开发一种用于生物样品中L-甲硫氨酸定量的超重复性和超灵敏无标记纳米测定法,用于高胱氨酸尿症诊断

IF 2.1 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY
Saeed Reza Hormozi Jangi, Elham Gholamhosseinzadeh
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引用次数: 4

摘要

设计了一种新的、快速的、选择性的、超灵敏的、超可重复的荧光光谱纳米分析法来定量L-甲硫氨酸。使用无溶剂超快方法制备了%QY高达95%的碳点,并将其用作无标记的纳米探针。对纳米探针的尺寸、形态、元素组成、光学性质和量子效率进行了表征。随后,使用纳米探针对生物样品中的L-蛋氨酸进行定量,显示出0.0–140.0 nm的超宽线性范围,LOD低至0.65 nm。此外,所开发的方法在周间测定中显示出超高的再现性,RSD = 2.7%和高重复性,RSD低至1.0%。机理研究证明,CDs和L-蛋氨酸之间同时形成两种复合物,从而使传感器具有高灵敏度、高选择性和高稳定性。此外,高达1.4的结合常数 × CD和L-甲硫氨酸之间的相互作用得到10+6 M−1,结合位点数为1.5,∆G为−35.1。最后,将所开发的方法用于分析健康人和同型胱氨酸尿症患者血清样品中的甲硫氨酸含量,以证明其在同型半胱氨酸尿症诊断中的可能应用,显示出高度准确和可重复的结果。因此,所提出的纳米测定法可用于同型胱氨酸尿症诊断的临床实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Developing an ultra-reproducible and ultrasensitive label-free nanoassay for L-methionine quantification in biological samples toward application in homocystinuria diagnosis

A novel, rapid, selective, ultrasensitive, and ultra-reproducible spectrofluorometric nanoassay was designed for the L-methionine quantification. A carbon dot with a %QY as high as 95% was prepared using a solvent-free ultrafast method and used as the label-free nanoprobe. The nanoprobe was characterized for size, morphology, elemental composition, optical properties, and quantum efficiency. Afterward, the nanoprobe was utilized for quantification of L-methionine in biological samples, revealing an ultra-wide linear range of 0.0–140.0 nm with a LOD as low as 0.65 nM. Besides, the developed method showed ultra-reproducibility with an inter-week assay, of RSD = 2.7% and high repeatability with a RSD as low as 1.0%. The mechanistic studies proved the simultaneous formation of two complexes between CDs and L-methionine, resulting in high sensitivity, selectivity, and stability of the sensor. Moreover, a binding constant as high as 1.4 × 10+6 M−1, number of binding sites of 1.5, and a ∆G of − 35.1 was obtained for interaction between CDs and L-methionine. Finally, the developed method was utilized for analysis of the methionine content of human serum samples for both healthy and patients with homocystinuria for proving its possible application in homocystinuria diagnosis, showing highly accurate and reproducible results. Consequently, the proposed nanoassay can be applied for clinical practical applications toward homocystinuria diagnosis.

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来源期刊
Chemical Papers
Chemical Papers 化学-化学综合
CiteScore
3.90
自引率
4.50%
发文量
590
审稿时长
2.5 months
期刊介绍: Chemical Papers is a peer-reviewed, international journal devoted to basic and applied chemical research. It has a broad scope covering the chemical sciences, but favors interdisciplinary research and studies that bring chemistry together with other disciplines.
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