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Article

Development of a Clonal and High-Yield Mammalian Cell Line for the Manufacturing of a Hyperactive Human DNase I with Extended Plasma Half-Life Using PASylation® Technology

1
Rentschler Biopharma SE, Erwin-Rentschler-Str. 21, 88471 Laupheim, Germany
2
XL-Protein GmbH, Lise-Meitner-Str. 30, 85354 Freising, Germany
3
Lehrstuhl für Biologische Chemie, Technische Universität München, Emil-Erlenmeyer-Forum 5, 85354 Freising, Germany
*
Authors to whom correspondence should be addressed.
Pharmaceutics 2024, 16(7), 967; https://doi.org/10.3390/pharmaceutics16070967
Submission received: 30 May 2024 / Revised: 27 June 2024 / Accepted: 16 July 2024 / Published: 22 July 2024

Abstract

Cumulative evidence from several pre-clinical studies suggests that restoration of plasma DNase activity in a thrombo-inflammatory state may improve clinical outcomes. Following injury, hyperactivated immune cells release large amounts of granular proteins together with DNA, which often accumulate in the surrounding environment in so-called neutrophil extracellular traps (NETs). Degradation of excess NETs by systemic DNase administration offers a promising therapeutic approach to ameliorate inflammation and dissolve intravascular clots. In order to expand the therapeutic utility of human DNase I, a variant of the enzyme was developed that has both a prolonged systemic half-life and a higher catalytic activity compared to Dornase alfa (Pulmozyme®), the recombinant form of DNase I approved for inhaled therapy of cystic fibrosis. The hyperactive enzyme was “PASylated” by genetic fusion with a strongly hydrophilic and biodegradable PAS-polypeptide to increase its hydrodynamic volume and retard kidney filtration. A stable TurboCell™ CHO-K1-based cell line was generated which is suitable for the future production of PASylated DNase I according to good manufacturing practice (GMP). Furthermore, a robust bioprocess strategy was devised and an effective downstream process was developed. The final protein product is characterized by excellent purity, favorable physicochemical properties, a 14-fold higher DNA-degrading activity than Dornase alfa and a sustained pharmacokinetic profile, with a 22-fold slower clearance in rats.
Keywords: Dornase alfa; half-life; NET; PASylation; Pulmozyme; stroke; thrombolysis Dornase alfa; half-life; NET; PASylation; Pulmozyme; stroke; thrombolysis

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MDPI and ACS Style

Stamm, S.M.; Wagner, R.; Lang, D.A.; Skerra, A.; Gebauer, M. Development of a Clonal and High-Yield Mammalian Cell Line for the Manufacturing of a Hyperactive Human DNase I with Extended Plasma Half-Life Using PASylation® Technology. Pharmaceutics 2024, 16, 967. https://doi.org/10.3390/pharmaceutics16070967

AMA Style

Stamm SM, Wagner R, Lang DA, Skerra A, Gebauer M. Development of a Clonal and High-Yield Mammalian Cell Line for the Manufacturing of a Hyperactive Human DNase I with Extended Plasma Half-Life Using PASylation® Technology. Pharmaceutics. 2024; 16(7):967. https://doi.org/10.3390/pharmaceutics16070967

Chicago/Turabian Style

Stamm, Serge M., Roland Wagner, Dietmar A. Lang, Arne Skerra, and Michaela Gebauer. 2024. "Development of a Clonal and High-Yield Mammalian Cell Line for the Manufacturing of a Hyperactive Human DNase I with Extended Plasma Half-Life Using PASylation® Technology" Pharmaceutics 16, no. 7: 967. https://doi.org/10.3390/pharmaceutics16070967

APA Style

Stamm, S. M., Wagner, R., Lang, D. A., Skerra, A., & Gebauer, M. (2024). Development of a Clonal and High-Yield Mammalian Cell Line for the Manufacturing of a Hyperactive Human DNase I with Extended Plasma Half-Life Using PASylation® Technology. Pharmaceutics, 16(7), 967. https://doi.org/10.3390/pharmaceutics16070967

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