4.3 Article

Multivariate data analysis of growth medium trends affecting antibody glycosylation

Journal

BIOTECHNOLOGY PROGRESS
Volume 36, Issue 1, Pages -

Publisher

WILEY
DOI: 10.1002/btpr.2903

Keywords

bioprocessing; galactosylation; glutamine; glycosylation; MVDA

Funding

  1. CDER Critical Path Program [1-13]
  2. Oak Ridge Institute for Science and Education through Internship/Research Participation Program at the Office of Biotechnology Products, U.S. Food and Drug Administration

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Use of multivariate data analysis for the manufacturing of biologics has been increasing due to more widespread use of data-generating process analytical technologies (PAT) promoted by the US FDA. To generate a large dataset on which to apply these principles, we used an in-house model CHO DG44 cell line cultured in automated micro bioreactors alongside PAT with four commercial growth media focusing on antibody quality through N-glycosylation profiles. Using univariate analyses, we determined that different media resulted in diverse amounts of terminal galactosylation, high mannose glycoforms, and aglycosylation. Due to the amount of in-process data generated by PAT instrumentation, multivariate data analysis was necessary to ascertain which variables best modeled our glycan profile findings. Our principal component analysis revealed components that represent the development of glycoforms into terminally galacotosylated forms (G1F and G2F), and another that encompasses maturation out of high mannose glycoforms. The partial least squares model additionally incorporated metabolic values to link these processes to glycan outcomes, especially involving the consumption of glutamine. Overall, these approaches indicated a tradeoff between cellular productivity and product quality in terms of the glycosylation. This work illustrates the use of multivariate analytical approaches that can be applied to complex bioprocessing problems for identifying potential solutions.

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