Development of a microfluidic paper-based analytical device for the determination of salivary aldehydes

被引:39
|
作者
Ramdzan, Adlin N. [1 ]
Almeida, M. Ines G. S. [1 ]
McCullough, Michael J. [2 ]
Kolev, Spas D. [1 ]
机构
[1] Univ Melbourne, Sch Chem, Parkville, Vic 3010, Australia
[2] Univ Melbourne, Sch Dent Sci, Parkville, Vic 3010, Australia
关键词
Aldehydes; Saliva; Microfluidic paper-based analytical device (mu PAD); 3-methyl-2-benzothiazolinone hydrazone (MBTH); Wax printing; ENVIRONMENTAL TOBACCO-SMOKE; ALCOHOL-DEHYDROGENASE; GAS-CHROMATOGRAPHY; BIOLOGICAL SAMPLES; HEAVY DRINKERS; MOUTHWASH USE; ACETALDEHYDE; CANCER; RISK; FORMALDEHYDE;
D O I
10.1016/j.aca.2016.03.030
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A low cost, disposable and easy to use microfluidic paper-based analytical device (mu PAD) was developed for simple and non-invasive determination of total aldehydes in saliva with a potential to be used in epidemiological studies to assess oral cancer risk. The mu PAD is based on the colour reaction between aldehydes (e.g. acetaldehyde, formaldehyde), 3-methyl-2-benzothiazolinone hydrazone (MBTH) and iron(III) to form an intense blue coloured formazan dye. The newly developed mu PAD has a 3D design with two overlapping paper layers. The first layer comprises 15 circular detection zones (8 mm in diameter), each impregnated with 8 mL of MBTH, while the second layer contains 15 reagent zones (4 mm in diameter). Two mL of iron(III) chloride are added to each one of the second layer zones after the addition of sample to the detection zones in the first layer. All hydrophilic zones of the mu PAD are defined by wax printing using a commercial wax printer. Due to the 2-step nature of the analytical reaction, the two paper layers are separated by a cellulose acetate interleaving sheet to allow for the reaction between the aldehydes in the saliva sample with MBTH to proceed first with the formation of an azine, followed by a blue coloured reaction between the azine and the oxidized by iron(III) form of MBTH, produced after the removal of the interleaving sheet. After obtaining a high resolution image of the detection side zone of the device using a flatbed scanner, the intensity of the blue colour within each detection zone is measured with Image J software. Under optimal conditions, the mPAD is characterised by a working range of 20.4-114.0 mu M, limit of detection of 6.1 mu M, and repeatability, expressed as RSD, of less than 12.7% (n = 5). There is no statistically significant difference at the 95% confidence level between the results obtained by the mu PAD and the reference method (Student's t-test: 0.090 < 0.38). The optimized mu PAD is stable for more than 41 days when stored in a freezer (<=-20 degrees C). (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:47 / 54
页数:8
相关论文
共 50 条
  • [21] Salivary calcium determination with a specially developed microfluidic paper-based device for point-of-care analysis
    Aguiar, Juliana I. S.
    Rangel, Antonio O. S. S.
    Mesquita, Raquel B. R.
    TALANTA OPEN, 2023, 8
  • [22] Ultrasensitive chemiluminescence detection of DNA on a microfluidic paper-based analytical device
    Yanhu Wang
    Shoumei Wang
    Shenguang Ge
    Shaowei Wang
    Mei Yan
    Dejin Zang
    Jinghua Yu
    Monatshefte für Chemie - Chemical Monthly, 2014, 145 : 129 - 135
  • [23] Microfluidic paper-based analytical device for the speciation of inorganic nitrogen species
    Uhlikova, Natalie
    Almeida, M. Ines G. S.
    Mckelvie, Ian D.
    Kolev, Spas D.
    TALANTA, 2024, 271
  • [24] Ultrasensitive chemiluminescence detection of DNA on a microfluidic paper-based analytical device
    Wang, Yanhu
    Wang, Shoumei
    Ge, Shenguang
    Wang, Shaowei
    Yan, Mei
    Zang, Dejin
    Yu, Jinghua
    MONATSHEFTE FUR CHEMIE, 2014, 145 (01): : 129 - 135
  • [25] A microfluidic paper-based analytical device for rapid quantification of particulate chromium
    Rattanarat, Poomrat
    Dungchai, Wijitar
    Cate, David M.
    Siangproh, Weena
    Volckens, John
    Chailapakul, Orawon
    Henry, Charles S.
    ANALYTICA CHIMICA ACTA, 2013, 800 : 50 - 55
  • [26] An integrated platform for fibrinogen quantification on a microfluidic paper-based analytical device
    Guan, Yanfang
    Zhang, Kun
    Xu, Fengqian
    Guo, Ruiyang
    Fang, Anshu
    Sun, Baichuan
    Meng, Xiangxin
    Liu, Yansheng
    Bai, Mingyang
    LAB ON A CHIP, 2020, 20 (15) : 2724 - 2734
  • [27] Development of a paper-based microfluidic analytical device by a more facile hydrophobic substrate generation strategy
    Xue, Yuan-Yuan
    Zhang, Wen-Tao
    Zhang, Meng-Yue
    Liu, Li-Zhi
    Zhu, Wen-Xin
    Yan, Ling-Zhi
    Wang, Jing
    Wang, Yan-Ru
    Wang, Jian-Long
    Zhang, Dao-Hong
    ANALYTICAL BIOCHEMISTRY, 2017, 525 : 100 - 106
  • [28] A digital bar pH indicator based on a microfluidic paper-based analytical device
    Cho, Yeong Beom
    Nguyen, Duc Cuong
    Hua, Si Hiep
    Kim, Yong Shin
    MICROCHEMICAL JOURNAL, 2024, 201
  • [29] DEVELOPMENT OF PAPER-BASED MICROFLUIDIC ANALYTICAL DEVICE (μPAD) FOR DETECTION OF SARS-COV-2
    Das, Ruken
    Ates, Sezen Canim
    FRESENIUS ENVIRONMENTAL BULLETIN, 2022, 31 (09): : 9839 - 9847
  • [30] Multilayer microfluidic paper-based analytical device using pyrolyzed paper for electrochemical detection
    Evans, Elizabeth
    Giuliani, Jason
    da Costa, Eric Tavares
    Garcia, Carlos
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250