Baoning Su, Jing Zhang, Xiaojuan Deng, Huiwen Deng, Songzi Jiang, Hui Fu, Jian Wang, Alan Wei, Qingwen Zhang, Jie Liu, Sunil Babu Paudel, Taijun Hang, Xiaofei Lu, Wei Zhang, Guosheng Ding, Li Gan, Xianzhong Yan, Yang Liu, Caiyu Zhang, Yang Liu
{"title":"使用内部校准方法的平台1H定量核磁共振方法的协同研究:面向新手的能力建设","authors":"Baoning Su, Jing Zhang, Xiaojuan Deng, Huiwen Deng, Songzi Jiang, Hui Fu, Jian Wang, Alan Wei, Qingwen Zhang, Jie Liu, Sunil Babu Paudel, Taijun Hang, Xiaofei Lu, Wei Zhang, Guosheng Ding, Li Gan, Xianzhong Yan, Yang Liu, Caiyu Zhang, Yang Liu","doi":"10.1002/mrc.5532","DOIUrl":null,"url":null,"abstract":"<p><p>Over the past 20 years, the use of quantitative nuclear magnetic resonance (qNMR) technology has grown significantly in pharmaceutical industry. However, its broader adoption is often limited by specialized expertise required to implement best practices. Recent discussions within the qNMR community in China (qNMR-C) have highlighted the benefits of establishing an applicable qNMR platform method-one that serves as a universal approach, adaptable across multiple products. This approach aims to standardize a single set of qNMR parameters to address the majority of quantitative applications and making qNMR more accessible, particularly for researchers new to the field. The present study outlines the rationale behind the proposed qNMR platform method and demonstrates its strategic framework through a series of designed tests. Key parameters influencing qNMR accuracy and precision, including signal-to-noise ratio, data processing, integration approaches, relaxation delays, T<sub>1</sub> relaxation times, and sample weight, were systematically evaluated. A collaborative effort involving 12 NMR instruments across eight laboratories assessed the method's applicability and demonstrated its proper design space. Another objective of this study is to streamline the qNMR workflow, enabling novices to produce reliable, high-quality data early in their learning while ensuring reproducible and meaningful results. Furthermore, this work calls upon the global qNMR community to engage in the continued validation of the proposed platform method, fostering collective knowledge and verifying its robustness across diverse applications.</p>","PeriodicalId":18142,"journal":{"name":"Magnetic Resonance in Chemistry","volume":" ","pages":""},"PeriodicalIF":1.9000,"publicationDate":"2025-05-21","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A Collaborative Study on Platform <sup>1</sup>H Quantitative NMR Method Using Internal Calibration Methodology: Towards Capacity Building for Novices.\",\"authors\":\"Baoning Su, Jing Zhang, Xiaojuan Deng, Huiwen Deng, Songzi Jiang, Hui Fu, Jian Wang, Alan Wei, Qingwen Zhang, Jie Liu, Sunil Babu Paudel, Taijun Hang, Xiaofei Lu, Wei Zhang, Guosheng Ding, Li Gan, Xianzhong Yan, Yang Liu, Caiyu Zhang, Yang Liu\",\"doi\":\"10.1002/mrc.5532\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Over the past 20 years, the use of quantitative nuclear magnetic resonance (qNMR) technology has grown significantly in pharmaceutical industry. 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A Collaborative Study on Platform 1H Quantitative NMR Method Using Internal Calibration Methodology: Towards Capacity Building for Novices.
Over the past 20 years, the use of quantitative nuclear magnetic resonance (qNMR) technology has grown significantly in pharmaceutical industry. However, its broader adoption is often limited by specialized expertise required to implement best practices. Recent discussions within the qNMR community in China (qNMR-C) have highlighted the benefits of establishing an applicable qNMR platform method-one that serves as a universal approach, adaptable across multiple products. This approach aims to standardize a single set of qNMR parameters to address the majority of quantitative applications and making qNMR more accessible, particularly for researchers new to the field. The present study outlines the rationale behind the proposed qNMR platform method and demonstrates its strategic framework through a series of designed tests. Key parameters influencing qNMR accuracy and precision, including signal-to-noise ratio, data processing, integration approaches, relaxation delays, T1 relaxation times, and sample weight, were systematically evaluated. A collaborative effort involving 12 NMR instruments across eight laboratories assessed the method's applicability and demonstrated its proper design space. Another objective of this study is to streamline the qNMR workflow, enabling novices to produce reliable, high-quality data early in their learning while ensuring reproducible and meaningful results. Furthermore, this work calls upon the global qNMR community to engage in the continued validation of the proposed platform method, fostering collective knowledge and verifying its robustness across diverse applications.
期刊介绍:
MRC is devoted to the rapid publication of papers which are concerned with the development of magnetic resonance techniques, or in which the application of such techniques plays a pivotal part. Contributions from scientists working in all areas of NMR, ESR and NQR are invited, and papers describing applications in all branches of chemistry, structural biology and materials chemistry are published.
The journal is of particular interest not only to scientists working in academic research, but also those working in commercial organisations who need to keep up-to-date with the latest practical applications of magnetic resonance techniques.