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Published on: March 17, 2023
Machine learning aided UV absorbance spectroscopy for microbial contamination in cell therapy products
Shruthi Pandi Chelvam1, Alice Jie Ying Ng1, Jiayi Huang1
1Critical Analytics for Manufacturing Personalized Medicine (CAMP), Singapore-MIT Alliance for Research and Technology Centre, Singapore, Singapore.
Machine learning-enhanced UV spectroscopy rapidly detects microbial contamination in cell therapy products (CTP). This label-free method analyzes absorbance spectra for early safety assurance during CTP manufacturing.
Area of Science:
- Biotechnology
- Analytical Chemistry
- Machine Learning
Background:
- Cell therapy product (CTP) manufacturing requires stringent microbial contamination monitoring.
- Current methods can be time-consuming, delaying product release and safety assessments.
Purpose of the Study:
- To demonstrate the feasibility of machine learning-aided UV absorbance spectroscopy for rapid, in-process microbial contamination detection in CTPs.
- To establish a label-free, rapid, and low-volume method for early contamination identification.
Main Methods:
- Utilized a one-class support vector machine (SVM) to analyze UV absorbance spectra of cell cultures.
- Developed a method for rapid output (<30 minutes) with minimal sample preparation and volume (<1 mL).
- Tested detection limits by spiking various microbial organisms into mesenchymal stromal cells supernatant from multiple donors.
Main Results:
- Successfully detected microbial contamination at low inoculums (10 Colony Forming Units [CFUs]).
- Achieved mean true positive and negative rates of 92.7% and 77.7%, respectively.
- Demonstrated contamination detection comparable to compendial USP <71> testing, with detection of E. coli at 21 hours.
Conclusions:
- Machine learning-aided UV spectroscopy is a feasible approach for in-process microbial contamination detection in CTP manufacturing.
- This technique offers rapid, label-free, and sensitive monitoring for enhanced CTP safety.
- Potential application for real-time, continuous culture monitoring across various CTP manufacturing stages.
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