A Systematic Degradation Kinetics Study of Dalbavancin Hydrochloride Injection Solutions

IF 3.7 3区 医学 Q2 CHEMISTRY, MEDICINAL
Sardar M. Jakaria , David E. Budil , James Murtagh
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引用次数: 0

Abstract

The degradation kinetics of the glycopeptide antibiotic dalbavancin in solution are systematically evaluated over the pH range 1–12 at 70°C. The decomposition rate of dalbavancin was measured as a function of pH, buffer composition, temperature, ionic strength, and drug concentration. A pH-rate profile was constructed using pseudo first-order kinetics at 70°C after correcting for buffer effects; the observed pH-rate profile could be fitted with standard pseudo first order rate laws. The degradation reactions of dalbavancin were found to be strongly dependent on pH and were catalyzed by protons or hydroxyl groups at extreme pH values. Dalbavancin shows maximum stability in the pH region 4–5. Based on the Arrhenius equation, dalbavancin solution at pH 4.5 is predicted to have a maximum stability of thirteen years under refrigerated conditions, eight months at room temperature and one month at 40°C. Mannosyl Aglycone (MAG), the major thermal and acid degradation product, and DB-R6, an additional acid degradation product, were formed in dalbavancin solutions at 70°C due to hydrolytic cleavage at the anomeric carbons of the sugars. Through deamination and hydrolytic cleavage of dalbavancin, a small amount of DB-Iso-DP2 (RRT-1.22) degradation product was also formed under thermal stress at 70°C. A greater amount of the base degradation product DB-R2 forms under basic conditions at 70°C due to epimerization of the alpha carbon of phenylglycine residue 3.

盐酸Dalbavancin注射液的系统降解动力学研究
在70°C的pH范围1-12范围内,系统地评估了糖肽抗生素达尔巴万辛在溶液中的降解动力学。测定了pH、缓冲液组成、温度、离子强度和药物浓度对dalbavancin分解速率的影响。在校正缓冲效应后,在70°C下使用伪一级动力学构建了ph -速率曲线;所观察到的ph值分布符合标准的伪一阶速率定律。研究发现,黄芪多糖的降解反应对pH值有很强的依赖性,在极端pH值下可由质子或羟基催化。Dalbavancin在pH值4-5范围内具有最大的稳定性。根据Arrhenius方程,pH为4.5的dalbavancin溶液在冷藏条件下的最大稳定性为13年,在室温下为8个月,在40°C下为1个月。甘露糖基糖苷元(MAG)是甘露糖基糖苷元的主要热降解产物和酸降解产物,DB-R6是糖基糖苷元在70°C的温度下在糖的端粒碳上水解裂解而形成的。在70℃的热应力下,通过脱胺和水解裂解,还形成了少量的DB-Iso-DP2 (RRT-1.22)降解产物。在70℃的碱性条件下,由于苯甘氨酸残基3的α碳的外显异构化,形成了更多的碱降解产物DB-R2。
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来源期刊
CiteScore
7.30
自引率
13.20%
发文量
367
审稿时长
33 days
期刊介绍: The Journal of Pharmaceutical Sciences will publish original research papers, original research notes, invited topical reviews (including Minireviews), and editorial commentary and news. The area of focus shall be concepts in basic pharmaceutical science and such topics as chemical processing of pharmaceuticals, including crystallization, lyophilization, chemical stability of drugs, pharmacokinetics, biopharmaceutics, pharmacodynamics, pro-drug developments, metabolic disposition of bioactive agents, dosage form design, protein-peptide chemistry and biotechnology specifically as these relate to pharmaceutical technology, and targeted drug delivery.
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