Development and Validation of Quantification Method for Homocysteine in Human Plasma Using Ultra-High-Performance Liquid Chromatography-Tandem Mass Spectrometry

Authors

  • Mohd Salleh Rofiee Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia
  • Siti Suraya Maisarah Abdul Sahar Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia
  • Lay Kek Teh Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia
  • Mohd Zaki Salleh Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia

DOI:

https://doi.org/10.37134/jsml.vol12.1.9.2024

Keywords:

Homocysteine, Plasma, Ultra-high performance liquid chromatography-tandem mass spectrometry

Abstract

We developed and validated a sensitive and robust method for quantifying homocysteine in human plasma using ultra-high-performance liquid chromatography-tandem mass spectrometry. Isocratic elution of the analyte and internal standard were achieved within 2 minutes using  Zorbax Eclipse Plus C18 column, with 5% of mobile phase A (0.1% formic acid in water) and 95% of mobile phase B ( 0.1% formic acid in acetonitrile). Quantification was performed using multiple reaction monitoring (MRM) mode, based on parent and product ion transitions for L-Homocysteine (136 > 90.1, 56.2) and d8-DL-Homocysteine (140 > 94.1, 59.3) as the internal standard. The method was validated for linearity, sensitivity, accuracy, precision, recovery, and stability. Good linearity was observed within a range of 250-3000 ng-1, with correlation coefficients (r2 = 0.98). The extraction recovery ranged between 83% and 92%. Homocysteine remained stable under all five tested conditions, including 2 and 8 hours on the benchtop at room temperature, overnight storage in the autosampler (10 ºC), three freeze-thaw cycles (-20 ºC), and long-term storage (1 month) at -20 ºC. Based on these findings, the developed method met the criteria as stipulated by European Medicines Agency (EMA), Food and Drug Administration (FDA), and International Council of Harmonisation (ICH). In conclusion, this validated method can be used for quantitating homocysteine levels in human plasma.

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Author Biographies

Mohd Salleh Rofiee, Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia

Faculty of Health Sciences, Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia

Lay Kek Teh, Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia

Faculty of Pharmacy, Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor Malaysia

Mohd Zaki Salleh, Integrative Pharmacogenomics Institute (iPROMISE), Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor, Malaysia

Faculty of Pharmacy, Universiti Teknologi MARA Selangor, Puncak Alam Campus, Bandar Puncak Alam, Selangor Malaysia

References

Alam SF, Kumar S, Ganguly P. (2019). Measurement of homocysteine: a historical perspective. Journal of Clinical Biochemistry and Nutrition, 65(3), 171-177.

Anderson L, Hunter CL. (2006). Quantitative mass spectrometric multiple reaction monitoring assays for major plasma proteins. Molecular and Cellular Proteomics, 5(4), 573-578.

Azzini E, Ruggeri S, Polito A. (2020). Homocysteine: Its possible emerging role in at-risk population groups. International Journal of Molecular Sciences, 21, 1421.

Bostom AG, Shemin D, Lapane KL, Hume AL, Yoburn D, Nadeau MR, Bendich A, Selhub J, Rosenberg, IH. (1996). High dose B-vitamin treatment of hyperhomocysteinemia in dialysis patients. Kidney International, 49(1), 147-152.

Committee for Medicinal Products for Human Use. (2023). ICH guideline M10 on bioanalytical method validation and study sample analysis. European Medicines Agency, p. 1-11.

Food Drug Administration United State (USFDA). (2018). Bioanalytical Method Validation Guidance for Industry. US Department of Health and Human Services Food and Drug Administration Center for Drug Evaluation and Research and Center for Veterinary Medicine, p. 1-37.

Ghassabian S, Rethwan NSA, Griffiths L, Smith MT. (2014). Fully validated LC-MS/MS method for quantification of homocysteine concentrations in samples of human serum: A new approach. Journal of Chromatography B: Analytical Technologies in the Biomedical and Life Sciences, 972, 14-21.

Govindaraju V, Neelam, Manjunath CN, Venkataramiah H, Raghu TR. (2003). Hyperhomocysteinemia: an emerging risk factor for cardiovascular disease. Indian Journal of Clinical Biochemistry, 18(1), 8-14.

Hill DM, Johnson LJ, Burns PJ, Neale AM, Harmening DM, Kenney AC. (2002). Effects of temperature on stability of blood homocysteine in collection tubes containing 3-deazaadenosine. Clinical Chemistry, 48(11), 2017-2022.

Hou CT, Wu YH, Cheng CH, Huang PN, Huang YC. (2012). Higher plasma homocysteine is associated with lower Vitamin B6 status in critically ill surgical patients. Nutrition in Clinical Practice, 27(5), 657-700.

Kaza M, Karazniewicz-Lada M, Kosicka K, Siemiątkowska A, Rudzki PJ. (2019). Bioanalytical method validation: new FDA guidance vs. EMA guideline. Better or worse? Journal of Pharmaceutical and Biomedical Analysis, 165, 381-385.

Lea R, Colson N, Quinlan S, MacMillan J, Griffiths L. (2009). The effects of vitamin supplementation and MTHFR (C677T) genotype on homocysteine-lowering and migraine disability. Pharmacogenetics and Genomics, 19(6), 422-428.

Li C, Chu S, Tan S, Yin X, Jiang Y, Dai X, Gong X, Fang X, Tian D. (2021). Towards higher sensitivity of mass spectrometry: a perspective from the mass analyzers. Frontiers in Chemistry, 9, 813359.

Martn I, Gibert MJ, Vila M, Pintos C, Obrador A, Malo O. (2001). Stabilization of blood homocysteine in an epidemiological setting. European Journal of Cancer Prevention, 10(5), 473-476.

Morris AAM, Kozich V, Santra S, Andria G, Ben-Omran TIM, Chakrapani AB, Crushell E, Henderson MJ, Hochuli M, Huemer M, Janssen MCH, Maillot F, Mayne PD, McNulty J, Morrison TM, Ogier H, O’Sullivan S, Pavlikova M, de Almeida IT, Terry A, Yap S, Blom HJ, Chapman KA. (2017). Guidelines for the diagnosis and management of cystathionine beta-synthase deficiency. Journal of Inherited Metabolic Disease, 40(1), 47-44.

Rafii M, Elango R, House JD, Courtney-Martin G, Darling P, Fisher L, Pencharz PB. (2009). Measurement of homocysteine and related metabolites in human plasma and urine by liquid chromatography electrospray tandem mass spectrometry. Journal of Chromatography B: Analytical Technologies in the Biomedical and Life Sciences, 877(28), 3282-3291.

Rasmussen K, Moller J. (2000). Total homocysteine measurement in clinical practice. Annals of Clinical Biochemistry, 37(5), 627-648.

Schindler K, Zauner C, Buchmayer H, Fodinger M, Wolfl G, Bieglmayer C, Heinz G, Wilfing A, Horl WH, Sunder-Plassmann G. (2000). High prevalence of hyperhomocysteinemia in critically ill patients. Critical Care Medicine, 28(4), 991-995.

Stefanini-Oresic L. (2022). Validation of analytical procedures: ICH guidelines Q2(R2). Farmaceutski Glasnik, 2, 1-34.

Suliman ME, Divino-Filho JC, Bàràny P, Anderstam B, Lindholm B, Bergström J. (1999). Effects of high-dose folic acid and pyridoxine on plasma and erythrocyte sulfur amino acids in hemodialysis patients. Journal of the American Society of Nephrology, 10(6), 1287-1296.

Timmerman P, Goodman J, Golob M, Haslberger T, Knutsson M, Nelson R, Verhaeghe T, White S. (2020). European Bioanalysis Forum feedback on draft ICH M10 guideline on bioanalytical method validation during the Step 2b public consultation period. Bioanalysis, 12(6), 1-11.

Tomaiuolo M, Vecchione G, Margaglione M, Pisanelli D, Grandone E. (2009). Stable-isotope dilution LC-ESI-MS/MS techniques for the quantification of total homocysteine in human plasma. Journal of Chromatography B: Analytical Technologies in the Biomedical and Life Sciences, 877(28), 3292-3299.

Ubbink JB. (2000). Assay methods for the measurement of total homocyst(e)ine in plasma. Seminars in Thrombosis and Hemostasis, 26(3), 233-241.

Zappacosta B, Persichilli S, Minucci A, Scribano D, Baroni S, Fasanella S, Neri P, Daloiso PD, Giardina B, De Sole P. (2006). Evaluation of a new enzymatic method for homocysteine measurement. Clinical Biochemistry, 39(1), 62-66.

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Published

2024-01-05

How to Cite

Rofiee, M. S., Abdul Sahar, S. S. M., Teh, L. K., & Salleh, M. Z. (2024). Development and Validation of Quantification Method for Homocysteine in Human Plasma Using Ultra-High-Performance Liquid Chromatography-Tandem Mass Spectrometry. Journal of Science and Mathematics Letters, 12(1), 72–79. https://doi.org/10.37134/jsml.vol12.1.9.2024

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