A handheld biofluorometric system for acetone detection in exhaled breath condensates†

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Analyst Pub Date : 2024-12-19 DOI:10.1039/D4AN01281J
Geng Zhang, Kenta Ichikawa, Kenta Iitani, Yasuhiko Iwasaki and Kohji Mitsubayashi
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Abstract

As a marker of human metabolism, acetone is important for lipid metabolism monitoring and early detection of diabetes. In this study, we developed a handheld biosensor for acetone based on fluorescence detection by utilizing the enzymatic reaction of secondary alcohol dehydrogenase (S-ADH) with β-nicotinamide adenine dinucleotide (NADH, λex = 340 nm, λem = 490 nm). In the reaction, NADH is oxidized when acetone is reduced to 2-propanol by S-ADH, and the acetone concentration can be measured by detecting the amount of NADH consumed in this reaction. First, we constructed a compact and light-weight fluorometric NADH detection system (209 g for the sensing system and 342 g for the PC), which worked using battery power. Then, sensor characteristics were evaluated after optimization of the working conditions. The developed system was able to quantify acetone in a range of 510 nM–1 mM within 1 minute. The developed battery-operated acetone biosensor demonstrated its ability to measure the acetone concentration in the exhaled breath condensate of 10 healthy subjects at rest (23.4 ± 15.1 μM) and after 16 h of fasting (37.7 ± 14.7 μM) and it distinguished the results with significant differences (p = 0.011). With the advantages of handheld portability, and high levels of sensitivity and selectivity, this sensor is expected to be widely used in clinical diagnosis and wearable biochemical sensors in the future.

Abstract Image

手持式生物荧光测定系统用于呼气冷凝物中的丙酮
丙酮作为人体代谢标志物,对脂质代谢监测和糖尿病的早期发现具有重要意义。本研究利用二次醇脱氢酶(S-ADH)与β-烟酰胺腺嘌呤二核苷酸(NADH, λex = 340 nm, λem = 490 nm)的酶促反应,研制了一种基于荧光检测的手持式丙酮生物传感器。在反应中,当丙酮被S-ADH还原为2-丙醇时,NADH被氧化,通过检测该反应中NADH的消耗量来测定丙酮的浓度。首先,我们构建了紧凑轻便的NADH荧光检测系统(传感系统为209 g, PC为342 g),可与电池一起工作。然后,对工作条件优化后的传感器特性进行了评价。所开发的系统能够在1分钟内在510 nM至1 mM范围内定量丙酮。所研制的电池驱动丙酮生物传感器能够测量10名健康受试者在休息(23.4±15.1 μM)和禁食16 h(37.7±14.7 μM)时呼出冷凝水中的丙酮浓度,并具有显著性差异(p = 0.011)。该传感器具有便携、高灵敏度和选择性等优点,有望在临床诊断和穿戴式生化传感器中得到广泛应用。
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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: "Analyst" journal is the home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences.
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