Separation and determination of D-malic acid enantiomer by reversed-phase liquid chromatography after derivatization with (R)-1-(1-naphthyl) ethylamine

Autores

  • Xuejiao Mei School of Pharmacy, Nanjing University of Technology, Nanjing 211816, Jiangsu, People’s Republic of China
  • Dingqiang Lu School of Pharmacy, Nanjing University of Technology, Nanjing 211816, Jiangsu, People’s Republic of China
  • Xiangping Yan Institute of Pharmaceutical Research, Nanjing University of Technology, Nanjing 211816, Jiangsu, People’s Republic of China http://orcid.org/0000-0002-6384-0301

DOI:

https://doi.org/10.1590/s2175-97902022e19247

Palavras-chave:

L-Malic acid, (R)-NEA, Chiral purity, Pre-column derivatization

Resumo

L-Malic acid is the Active Pharmaceutical Ingredient of the latest generation of compound electrolyte injection (STEROFUNDIN ISO, Germany) and plays a very important role in the rescue of critically ill patients. The optical purity of L-malic acid is a Critical Quality Attributes. A new reversed-phase high performance liquid chromatography (RP-HPLC) method for pre-column derivatization of D-malic acid enantiomer impurity in L-malic acid bulk drug was established. The derivatization reaction was carried out using (R)-1-(1-naphthyl)ethylamine ((R)-NEA) as a chiral derivatization reagent. The Kromasil C18 column was used with a detection wavelength of 225 nm, a flow rate of 1.0 mL·min-1, and a column temperature of 30 °C. The mobile phase was acetonitrile-0.01 mol·L-1 potassium dihydrogen phosphate solution (containing 20 mmol·L-1 sodium heptanesulfonate, adjusted to pH 2.80 with phosphoric acid) (at a ratio of 45:55) and the resolution of D-malic acid and L-malic acid derivatization products reached 1.7. The proposed method possesses the advantages of simple operation, mild conditions, stable derivatization products and low cost. Also it gave better separation and was more accurate than previous methods.

Downloads

Os dados de download ainda não estão disponíveis.

Referências

Buser-Suter C, Wiemken A, Matile P. A malic Acid permease in isolated vacuoles of a crassulacean Acid metabolism plant. Plant Physiol. 1982;69(2):456-9.

Calderon C, Santi C, Lammerhofer M. Chiral separation of disease biomarkers with 2-hydroxycarboxylic acid structure. J Sep Sci. 2018;41(6):1224-31.

Doner L, Cavender P. Chiral liquid chromatography for resolving malic acid enantiomers in adulterated apple juice. J Food Sci. 1988;53(6):1898-99.

Doucet J.J, Hall R.I. Limited resuscitation with hypertonic saline, hypertonic sodium acetate, and lactated Ringer’s solutions in a model of uncontrolled hemorrhage from a vascular injury. J Trauma. 1999;47(5):956-63.

Eisele T.A, Determination of D-malic acid in apple juice by liquid chromatography: collaborative study. J AOAC Int. 1996;79(1):50-4.

Fransson B, Ragnarsson U. Separation of enantiomers of α-hydroxy acids by reversed-phase liquid chromatography after derivatization with 1-(9-fluorenyl) ethyl chloroformate. J Chromatogr A. 1998;827(1):31-36.

Hafizah M, Liu C.Y, Ooi J.S. Normal saline versus balanced-salt solution as intravenous fluid therapy during neurosurgery: effects on acid-base balance and electrolytes. J Neurosurg Sci. 2017;61(3):263-70.

Horiba M, Kida S, Yamamoto S, Ôi N. Gas chromatographic determination of the optical purity of allethrolone on a chiral stationary phase. Agric Biol Chem. 1982;46(1):281-83.

Kamencev M, Komarova N, Morozova O. Enantioseparation of tartaric and malic acids in wines by ligand exchange capillary electrophoresis using uncoated fused silica capillary. Chromatographia. 2016;79(13-14):927-31.

Kohnle W, Heimsch E, Schmidt-Wiederkehr P, Franz H.E. Acid base status during treatment of chronic uremia with diafiltration. J Dial. 1977;1(5):419-30.

Kreuels B, Wichmann D, Emmerich P, Schmidt-Chanasit J, de Heer G, Kluge S, et al. A case of severe Ebola virus infection complicated by gram-negative septicemia. N Engl J Med. 2014;371(25):2394-401.

Martinez-Luque M, Castillo F, Blasco R. Assimilation of D-malate by Rhodobacter capsulatus E1F1. Curr Microbiol. 2001;43(3):154-7.

Mazzei F, Botrè F, Favero G. Peroxidase based biosensors for the selective determination of D, L-lactic acid and L-malic acid in wines. Microchem J. 2007;87(1):81-86.

Miwa H. High-performance liquid chromatographic determination of mono-, poly- and hydroxycarboxylic acids in foods and beverages as their 2-nitrophenylhydrazides. J Chromatogr A . 2000;881(1-2):365-85.

Miwa H, Yamamoto M. Determination of mono-, poly- and hydroxy-carboxylic acid profiles of beverages as their 2-nitrophenylhydrazides by reversed-phase ion-pair chromatography. J Chromatogr A . 1996;721(2):261-68.

Mori H, Shiraki S. Determination of D-malate using immobilized D-malate dehydrogenase in a flow system and its application to analyze the D-malate content of beverages. Glob J Health Sci. 2008;54(1):72-75.

Nakajima T, Manzen S, Shigeno T, Nakahara T. Production of D-malic acid from maleic acid by resting cells of Ustilago sphaerogena strain S402. Biosci Biotechnol Biochem. 1993;57(3):490-91.

Shapiro F, Silanikove N. Rapid and accurate determination of malate, citrate, pyruvate and oxaloacetate by enzymatic reactions coupled to formation of a fluorochromophore: Application in colorful juices and fermentable food (yogurt, wine) analysis. Food Chem. 2011;129(2):608-13.

Soussi S, Ferry A, Chaussard M, Legrand M. Chloride toxicity in critically ill patients: What’s the evidence? Anaesth Crit Care Pain Med. 2017;36(2):125-30.

Trojanowicz M, Kaniewska M. Flow methods in chiral analysis. Anal Chim Acta. 2013;801:59-69.

Wannerberg O, Persson B. Liquid chromatographic method for the determination of bambuterol hydrochloride and related compounds. J Chromatogr. 1988;435(1):199-203.

Zotou A, Loukou Z, Karava O. Method development for the determination of seven organic acids in wines by reversed-phase high performance liquid chromatography. Chromatographia . 2004;60(1-2):39-44.

Downloads

Publicado

2023-02-27

Edição

Seção

Original Article

Como Citar

Separation and determination of D-malic acid enantiomer by reversed-phase liquid chromatography after derivatization with (R)-1-(1-naphthyl) ethylamine. (2023). Brazilian Journal of Pharmaceutical Sciences, 58. https://doi.org/10.1590/s2175-97902022e19247