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Meropenem Stability in Human Plasma at -20 °C: Detailed Assessment of Degradation
Matthias Gijsen1,2, Benjamin Filtjens3,4, Pieter Annaert5,6
1Clinical Pharmacology and Pharmacotherapy, Department of Pharmaceutical and Pharmacological Sciences, KU Leuven, 3000 Leuven, Belgium.
Abstract:
There are concerns about the stability of meropenem in plasma samples, even when frozen at -20 °C. Previous smaller studies suggested significant degradation of meropenem at -20 °C after 3-20 days. However, in several recent clinical studies, meropenem plasma samples were still stored at -20 °C, or the storage temperature and/or time were not mentioned in the paper. The aim of this study was to describe and model meropenem degradation in human plasma at -20 °C over 1 year. Stability of meropenem in human plasma at -20 °C was investigated at seven concentrations (0.44, 4.38, 17.5, 35.1, 52.6, 70.1, and 87.6 mg/L) representative for the range of relevant concentrations encountered in clinical practice. For each concentration, samples were stored for 0, 7, 14, 21, 28, 42, 56, 70, 84, 112, 140, 168, 196, 224, 252, 280, 308, 336, and 364 days at -20 °C before being transferred to -80 °C until analysis. Degradation was modeled using polynomial regression analysis and artificial neural network (ANN). Meropenem showed significant degradation over time in human plasma when stored at -20 °C. Degradation was present over the whole concentration range and increased with higher concentrations until a concentration of 35.1 mg/L. Both models showed accurate prediction of meropenem degradation. In conclusion, this study provides detailed insights into the concentration-dependent degradation of meropenem in human plasma stored at -20 °C over 1 year. Meropenem in human plasma is shown to be stable at least up to approximately 80 days when stored at -20 °C. The polynomial model allows calculating original meropenem concentrations in samples stored for a known period of time at -20 °C.
Insights
Meropenem (a crucial antibiotic) degrades significantly in plasma stored at -20°C over time. This study shows it remains stable for about 80 days, with degradation increasing at higher concentrations.
Area of Science:
- Pharmacokinetics and Drug Metabolism
- Clinical Chemistry
- Analytical Chemistry
Background:
- Concerns exist regarding meropenem stability in frozen plasma (-20 °C).
- Previous studies indicated rapid degradation (3-20 days) at -20 °C.
- Inconsistent reporting of storage conditions in recent clinical studies necessitates further investigation.
Purpose of the Study:
- To quantitatively describe and model meropenem degradation in human plasma at -20 °C over one year.
- To assess the impact of various meropenem concentrations on degradation rates.
- To provide a predictive model for meropenem stability in clinical samples.
Main Methods:
- Investigated meropenem stability across seven concentrations (0.44–87.6 mg/L) in human plasma.
- Samples were stored at -20 °C for up to 364 days, with subsequent transfer to -80 °C until analysis.
- Degradation was modeled using polynomial regression and artificial neural networks (ANN).
Main Results:
- Meropenem exhibited significant time-dependent degradation in plasma at -20 °C.
- Degradation was observed across all tested concentrations, increasing with concentration up to 35.1 mg/L.
- Both polynomial regression and ANN models accurately predicted meropenem degradation.
Conclusions:
- Meropenem in human plasma is stable for approximately 80 days when stored at -20 °C.
- Degradation is concentration-dependent, particularly up to 35.1 mg/L.
- The developed polynomial model can estimate original meropenem concentrations in stored samples.
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