Chinese Journal of Clinical Pharmacology and Therapeutics ›› 2026, Vol. 31 ›› Issue (4): 517-526.doi: 10.12092/j.issn.1009-2501.2026.04.011
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Wenli DONG1,2,3,4(
), Ruohao ZHANG2,3,4, Beining GUO2,3,4, Jing ZHANG2,3,4, Yuhong XU1, Baowei PENG1, Xiaofen LIU2,3,4,*(
)
Received:2025-06-25
Revised:2025-09-15
Online:2026-04-26
Published:2026-04-30
Contact:
Xiaofen LIU
E-mail:1811675172@qq.com;liuxiaofen227@163.com
CLC Number:
Wenli DONG, Ruohao ZHANG, Beining GUO, Jing ZHANG, Yuhong XU, Baowei PENG, Xiaofen LIU. Progress and application of phenylhydrazine derivatization combined with LC-MS/MS for quantitative analysis of carbonyl metabolites in biological samples[J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(4): 517-526.
| Phenylhydrazines | Hydrazides | Hydroxylamines | |
| Reaction mechanism | Condenses with carbonyls to form phenylhydrazones | Acid-catalyzed Schiff base formation | Oxime/nitrone formation via nucleophilic addition |
| Derivatization reagent | PH 2-NPH 3-NPH DNPH | Girard's T(GT) Girard's P(GP) tosylhydrazine dansylhydrazine | O-substituted hydroxylamine (-ONH2), N-substituted hydroxylamine (-NHOH) |
| Reactivity | The reaction conditions are mild, the reaction rate is fast and the yield is high | Under acidic conditions, the reaction activity is higher | Neutral or weakly acidic conditions, longer reaction time |
| Sensitivity | High sensitivity and high ionization efficiency can significantly improve the signal-to-noise ratio | High sensitivity, high ionization efficiency | Ionization efficiency is low and sensitivity is low |
| Stability | The formed C = N double bond was stable and stored at room temperature or 4℃ in dark for several days to several weeks | The generated hydrazone is very stable, but it may hydrolyze in strong acid or alkali; Dansylhydrazine reagent is more sensitive to light | Relatively poor, hydrolysis may occur under acidic or alkaline conditions, not suitable for long-term storage |
| Selectivity | Carbonyl, aldehyde, carboxyl and phosphate groups can be derived at the same time, which simplifies the simultaneous analysis process of multi-class metabolites | It mainly forms covalent bonds with carbonyl-containing aldehydes or ketones | It is mainly labeled with carbonyl-containing steroid hormones, sugars, testosterone, furfural and fatty aldehydes |
| Application | LC-MS/MS HPLC-UV | HPLC-FLR LC-MS/MS | GC GC-MS |
| References | [ | ||
Table 1 Comparative analysis of carbonyl derivatization reagents
| Phenylhydrazines | Hydrazides | Hydroxylamines | |
| Reaction mechanism | Condenses with carbonyls to form phenylhydrazones | Acid-catalyzed Schiff base formation | Oxime/nitrone formation via nucleophilic addition |
| Derivatization reagent | PH 2-NPH 3-NPH DNPH | Girard's T(GT) Girard's P(GP) tosylhydrazine dansylhydrazine | O-substituted hydroxylamine (-ONH2), N-substituted hydroxylamine (-NHOH) |
| Reactivity | The reaction conditions are mild, the reaction rate is fast and the yield is high | Under acidic conditions, the reaction activity is higher | Neutral or weakly acidic conditions, longer reaction time |
| Sensitivity | High sensitivity and high ionization efficiency can significantly improve the signal-to-noise ratio | High sensitivity, high ionization efficiency | Ionization efficiency is low and sensitivity is low |
| Stability | The formed C = N double bond was stable and stored at room temperature or 4℃ in dark for several days to several weeks | The generated hydrazone is very stable, but it may hydrolyze in strong acid or alkali; Dansylhydrazine reagent is more sensitive to light | Relatively poor, hydrolysis may occur under acidic or alkaline conditions, not suitable for long-term storage |
| Selectivity | Carbonyl, aldehyde, carboxyl and phosphate groups can be derived at the same time, which simplifies the simultaneous analysis process of multi-class metabolites | It mainly forms covalent bonds with carbonyl-containing aldehydes or ketones | It is mainly labeled with carbonyl-containing steroid hormones, sugars, testosterone, furfural and fatty aldehydes |
| Application | LC-MS/MS HPLC-UV | HPLC-FLR LC-MS/MS | GC GC-MS |
| References | [ | ||
| No. | Compounds | Derivatization Reagent | Specimen | References |
| 1 | Aliphatic aldehydes: formaldehyde, acetaldehyde, propanal, pentanal, butanal, hexanal, heptanal, octanal, nonanal, decanal, acrolein, crotonaldehyde | DNPH | Immunosuppressed rat serum and oxidative damage cells, human urine samples | [ |
| 2 | Acetaldehyde | DNPH | Hepatocellular carcinoma cell culture, rat blood and plasma, bovine blood | [ |
| 3 | Malonaldehyde | 3-NPH | Human plasma | [ |
| 4 | Formaldehyde, methylglyoxal, malondialdehyde, acetaldehyde | DNPH | Human liver tissue, rat urine | [ |
| 5 | Short-chain fatty acids: acetic acid, propionic acid, L-lactic acid, crotonic acid, isobutyric acid, butyric acid, maleic acid, 2-methylbutyric acid, 3-methylcrotonic acid, isovaleric acid, valeric acid, hexanoic acid, isohexanoic acid | 3-NPH, 2-NPH | Mouse bronchoalveolar lavage fluid,feces, serum, and lung tissue samples | [ |
| 6 | Acetic acid, propionic acid, isobutyric acid, butyric acid, isovaleric acid (6 SCFAs), and 18 fatty acids (C4-C26) | 3-NPH, 2-NPH | Human plasma, serum, urine, feces | [ |
| 7 | Glycolic acid, glyoxylic acid | PH | Human urine | [ |
| 8 | Central carbon metabolic carboxylic acids | 3-NPH | Mouse heart tissue | [ |
| 9 | Protein carbonyls: Sulfur-containing, aromatic, and aliphatic amino acids | DNPH | Plasma, cells, organ homogenates, isolated proteins and organelles | [ |
| 10 | Carbonyl, carboxyl, and phosphoryl groups | 3-NPH | Mouse hematopoietic stem cells | [ |
| 11 | γ-Hydroxybutyric acid | 3-NPH | Mammalian cell culture media | [ |
| 12 | Sialic acid | 3-NPH | Horse serum, crucian carp, and starfish samples | [ |
| 13 | Carnitine | 3-NPH | Whole blood | [ |
Table 2 Summary of different derivatization reagents applied for carbonyl compounds determination
| No. | Compounds | Derivatization Reagent | Specimen | References |
| 1 | Aliphatic aldehydes: formaldehyde, acetaldehyde, propanal, pentanal, butanal, hexanal, heptanal, octanal, nonanal, decanal, acrolein, crotonaldehyde | DNPH | Immunosuppressed rat serum and oxidative damage cells, human urine samples | [ |
| 2 | Acetaldehyde | DNPH | Hepatocellular carcinoma cell culture, rat blood and plasma, bovine blood | [ |
| 3 | Malonaldehyde | 3-NPH | Human plasma | [ |
| 4 | Formaldehyde, methylglyoxal, malondialdehyde, acetaldehyde | DNPH | Human liver tissue, rat urine | [ |
| 5 | Short-chain fatty acids: acetic acid, propionic acid, L-lactic acid, crotonic acid, isobutyric acid, butyric acid, maleic acid, 2-methylbutyric acid, 3-methylcrotonic acid, isovaleric acid, valeric acid, hexanoic acid, isohexanoic acid | 3-NPH, 2-NPH | Mouse bronchoalveolar lavage fluid,feces, serum, and lung tissue samples | [ |
| 6 | Acetic acid, propionic acid, isobutyric acid, butyric acid, isovaleric acid (6 SCFAs), and 18 fatty acids (C4-C26) | 3-NPH, 2-NPH | Human plasma, serum, urine, feces | [ |
| 7 | Glycolic acid, glyoxylic acid | PH | Human urine | [ |
| 8 | Central carbon metabolic carboxylic acids | 3-NPH | Mouse heart tissue | [ |
| 9 | Protein carbonyls: Sulfur-containing, aromatic, and aliphatic amino acids | DNPH | Plasma, cells, organ homogenates, isolated proteins and organelles | [ |
| 10 | Carbonyl, carboxyl, and phosphoryl groups | 3-NPH | Mouse hematopoietic stem cells | [ |
| 11 | γ-Hydroxybutyric acid | 3-NPH | Mammalian cell culture media | [ |
| 12 | Sialic acid | 3-NPH | Horse serum, crucian carp, and starfish samples | [ |
| 13 | Carnitine | 3-NPH | Whole blood | [ |
Fig.2 Derivatization mechanism and characteristic fragment structure diagram A: derivatization of aldehydes with 2,4-DNPH; B: derivatization reaction of phosphoric acid with 3-NPH; C: derivatization reaction of short chain carboxylic acid with 3-NPH; D: derivatization reaction of sialic acid with 3-NPH; E: derivatization reaction of carnitine with 3-NPH; 3-NPH: 3-Nitrophenylhydrazine; DNPH: 2,4-dinitrobenzene hydrazine.
| 1 | Sun Y, Tang H, Wang Y. Progress and challenges in quantifying carbonyl-metabolomic phenomes with LC-MS/MS[J]. Molecules, 2021, 26 (20): 6146. |
| 2 |
Mihara M, Uchiyama M, Fukuzawa K. Thiobarbituric acid value on fresh homogenate of rat as a parameter of lipid peroxidation in aging, CCl4 intoxication, and vitamin E deficiency[J]. Biochem Med, 1980, 23 (3): 302- 311.
doi: 10.1016/0006-2944(80)90040-X |
| 3 |
Hong YL, Yeh SL, Chang CY, et al. Total plasma malondialdehyde levels in 16 Taiwanese college students determined by various thiobarbituric acid tests and an improved high-performance liquid chromatography-based method[J]. Clin Biochem, 2000, 33 (8): 619- 625.
doi: 10.1016/S0009-9120(00)00177-6 |
| 4 | Sobsey CA, Han J, Lin K, et al. Development and evaluation of a liquid chromatography-mass spectrometry method for rapid, accurate quantitation of malondialdehyde in human plasma [J]. J Chromatogr B Analyt Technol Biomed Life Sci, 2016, 1029-1030: 205-212. |
| 5 |
Beckman JK, Morley SA Jr, Greene HL. Analysis of aldehydic lipid peroxidation products by TLC/densitometry[J]. Lipids, 1991, 26 (2): 155- 161.
doi: 10.1007/BF02544011 |
| 6 |
Siegel D, Meinema AC, Permentier H, et al. Integrated quantification and identification of aldehydes and ketones in biological samples[J]. Anal Chem, 2014, 86 (10): 5089- 5100.
doi: 10.1021/ac500810r |
| 7 |
Guan X, Rubin E, Anni H. An optimized method for the measurement of acetaldehyde by high-performance liquid chromatography[J]. Alcohol Clin Exp Res, 2012, 36 (3): 398- 405.
doi: 10.1111/j.1530-0277.2011.01612.x |
| 8 |
Lin YL, Wang PY, Hsieh LL, et al. Determination of linear aliphatic aldehydes in heavy metal containing waters by high-performance liquid chromatography using 2, 4-dinitrophenylhydrazine derivatization[J]. J Chromatogr A, 2009, 1216 (36): 6377- 6381.
doi: 10.1016/j.chroma.2009.07.018 |
| 9 |
Xu H, Lv L, Hu S, et al. High-performance liquid chromatographic determination of hexanal and heptanal in human blood by ultrasound-assisted headspace liquid-phase microextraction with in-drop derivatization[J]. J Chromatogr A, 2010, 1217 (16): 2371- 2375.
doi: 10.1016/j.chroma.2009.09.068 |
| 10 |
Li Z, Jacobus LK, Wuelfing WP, et al. Detection and quantification of low-molecular-weight aldehydes in pharmaceutical excipients by headspace gas chromatography[J]. J Chromatogr A, 2006, 1104 (1/2): 1- 10.
doi: 10.1016/j.chroma.2005.10.084 |
| 11 |
Poli D, Goldoni M, Corradi M, et al. Determination of aldehydes in exhaled breath of patients with lung cancer by means of on-fiber-derivatisation SPME-GC/MS[J]. J Chromatogr B Analyt Technol Biomed Life Sci, 2010, 878 (27): 2643- 2651.
doi: 10.1016/j.jchromb.2010.01.022 |
| 12 |
Berdyshev EV. Mass spectrometry of fatty aldehydes[J]. Biochim Biophys Acta, 2011, 1811 (11): 680- 693.
doi: 10.1016/j.bbalip.2011.08.018 |
| 13 |
Li Q, Zeng Y, Ai L, et al. Determination of six volatile fatty acids in human serum, urine and faeces by low temperature derivatisation combined with HPLC-MS/MS[J]. J Chromatogr B Analyt Technol Biomed Life Sci, 2024, 1241, 124172.
doi: 10.1016/j.jchromb.2024.124172 |
| 14 |
Henderson GC, Tuazon MA. Separation of positional and geometrical fatty acid isomers as 2-nitrophenylhydrazide derivatives by high-performance liquid chromatography[J]. Anal Biochem, 2011, 413 (1): 66- 68.
doi: 10.1016/j.ab.2011.02.015 |
| 15 |
Ayala A, Munoz MF, Arguelles S. Lipid peroxidation: production, metabolism, and signaling mechanisms of malondialdehyde and 4-hydroxy-2-nonenal[J]. Oxid Med Cell Longev, 2014, 2014, 360438.
doi: 10.1155/2014/360438 |
| 16 | 中华医学会急诊医学分会, 中国医疗保健国际交流促进会胸痛学分会, 山东省医学会心肺复苏与体外生命支持多学科联合委员会等. 醛代谢紊乱指导急危重症早期管理的中国专家共识(2023)[J]. 中华危重病急救医学, 2024, 36 (1): 6- 15. |
| 17 |
Wang SY, Liu H, Zhu JH, et al. 2, 4-dinitrophenylhydrazine capturing combined with mass defect filtering strategy to identify aliphatic aldehydes in biological samples[J]. J Chromatogr A, 2022, 1679, 463405.
doi: 10.1016/j.chroma.2022.463405 |
| 18 |
Liu JF, Yuan BF, Feng YQ. Determination of hexanal and heptanal in human urine using magnetic solid phase extraction coupled with in-situ derivatization by high performance liquid chromatography[J]. Talanta, 2015, 136, 54- 59.
doi: 10.1016/j.talanta.2015.01.003 |
| 19 |
Lili L, Xu H, Song D, et al. Analysis of volatile aldehyde biomarkers in human blood by derivatization and dispersive liquid-liquid microextraction based on solidification of floating organic droplet method by high performance liquid chromatography[J]. J Chromatogr A, 2010, 1217 (16): 2365- 2370.
doi: 10.1016/j.chroma.2010.01.081 |
| 20 |
Jin YY, Shi ZQ, Chang WQ, et al. A chemical derivatization based UHPLC-LTQ-Orbitrap mass spectrometry method for accurate quantification of short-chain fatty acids in bronchoalveolar lavage fluid of asthma mice[J]. J Pharm Biomed Anal, 2018, 161, 336- 343.
doi: 10.1016/j.jpba.2018.08.057 |
| 21 |
Fusco W, Lorenzo MB, Cintoni M, et al. Short-chain fatty-acid-producing bacteria: key components of the human gut microbiota[J]. Nutrients, 2023, 15 (9): 2211.
doi: 10.3390/nu15092211 |
| 22 |
Morrison DJ, Preston T. Formation of short chain fatty acids by the gut microbiota and their impact on human metabolism[J]. Gut Microbes, 2016, 7 (3): 189- 200.
doi: 10.1080/19490976.2015.1134082 |
| 23 |
Hu T, Wu Q, Yao Q, et al. Short-chain fatty acid metabolism and multiple effects on cardiovascular diseases[J]. Ageing Res Rev, 2022, 81, 101706.
doi: 10.1016/j.arr.2022.101706 |
| 24 |
Maslowski KM, Vieira AT, Ng A, et al. Regulation of inflammatory responses by gut microbiota and chemoattractant receptor GPR43[J]. Nature, 2009, 461 (7268): 1282- 1286.
doi: 10.1038/nature08530 |
| 25 | Cox MA, Jackson J, Stanton M, et al. Short-chain fatty acids act as antiinflammatory mediators by regulating prostaglandin E(2) and cytokines[J]. World J Gastroenterol, 2009, 15 (44): 5549- 5557. |
| 26 |
Dalile B, Van Oudenhove L, Vervliet B, et al. The role of short-chain fatty acids in microbiota-gut-brain communication[J]. Nat Rev Gastroenterol Hepatol, 2019, 16 (8): 461- 478.
doi: 10.1038/s41575-019-0157-3 |
| 27 |
Zhao C, Wang X, Wu J, et al. Analysis of O-acetylated sialic acids by 3-nitrophenylhydrazine derivatization combined with LC-MS/MS[J]. Anal Methods, 2024, 16 (16): 2472- 2477.
doi: 10.1039/D4AY00330F |
| 28 |
Schauer R, Kamerling JP. Exploration of the Sialic Acid World[J]. Adv Carbohydr Chem Biochem, 2018, 75, 1- 213.
doi: 10.1016/bs.accb.2018.09.001 |
| 29 |
Stanczak MA, Rodrigues Mantuano N, Kirchhammer N, et al. Targeting cancer glycosylation repolarizes tumor-associated macrophages allowing effective immune checkpoint blockade[J]. Sci Transl Med, 2022, 14 (669): eabj1270.
doi: 10.1126/scitranslmed.abj1270 |
| 30 |
Wang B. Sialic acid is an essential nutrient for brain development and cognition[J]. Annu Rev Nutr, 2009, 29, 177- 222.
doi: 10.1146/annurev.nutr.28.061807.155515 |
| 31 | Qiu M, Ye C, Bao L, et al. Elevated muramyl dipeptide by sialic acid-facilitated postantibiotic pathobiont expansion contributes to gut dysbiosis-induced mastitis in mice [J]. J Adv Res, 2024. DOI: 10.1016/j.jare.2024.07.019. |
| 32 |
Hodgson K, Orozco-Moreno M, Goode EA, et al. Sialic acid blockade inhibits the metastatic spread of prostate cancer to bone[J]. EBioMedicine, 2024, 104, 105163.
doi: 10.1016/j.ebiom.2024.105163 |
| 33 |
Keumatio Doungtsop BC, Nardini E, Kalay H, et al. Sialic acid-modified der p 2 allergen exerts immunomodulatory effects on human PBMCs[J]. J Allergy Clin Immunol Glob, 2024, 3 (1): 100193.
doi: 10.1016/j.jacig.2023.100193 |
| 34 |
Zhu M, Zhang W, Dekyi K, et al. Potential effects of sialic acid and 3′-Sialyllactose on intestinal health and anti-cardiovascular disease in mice fed with a high-fat diet[J]. J Funct Foods, 2024, 116, 106215.
doi: 10.1016/j.jff.2024.106215 |
| 35 | Vaz FM, Wanders RJ. Carnitine biosynthesis in mammals [J]. Biochem J, 2002, 361(Pt 3): 417-429. |
| 36 | Hamilton JW, Li BU, Shug AL, et al. Carnitine transport in human intestinal biopsy specimens. Demonstration of an active transport system[J]. Gastroenterology, 1986, 91 (1): 10- 16. |
| 37 | Flanagan JL, Simmons PA, Vehige J, et al. Role of carnitine in disease[J]. Nutr Metab (Lond), 2010, 7, 30. |
| 38 |
Nałecz KA, Miecz D, Berezowski V, et al. Carnitine: transport and physiological functions in the brain[J]. Mol Aspects Med, 2004, 25 (5/6): 551- 567.
doi: 10.1016/j.mam.2004.06.001 |
| 39 |
Nezu J, Tamai I, Oku A, et al. Primary systemic carnitine deficiency is caused by mutations in a gene encoding sodium ion-dependent carnitine transporter[J]. Nat Genet, 1999, 21 (1): 91- 94.
doi: 10.1038/5030 |
| 40 |
Wong CN, Gui XY, Rabkin SW. Myeloperoxidase, carnitine, and derivatives of reactive oxidative metabolites in heart failure with preserved versus reduced ejection fraction: A meta-analysis[J]. Int J Cardiol, 2024, 399, 131657.
doi: 10.1016/j.ijcard.2023.131657 |
| 41 |
DiNicolantonio JJ, Lavie CJ, Fares H, et al. L-carnitine in the secondary prevention of cardiovascular disease: systematic review and meta-analysis[J]. Mayo Clin Proc, 2013, 88 (6): 544- 551.
doi: 10.1016/j.mayocp.2013.02.007 |
| 42 |
Pooyandjoo M, Nouhi M, Shab-Bidar S, et al. The effect of (L-)carnitine on weight loss in adults: a systematic review and meta-analysis of randomized controlled trials[J]. Obes Rev, 2016, 17 (10): 970- 976.
doi: 10.1111/obr.12436 |
| 43 | 刘文静, 陈蔚, 宋月林, 等. 适用于LC-MS的衍生化技术研究及应用进展[J]. 中国现代应用药学, 2024, 41 (20): 2777- 2788. |
| 44 |
Zimmermann M, Sauer U, Zamboni N. Quantification and mass isotopomer profiling of α-keto acids in central carbon metabolism[J]. Anal Chem, 2014, 86 (6): 3232- 3237.
doi: 10.1021/ac500472c |
| 45 |
Zhu Y, Deng P, Zhong D. Derivatization methods for LC-MS analysis of endogenous compounds[J]. Bioanalysis, 2015, 7 (19): 2557- 2581.
doi: 10.4155/bio.15.183 |
| 46 |
Meng X, Pang H, Sun F, et al. Simultaneous 3-nitrophenylhydrazine derivatization strategy of carbonyl, carboxyl and phosphoryl submetabolome for LC-MS/MS-based targeted metabolomics with improved sensitivity and coverage[J]. Anal Chem, 2021, 93 (29): 10075- 10083.
doi: 10.1021/acs.analchem.1c00767 |
| 47 |
Rigdova K, Wang Y, Ward M, et al. A new derivative for oxosteroid analysis by mass spectrometry[J]. Biochem Biophys Res Commun, 2014, 446 (3): 762- 767.
doi: 10.1016/j.bbrc.2014.01.190 |
| 48 |
Zhao S, Dawe M, Guo K, et al. Development of high-performance chemical isotope labeling LC-MS for profiling the carbonyl submetabolome[J]. Anal Chem, 2017, 89 (12): 6758- 6765.
doi: 10.1021/acs.analchem.7b01098 |
| 49 |
Tomono S, Miyoshi N, Ohshima H. Comprehensive analysis of the lipophilic reactive carbonyls present in biological specimens by LC/ESI-MS/MS[J]. J Chromatogr B Analyt Technol Biomed Life Sci, 2015, 988, 149- 156.
doi: 10.1016/j.jchromb.2015.02.036 |
| 50 |
Wang SL, Wang Y, Wu L, et al. Paired derivatization approach with H/D-labeled hydroxylamine reagents for sensitive and accurate analysis of monosaccharides by liquid chromatography tandem mass spectrometry[J]. Anal Chem, 2022, 94 (8): 3590- 3599.
doi: 10.1021/acs.analchem.1c04924 |
| 51 | 张玺恩, 王笛, 许风国. 化学衍生化技术在靶向代谢组学LC-MS中的应用与进展[J]. 中国药科大学学报, 2021, 52 (1): 31- 37. |
| 52 |
Osinaga FO, Blakeslee K, Kharel MK, et al. Method validation of gamma-hydroxybutyric acid detection upon herpes simplex virus-type 1 infection using LC-MRM-MS with 3-nitrophenylhydrazine derivatization[J]. J Pharm Biomed Anal, 2022, 210, 114547.
doi: 10.1016/j.jpba.2021.114547 |
| 53 |
Inoue H, Takayama K, Takahara C, et al. Determination of short-chain fatty acids in mouse feces by high-performance liquid chromatography using 2-nitrophenylhydrazine as a labeling reagent[J]. Biol Pharm Bull, 2019, 42 (5): 845- 849.
doi: 10.1248/bpb.b18-01017 |
| 54 | Banos CE, Silva M. Liquid chromatography-tandem mass spectrometry for the determination of low-molecular mass aldehydes in human urine[J]. J Chromatogr B Analyt Technol Biomed Life Sci, 2010, 878 (7/8): 653- 658. |
| 55 |
Ma W, Klemm WR. Determination of acetaldehyde in blood by solid phase extraction and high performance liquid chromatography[J]. Alcohol, 1997, 14 (5): 469- 472.
doi: 10.1016/S0741-8329(96)00214-5 |
| 56 |
Yilmaz B, Asci A, Kucukoglu K, et al. Simple high-performance liquid chromatography method for formaldehyde determination in human tissue through derivatization with 2, 4-dinitrophenylhydrazine[J]. J Sep Sci, 2016, 39 (15): 2963- 2969.
doi: 10.1002/jssc.201600345 |
| 57 |
Deng Y, Yu PH. Simultaneous determination of formaldehyde and methylglyoxal in urine: involvement of semicarbazide-sensitive amine oxidase-mediated deamination in diabetic complications[J]. J Chromatogr Sci, 1999, 37 (9): 317- 322.
doi: 10.1093/chromsci/37.9.317 |
| 58 | Chen Z, Gao Z, Wu Y, et al. Development of a simultaneous quantitation for short-, medium-, long-, and very long-chain fatty acids in human plasma by 2-nitrophenylhydrazine-derivatization and liquid chromatography-tandem mass spectrometry [J]. J Chromatogr B Analyt Technol Biomed Life Sci, 2019, 1126-1127: 121771. |
| 59 |
Petrarulo M, Pellegrino S, Bianco O, et al. Derivatization and high-performance liquid chromatographic determination of urinary glycolic acid[J]. J Chromatogr, 1989, 465 (1): 87- 93.
doi: 10.1016/s0021-9673(01)83575-5 |
| 60 |
Petrarulo M, Pellegrino S, Bianco O, et al. High-performance liquid chromatographic determination of glyoxylic acid in urine[J]. J Chromatogr, 1988, 432, 37- 46.
doi: 10.1016/S0378-4347(00)80631-3 |
| 61 |
Petrarulo M, Marangella M, Linari F. High-performance liquid chromatographic determination of plasma glycolic acid in healthy subjects and in cases of hyperoxaluria syndromes[J]. Clin Chim Acta, 1991, 196 (1): 17- 26.
doi: 10.1016/0009-8981(91)90204-P |
| 62 |
Han J, Gagnon S, Eckle T, et al. Metabolomic analysis of key central carbon metabolism carboxylic acids as their 3-nitrophenylhydrazones by UPLC/ESI-MS[J]. Electrophoresis, 2013, 34 (19): 2891- 2900.
doi: 10.1002/elps.201200601 |
| 63 |
Weber D, Davies M J, Grune T. Determination of protein carbonyls in plasma, cell extracts, tissue homogenates, isolated proteins: Focus on sample preparation and derivatization conditions[J]. Redox Biol, 2015, 5, 367- 380.
doi: 10.1016/j.redox.2015.06.005 |
| 64 |
Han J, Higgins R, Lim M D, et al. Isotope-labeling derivatization with 3-nitrophenylhydrazine for LC/multiple-reaction monitoring-mass-spectrometry-based quantitation of carnitines in dried blood spots[J]. Anal Chim Acta, 2018, 1037, 177- 187.
doi: 10.1016/j.aca.2018.01.045 |
| 65 |
Valdivia-Garcia MA, Chappell KE, Camuzeaux S, et al. Improved quantitation of short-chain carboxylic acids in human biofluids using 3-nitrophenylhydrazine derivatization and liquid chromatography with tandem mass spectrometry (LC-MS/MS)[J]. J Pharm Biomed Anal, 2022, 221, 115060.
doi: 10.1016/j.jpba.2022.115060 |
| 66 |
Meierhofer D. Acylcarnitine profiling by low-resolution LC-MS[J]. PLoS One, 2019, 14 (8): e0221342.
doi: 10.1371/journal.pone.0221342 |
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