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Robust high-throughput batch screening method in 384-well format with optical in-line resin quantification.

Jörg Kittelmann1, Marcel Ottens2, Jürgen Hubbuch1

  • 1Section IV: Biomolecular Separation Engineering, Institute of Engineering in Life Sciences, Karlsruhe Institute of Technology (KIT), Engler-Bunte-Ring 1, 76131 Karlsruhe, Germany.

Journal of Chromatography. B, Analytical Technologies in the Biomedical and Life Sciences
|March 14, 2015
PubMed
Summary

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This summary is machine-generated.

A new optical method enables resin quantification for high-throughput screening (HTS) in 384-well plates. This advances protein-adsorbent interaction studies, offering increased efficiency and data quality in downstream process development.

Area of Science:

  • Biotechnology
  • Chemical Engineering
  • Analytical Chemistry

Background:

  • High-throughput batch screening is crucial for downstream process development.
  • Current methods in 96-well formats are limited by sample consumption and throughput.
  • No established screening process exists for the 384-well microplate format.

Purpose of the Study:

  • Introduce a novel in-well resin quantification method for 384-well microplates.
  • Develop a high-throughput screening (HTS) batch isotherm process for 384-well format.
  • Enable screening of isotherm parameters with reduced sample and time.

Main Methods:

  • Developed an optical method for in-well resin quantification.
  • Utilized resin volumes as low as 0.1 μL in 384-well microplates.
Keywords:
Batch isothermBootstrap analysisHigh-throughput screening (HTS)Liquid handling station (LHS)Monte CarloResin quantification

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  • Integrated optical sample volume quantification for isotherm parameter screening.
  • Main Results:

    • Successfully implemented an HTS batch isotherm process in the 384-well format.
    • Quantified resin volumes optically with high precision.
    • Validated results using bootstrap analysis and Monte Carlo error propagation studies.

    Conclusions:

    • The new method facilitates screening processes in the 384-well format on HTS stations.
    • This approach enhances screening data quality and significantly increases throughput.
    • Advances protein-adsorbent interaction studies and downstream process development.