Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product

A limited number of researches have been reported to apply the Arrhenius equation to study the relationship between drugs and its degradation products so far. In the present work, the thermal degradation kinetics of lysine hydrochloride solutions for injection, the special solvent for ademetionine 1...

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Main Authors: Mengying Tao, Meng Zhu, Chunnuan Wu, Zhonggui He
Format: Article
Language:English
Published: Elsevier 2015-02-01
Series:Asian Journal of Pharmaceutical Sciences
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1818087614000671
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spelling doaj-6dd9d6a97e0a4101a3e63f9a593a40ff2020-11-24T21:37:05ZengElsevierAsian Journal of Pharmaceutical Sciences1818-08762015-02-01101576310.1016/j.ajps.2014.08.012Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation productMengying TaoMeng ZhuChunnuan WuZhonggui HeA limited number of researches have been reported to apply the Arrhenius equation to study the relationship between drugs and its degradation products so far. In the present work, the thermal degradation kinetics of lysine hydrochloride solutions for injection, the special solvent for ademetionine 1, 4-butanedisulfonate (SAM) for injection, was investigated at selected temperatures and pH values. The main degradation product of lysine was separated, purified, and confirmed as lysine lactam. A reversed-phase high performance liquid chromatographic (RP-HPLC) method without derivation was developed for the simultaneous determination of lysine and lysine lactam. The results confirmed that both the lysine degradation and lysine lactam generation followed zero-order reaction kinetics. The degradation and generation rate constants increased with increasing temperatures and decreasing pH values. The temperature-dependent degradation and generation reaction could be sufficiently modeled on the Arrhenius equation with the activation energy of 80.14 and 83.22 kJ/mol, respectively. Meanwhile, a linear relationship existed between the amount of lysine degradation and lysine lactam generation since the approximate activation energy. Considering there could be other side effects, we established an upper limit of lysine lactam (500 μg/ml), as the acceptable criteria for stability to estimate the shelf life together with lysine, which made the prediction more accurate and credible. Extrapolation data demonstrated that the lysine hydrochloride solutions for injection could be stable for two years stored at room temperature.http://www.sciencedirect.com/science/article/pii/S1818087614000671Lysine hydrochlorideLysine lactamDegradation kineticsShelf life
collection DOAJ
language English
format Article
sources DOAJ
author Mengying Tao
Meng Zhu
Chunnuan Wu
Zhonggui He
spellingShingle Mengying Tao
Meng Zhu
Chunnuan Wu
Zhonggui He
Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
Asian Journal of Pharmaceutical Sciences
Lysine hydrochloride
Lysine lactam
Degradation kinetics
Shelf life
author_facet Mengying Tao
Meng Zhu
Chunnuan Wu
Zhonggui He
author_sort Mengying Tao
title Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
title_short Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
title_full Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
title_fullStr Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
title_full_unstemmed Degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
title_sort degradation kinetic study of lysine in lysine hydrochloride solutions for injection by determining its main degradation product
publisher Elsevier
series Asian Journal of Pharmaceutical Sciences
issn 1818-0876
publishDate 2015-02-01
description A limited number of researches have been reported to apply the Arrhenius equation to study the relationship between drugs and its degradation products so far. In the present work, the thermal degradation kinetics of lysine hydrochloride solutions for injection, the special solvent for ademetionine 1, 4-butanedisulfonate (SAM) for injection, was investigated at selected temperatures and pH values. The main degradation product of lysine was separated, purified, and confirmed as lysine lactam. A reversed-phase high performance liquid chromatographic (RP-HPLC) method without derivation was developed for the simultaneous determination of lysine and lysine lactam. The results confirmed that both the lysine degradation and lysine lactam generation followed zero-order reaction kinetics. The degradation and generation rate constants increased with increasing temperatures and decreasing pH values. The temperature-dependent degradation and generation reaction could be sufficiently modeled on the Arrhenius equation with the activation energy of 80.14 and 83.22 kJ/mol, respectively. Meanwhile, a linear relationship existed between the amount of lysine degradation and lysine lactam generation since the approximate activation energy. Considering there could be other side effects, we established an upper limit of lysine lactam (500 μg/ml), as the acceptable criteria for stability to estimate the shelf life together with lysine, which made the prediction more accurate and credible. Extrapolation data demonstrated that the lysine hydrochloride solutions for injection could be stable for two years stored at room temperature.
topic Lysine hydrochloride
Lysine lactam
Degradation kinetics
Shelf life
url http://www.sciencedirect.com/science/article/pii/S1818087614000671
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