit of 0.001 U L<sup>–1</sup>. Furthermore, the prepared sensor demonstrated great selectivity and performed well in real blood samples, suggesting that it holds promise for applications in the clinical field.</p>","PeriodicalId":27,"journal":{"name":"Analytical Chemistry","volume":"96 33","pages":"13371–13378 13371–13378"},"PeriodicalIF":6.7000,"publicationDate":"2024-08-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Bioinspired Dual Hemin-Bonded G-Quadruplex and Histidine-Functionalized Metal–Organic Framework for Sensitive Biosensing\",\"authors\":\"Xuanxiang Mao, Qianqian Chen, Shijiong Wei, Dehui Qiu, Xiaobo Zhang, Jianping Lei, Jean-Louis Mergny, Huangxian Ju and Jun Zhou*, \",\"doi\":\"10.1021/acs.analchem.4c0001010.1021/acs.analchem.4c00010\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Biomimetic enzymes have emerged as ideal alternatives to natural enzymes, and there is considerable interest in designing biomimetic enzymes with enhanced catalytic performance to address the low activity of the current biomimetic enzymes. In this study, we proposed a meaningful strategy for constructing an efficient peroxidase-mimicking catalyst, called HhG-MOF, by anchoring histidine (H) and dual hemin-G-quadruplex DNAzyme (double hemin covalently linked to 3′ and 5′ terminals of G-quadruplex DNA, short as hG) to a mesoporous metal–organic framework (MOF). This design aims to mimic the microenvironment of natural peroxidase. Remarkably, taking a terbium MOF as a typical model, the initial rate of the resulting catalyst was found to be 21.1 and 4.3 times higher than that of Hh-MOF and hG-MOF, respectively. The exceptional catalytic properties of HhG-MOF can be attributed to its strong affinity for substrates. Based on the inhibitory effect of thiocholine (TCh) produced by the reaction between acetylcholinesterase (AChE) and acetylthiocholine, a facile, cost-effective, and sensitive colorimetric method was designed based on HhG-MOF for the measurement of AChE, a marker of several neurological diseases, and its inhibitor. This allowed a linear response in the 0.002 to 1 U L<sup>–1</sup> range, with a detection limit of 0.001 U L<sup>–1</sup>. 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Bioinspired Dual Hemin-Bonded G-Quadruplex and Histidine-Functionalized Metal–Organic Framework for Sensitive Biosensing
Biomimetic enzymes have emerged as ideal alternatives to natural enzymes, and there is considerable interest in designing biomimetic enzymes with enhanced catalytic performance to address the low activity of the current biomimetic enzymes. In this study, we proposed a meaningful strategy for constructing an efficient peroxidase-mimicking catalyst, called HhG-MOF, by anchoring histidine (H) and dual hemin-G-quadruplex DNAzyme (double hemin covalently linked to 3′ and 5′ terminals of G-quadruplex DNA, short as hG) to a mesoporous metal–organic framework (MOF). This design aims to mimic the microenvironment of natural peroxidase. Remarkably, taking a terbium MOF as a typical model, the initial rate of the resulting catalyst was found to be 21.1 and 4.3 times higher than that of Hh-MOF and hG-MOF, respectively. The exceptional catalytic properties of HhG-MOF can be attributed to its strong affinity for substrates. Based on the inhibitory effect of thiocholine (TCh) produced by the reaction between acetylcholinesterase (AChE) and acetylthiocholine, a facile, cost-effective, and sensitive colorimetric method was designed based on HhG-MOF for the measurement of AChE, a marker of several neurological diseases, and its inhibitor. This allowed a linear response in the 0.002 to 1 U L–1 range, with a detection limit of 0.001 U L–1. Furthermore, the prepared sensor demonstrated great selectivity and performed well in real blood samples, suggesting that it holds promise for applications in the clinical field.
期刊介绍:
Analytical Chemistry, a peer-reviewed research journal, focuses on disseminating new and original knowledge across all branches of analytical chemistry. Fundamental articles may explore general principles of chemical measurement science and need not directly address existing or potential analytical methodology. They can be entirely theoretical or report experimental results. Contributions may cover various phases of analytical operations, including sampling, bioanalysis, electrochemistry, mass spectrometry, microscale and nanoscale systems, environmental analysis, separations, spectroscopy, chemical reactions and selectivity, instrumentation, imaging, surface analysis, and data processing. Papers discussing known analytical methods should present a significant, original application of the method, a notable improvement, or results on an important analyte.