The Journal of Light Scattering, Volume. 32, Issue 2, 108(2020)

Antipsychoticdrug poisoning monitoring of clozapine in urine by using coffee ring effect based surface-enhanced Raman spectroscopy

ZHU Qingxia1、*, YU Xiaoyan1, WU Zebing1, LU Feng2, and YUAN Yongfang1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    References(43)

    [1] [1] A Stark, J Scott. A review of the use of clozapine levels to guide treatment and determine cause of death, The Australian and New Zealand journal of psychiatry, 46 (2012) 816-825.

    [2] [2] Bastiampillai T, Gupta A, Allison S. FDA changes clozapine monitoring guidelines: Implications for worldwide practice, Asian journal of psychiatry, 21 (2016) 19-20.

    [3] [3] Kramer I, Rauber-Luthy C, Kupferschmidt H, et al. Ceschi, Minimal dose for severe poisoning and influencing factors in acute human clozapine intoxication: a 13-year retrospective study, Clinical neuropharmacology, 33 (2010) 230-234.

    [4] [4] McKeating K S, Aube A, Masson J F. Biosensors and nanobiosensors for therapeutic drug and response monitoring, The Analyst, 141 (2016) 429-449.

    [5] [5] Jang S, Yan Z, Lazor J. Therapeutic drug monitoring: A patient management tool for precision medicine, Clinical Pharmacology & Therapeutics, 99 (2016) 148-150.

    [6] [6] Gonalves J L, Alves V L, Conceio C J F, et al. Development of MEPS-UHPLC/PDA methodology for the quantification of clozapine, risperidone and their major active metabolites in human urine, Microchemical Journal, 123 (2015) 90-98.

    [7] [7] Raggi M. Therapeutic drug monitoring: chemical-clinical correlations of atypical antipsychotic drugs, Current medicinal chemistry, 9 (2002) 1397-1409.

    [8] [8] Alnaim L. Therapeutic drug monitoring of cancer chemotherapy, Journal of Oncology Pharmacy Practice, 13 (2007) 207-221.

    [9] [9] de Jonge M E, Huitema A D, Schellens J H, et al.. Beijnen, Individualised cancer chemotherapy: strategies and performance of prospective studies on therapeutic drug monitoring with dose adaptation, Clinical pharmacokinetics, 44 (2005) 147-173.

    [10] [10] Ashbee H R, Barnes R A, Johnson E M,et al. Therapeutic drug monitoring (TDM) of antifungal agents: guidelines from the British Society for Medical Mycology, The Journal of antimicrobial chemotherapy, 69 (2014) 1162-1176.

    [11] [11] Hope W W, Billaud E M, Lestner J, et al. Therapeutic drug monitoring for triazoles, Current opinion in infectious diseases, 21 (2008) 580-586.

    [12] [12] Patteet L, Maudens K E, Vermeulen Z,et al. Retrospective evaluation of therapeutic drug monitoring of clozapine and norclozapine in Belgium using a multidrug UHPLC-MS/MS method, Clinical biochemistry, 47 (2014) 336-339.

    [13] [13] Flanagan R J, Spencer E P, Morgan P E,et al. Dunk, Suspected clozapine poisoning in the UK/Eire, 1992-2003, Forensic science international, 155 (2005) 91-99.

    [14] [14] Meli M, Rauber-Luthy C, Hoffmann-Walbeck P,et al. Atypical antipsychotic poisoning in young children: a multicentre analysis of poisons centres data, European journal of pediatrics, 173 (2014) 743-750.

    [15] [15] Hassanain W A, Izake E L, Sivanesan A, et al. Towards interference free HPLC-SERS for the trace analysis of drug metabolites in biological fluids, Journal of pharmaceutical and biomedical analysis, 136 (2017) 38-43.

    [16] [16] Boumba V A, Rallis G, Petrikis P,et al. Determination of clozapine, and five antidepressants in human plasma, serum and whole blood by gas chromatography-mass spectrometry: A simple tool for clinical and postmortem toxicological analysis, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences, 1038 (2016) 43-48.

    [17] [17] Li D, Lv D Y, Zhu Q X, et al. Chromatographic separation and detection of contaminants from whole milk powder using a chitosan-modified silver nanoparticles surface-enhanced Raman scattering device, Food chemistry, 224 (2017) 382-389.

    [18] [18] Li H, Zhu Q, Chwee T, et al. Detection of structurally similar adulterants in botanical dietary supplements by thin-layer chromatography and surface enhanced Raman spectroscopy combined with two-dimensional correlation spectroscopy, Analytica chimica acta, 883 (2015) 22-31.

    [19] [19] Zhu Q, Cao Y, Cao Y, et al. Rapid on-site TLC-SERS detection of four antidiabetes drugs used as adulterants in botanical dietary supplements, Analytical and bioanalytical chemistry, 406 (2014) 1877-1884.

    [20] [20] Li D, Qu L, Zhai W, et al. Facile on-site detection of substituted aromatic pollutants in water using thin layer chromatography combined with surface-enhanced Raman spectroscopy, Environmental science & technology, 45 (2011) 4046-4052.

    [21] [21] Berger A G, Restaino S M, White I M. Vertical-flow paper SERS system for therapeutic drug monitoring of flucytosine in serum, Analytica chimica acta, 949 (2017) 59-66.

    [22] [22] Yunker P J, Still T, Lohr M A, et al. Suppression of the coffee-ring effect by shape-dependent capillary interactions, Nature, 476 (2011) 308-311.

    [23] [23] Tang S, Li Y, Huang H, et al. Efficient Enrichment and Self-Assembly of Hybrid Nanoparticles into Removable and Magnetic SERS Substrates for Sensitive Detection of Environmental Pollutants, ACS applied materials & interfaces, 9 (2017) 7472-7480.

    [24] [24] A.H. Weiping Zhou, Shi Bai, Ying Ma,et al. Surface-enhanced Raman spectra of medicines with large-scale self-assembled silver nanoparticle films based on the modified coffee ring effect, Nanoscale research letters, 9 (2014) 87.

    [25] [25] Lee P C, Meisel D. Adsorption and surface-enhanced Raman of dyes on silver and gold sols, The Journal of Physical Chemistry, 86 (1982) 3391-3395.

    [26] [26] Wu X, Gao S, Wang J S, et al. The surface-enhanced Raman spectra of aflatoxins: spectral analysis, density functional theory calculation, detection and differentiation, The Analyst, 137 (2012) 4226-4234.

    [27] [27] J.S. Al-Otaibi, R.I. Al-Wabli, Vibrational spectroscopic investigation (FT-IR and FT-Raman) using ab initio (HF) and DFT (B3LYP) calculations of 3-ethoxymethyl-1,4-dihydroquinolin-4-one, Spectrochimica Acta Part A Molecular & Biomolecular Spectroscopy, 137 (2015) 7-15.

    [28] [28] Deegan R D, Bakajin O, Dupont T F, et al. Contact line deposits in an evaporating drop, Physical Review E Statistical Physics Plasmas Fluids & Related Interdisciplinary Topics, 62 (2000) 756.

    [29] [29] Deegan R D. Pattern formation in drying drops, Physical Review E Statistical Physics Plasmas Fluids & Related Interdisciplinary Topics, 61 (2000) 475.

    [30] [30] Bigioni T P, Lin X M, Nguyen T T, et al. Kinetically driven self assembly of highly ordered nanoparticle monolayers, Nature Materials, 5 (2006) 265-270.

    [31] [31] Pan X, Dong J, Li Y, et al. The strategy of two-scale interface enrichment for constructing ultrasensitive SERS substrates based on the coffee ring effect of AgNP@β-CD, RSC Adv., 6 (2016) 29586-29591.

    [32] [32] Wang W, Yin Y, Tan Z, et al. Coffee-ring effect-based simultaneous SERS substrate fabrication and analyte enrichment for trace analysis, Nanoscale, 6 (2014) 9588-9593.

    [33] [33] Lv D, Cao Y, Lou Z, et al. Rapid on-site detection of ephedrine and its analogues used as adulterants in slimming dietary supplements by TLC-SERS, Analytical and bioanalytical chemistry, 407 (2015) 1313-1325.

    [34] [34] Zhu Q, Chen M, Han L, et al. High efficiency screening of nine lipid-lowering adulterants in herbal dietary supplements using thin layer chromatography coupled with surface enhanced Raman spectroscopy, Anal. Methods, 9 (2017) 1595-1602.

    [35] [35] Li X, Chen H, Zhu Q, Liu Y,et al. Analysis of low active-pharmaceutical-ingredient signal drugs based on thin layer chromatography and surface-enhanced Raman spectroscopy, Journal of pharmaceutical and biomedical analysis, 131 (2016) 410-419.

    [36] [36] Fang F, Qi Y, Lu F, et al. Highly sensitive on-site detection of drugs adulterated in botanical dietary supplements using thin layer chromatography combined with dynamic surface enhanced Raman spectroscopy, Talanta, 146 (2016) 351-357.

    [37] [37] Jia H, Zeng J, An J, Xu W, et al. Surface-enhanced Raman activity and stability study of silver films prepared by reduction of Ag+ ions in N,N-dimethylformamide, Journal of Colloid & Interface Science, 292 (2006) 455-461.

    [38] [38] Sackmann M, Materny A. Surface enhanced Raman scattering (SERS)—a quantitative analytical tool?, Journal of Raman Spectroscopy, 37 (2006) 305-310.

    [39] [39] Peksa V, Jahn M, tolcov L, et al. Quantitative SERS analysis of azorubine (E 122) in sweet drinks, Analytical chemistry, 87 (2015) 2840-2844.

    [40] [40] Zhang L, Li Q, Tao W, et al. Quantitative analysis of thymine with surface-enhanced Raman spectroscopy and partial least squares (PLS) regression, Analytical and bioanalytical chemistry, 398 (2010) 1827-1832.

    [41] [41] Aarnoutse P J, Westerhuis J A. Quantitative Raman reaction monitoring using the solvent as internal standard, Analytical chemistry, 77 (2005) 1228-1236.

    [42] [42] Salkic S, Eckler L H, Nee M J. Noninvasive monitoring of photocatalytic degradation of X‐ray contrast media using Raman spectrometry, Journal of Raman Spectroscopy, 44 (2013) 1746-1752.

    [43] [43] Giovannozzi A M, Rolle F, Sega M,et al. Rapid and sensitive detection of melamine in milk with gold nanoparticles by Surface Enhanced Raman Scattering, Food chemistry, 159 (2014) 250-256.

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    ZHU Qingxia, YU Xiaoyan, WU Zebing, LU Feng, YUAN Yongfang. Antipsychoticdrug poisoning monitoring of clozapine in urine by using coffee ring effect based surface-enhanced Raman spectroscopy[J]. The Journal of Light Scattering, 2020, 32(2): 108

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    Paper Information

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    Received: Sep. 1, 2019

    Accepted: --

    Published Online: Feb. 7, 2021

    The Author Email: Qingxia ZHU (qxzhu2015@163.com)

    DOI:10.13883/j.issn1004-5929.202002003

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