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Generic Chemometric Models for Metabolite Concentration Prediction Based on Raman Spectra.
Yousefi-Darani, Abdolrahim; Paquet-Durand, Olivier; Von Wrochem, Almut; Classen, Jens; Tränkle, Jens; Mertens, Mario; Snelders, Jeroen; Chotteau, Veronique; Mäkinen, Meeri; Handl, Alina; Kadisch, Marvin; Lang, Dietmar; Dumas, Patrick; Hitzmann, Bernd.
Afiliação
  • Yousefi-Darani A; Department of Process Analytics und Cereal Science, Institute for Food Science and Biotechnology, University of Hohenheim, Garbenstr. 23, 70599 Stuttgart, Germany.
  • Paquet-Durand O; Department of Process Analytics und Cereal Science, Institute for Food Science and Biotechnology, University of Hohenheim, Garbenstr. 23, 70599 Stuttgart, Germany.
  • Von Wrochem A; Department of Process Analytics und Cereal Science, Institute for Food Science and Biotechnology, University of Hohenheim, Garbenstr. 23, 70599 Stuttgart, Germany.
  • Classen J; Bayer AG, L Kaiser-Wilhelm-Allee 1, 51373 Leverkusen, Germany.
  • Tränkle J; Bayer AG, L Kaiser-Wilhelm-Allee 1, 51373 Leverkusen, Germany.
  • Mertens M; Sanofi, Cipalstraat 8, 2440 Geel, Belgium.
  • Snelders J; Sanofi, Cipalstraat 8, 2440 Geel, Belgium.
  • Chotteau V; Department of Industrial Biotechnology, School of Engineering Sciences in Chemistry, Biotechnology and Health, Royal Institute of Technology (KTH), 109 06 Stockholm, Sweden.
  • Mäkinen M; Department of Industrial Biotechnology, School of Engineering Sciences in Chemistry, Biotechnology and Health, Royal Institute of Technology (KTH), 109 06 Stockholm, Sweden.
  • Handl A; Rentschler Biopharma SE, Erwin-Rentschler-Street 21, 88471 Laupheim, Germany.
  • Kadisch M; Rentschler Biopharma SE, Erwin-Rentschler-Street 21, 88471 Laupheim, Germany.
  • Lang D; Rentschler Biopharma SE, Erwin-Rentschler-Street 21, 88471 Laupheim, Germany.
  • Dumas P; GSK, Rue de l'Institut 89, 1330 Rixensart, Belgium.
  • Hitzmann B; Department of Process Analytics und Cereal Science, Institute for Food Science and Biotechnology, University of Hohenheim, Garbenstr. 23, 70599 Stuttgart, Germany.
Sensors (Basel) ; 22(15)2022 Jul 26.
Article em En | MEDLINE | ID: mdl-35898085
ABSTRACT
Chemometric models for on-line process monitoring have become well established in pharmaceutical bioprocesses. The main drawback is the required calibration effort and the inflexibility regarding system or process changes. So, a recalibration is necessary whenever the process or the setup changes even slightly. With a large and diverse Raman dataset, however, it was possible to generate generic partial least squares regression models to reliably predict the concentrations of important metabolic compounds, such as glucose-, lactate-, and glutamine-indifferent CHO cell cultivations. The data for calibration were collected from various cell cultures from different sites in different companies using different Raman spectrophotometers. In testing, the developed "generic" models were capable of predicting the concentrations of said compounds from a dilution series in FMX-8 mod medium, as well as from an independent CHO cell culture. These spectra were taken with a completely different setup and with different Raman spectrometers, demonstrating the model flexibility. The prediction errors for the tests were mostly in an acceptable range (<10% relative error). This demonstrates that, under the right circumstances and by choosing the calibration data carefully, it is possible to create generic and reliable chemometric models that are transferrable from one process to another without recalibration.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Análise Espectral Raman / Quimiometria Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Análise Espectral Raman / Quimiometria Idioma: En Ano de publicação: 2022 Tipo de documento: Article