Normandie Univ, COBRA, UMR 6014 and FR 3038, Université de Rouen, INSA de Rouen, CNRS, IRCOF, 1 rue Tesnières, CEDEX, 76821 Mont-Saint-Aignan, France.
ORIL Industrie, Servier Group, 13 r Auguste Desgenétais, 76210 Bolbec, France.
Molecules. 2023 Feb 22;28(5):2061. doi: 10.3390/molecules28052061.
Pharmaceutical analysis refers to an area of analytical chemistry that deals with active compounds either by themselves (drug substance) or when formulated with excipients (drug product). In a less simplistic way, it can be defined as a complex science involving various disciplines, e.g., drug development, pharmacokinetics, drug metabolism, tissue distribution studies, and environmental contamination analyses. As such, the pharmaceutical analysis covers drug development to its impact on health and the environment. Moreover, due to the need for safe and effective medications, the pharmaceutical industry is one of the most heavily regulated sectors of the global economy. For this reason, powerful analytical instrumentation and efficient methods are required. In the last decades, mass spectrometry has been increasingly used in pharmaceutical analysis both for research aims and routine quality controls. Among different instrumental setups, ultra-high-resolution mass spectrometry with Fourier transform instruments, i.e., Fourier transform ion cyclotron resonance (FTICR) and Orbitrap, gives access to valuable molecular information for pharmaceutical analysis. In fact, thanks to their high resolving power, mass accuracy, and dynamic range, reliable molecular formula assignments or trace analysis in complex mixtures can be obtained. This review summarizes the principles of the two main types of Fourier transform mass spectrometers, and it highlights applications, developments, and future perspectives in pharmaceutical analysis.
药物分析是分析化学的一个领域,涉及到原料药(活性化合物)或赋形剂(药物产品)制剂中的活性化合物。更简单地说,它可以被定义为一个涉及多个学科的复杂科学,例如药物开发、药代动力学、药物代谢、组织分布研究和环境污染分析。因此,药物分析涵盖了从药物开发到其对健康和环境的影响。此外,由于需要安全有效的药物,制药行业是全球经济监管最严格的行业之一。出于这个原因,需要强大的分析仪器和高效的方法。在过去的几十年中,质谱分析在药物分析中的应用越来越广泛,无论是用于研究目的还是常规质量控制。在不同的仪器设置中,具有傅里叶变换仪器的超高分辨率质谱,即傅里叶变换离子回旋共振(FTICR)和轨道阱,为药物分析提供了有价值的分子信息。事实上,由于其高分辨率、质量精度和动态范围,可以获得可靠的分子公式赋值或复杂混合物中的痕量分析。这篇综述总结了两种主要类型的傅里叶变换质谱仪的原理,并强调了在药物分析中的应用、发展和未来展望。