Asor Angela, Metebi Abdullah, Smith Kylie, Last Kurt, Strauss Elaine, Fan Jinda
Institute for Quantitative Health Science and Engineering, Michigan State University, East Lansing, MI 48824, USA.
Department of Chemistry, Michigan State University, East Lansing, MI 48824, USA.
Pharmaceuticals (Basel). 2024 May 25;17(6):680. doi: 10.3390/ph17060680.
The establishment of a compliant radiopharmacy facility within a university setting is crucial for supporting fundamental and preclinical studies, as well as for the production of high-quality radiopharmaceuticals for clinical testing in human protocols as part of Investigational New Drug (IND) applications that are reviewed and approved by the U.S. Food and Drug Administration (FDA). This manuscript details the design and construction of a 550 ft facility, which included a radiopharmacy and a radiochemistry laboratory, to support radiopharmaceutical development research and facilitate translational research projects. The facility was designed to meet FDA guidelines for the production of aseptic radiopharmaceuticals in accordance with current good manufacturing practice (cGMP). A modular hard-panel cleanroom was constructed to meet manufacturing classifications set by the International Organization of Standardization (ISO), complete with a gowning room and an anteroom. Two lead-shielded hot cells and two dual-mini hot cells, connected via underground trenches containing shielded conduits, were installed to optimize radioactive material transfer while minimizing personnel radiation exposure. Concrete blocks and lead bricks provided sufficient and cost-effective radiation shielding for the trenches. Air quality was controlled using pre-filters and high-efficiency particulate air (HEPA) filters to meet cleanroom ISO7 (Class 10,000) standards. A laminar-flow biosafety cabinet was installed in the cleanroom for preparation of sterile dose vials. Noteworthy was a laminar-flow insert in the hot cell that provided a shielded laminar-flow sterile environment meeting ISO5 (class 100) standards. The design included the constant control and monitoring of differential air pressures across the cleanroom, anteroom, gowning room, and controlled research space, as well as maintenance of temperature and humidity. The facility was equipped with state-of-the-art equipment for quality control and release testing of radiopharmaceuticals. Administrative controls and standard operating procedures (SOPs) were established to ensure compliance with manufacturing standards and regulatory requirements. Overall, the design and construction of this radiopharmacy facility exemplified a commitment to advancing fundamental, translational, and clinical applications of radiopharmaceutical research within an academic environment.
在大学环境中建立合规的放射性药房设施对于支持基础研究和临床前研究至关重要,同时对于生产高质量的放射性药物用于人体试验的临床测试也很关键,这些放射性药物是作为研究性新药(IND)申请的一部分,需经美国食品药品监督管理局(FDA)审查和批准。本手稿详细介绍了一个550平方英尺设施的设计和建设,该设施包括一个放射性药房和一个放射化学实验室,以支持放射性药物开发研究并促进转化研究项目。该设施的设计符合FDA关于按照现行良好生产规范(cGMP)生产无菌放射性药物的指南。建造了一个模块化硬面板洁净室,以满足国际标准化组织(ISO)设定的生产分类标准,配有更衣间和前室。安装了两个铅屏蔽热室和两个双小型热室,通过包含屏蔽管道的地下沟槽连接,以优化放射性物质转移,同时将人员辐射暴露降至最低。混凝土块和铅砖为沟槽提供了足够且经济高效的辐射屏蔽。通过预过滤器和高效空气过滤器(HEPA)控制空气质量,以满足洁净室ISO7(10,000级)标准。在洁净室内安装了层流生物安全柜,用于制备无菌剂量小瓶。值得注意的是,热室内有一个层流插入件,提供了一个符合ISO5(100级)标准的屏蔽层流无菌环境。设计包括对洁净室、前室、更衣间和受控研究空间的压差进行持续控制和监测,以及对温度和湿度的维持。该设施配备了用于放射性药物质量控制和放行测试的先进设备。建立了行政控制措施和标准操作规程(SOP),以确保符合生产标准和监管要求。总体而言,这个放射性药房设施的设计和建设体现了在学术环境中推进放射性药物研究的基础、转化和临床应用的承诺。