Generation of stable suspension producer cell lines for serum‐free lentivirus production

Author:

Klimpel Maximilian1ORCID,Terrao Monica1,Bräuer Melina1,Dersch Herbert1,Biserni Martina2,Melo Do Nascimento Larissa1,Schwingal Sarah1,Vogel Jessica E.1,Ferlemann Cathrin1,Brandt Tobias1ORCID,Lal Nikki Indresh1,Bridgeman Krystal3,Petzke Alex3,McDwyer Eva34,Lim Jo Leen3,Oh Seungyoul3,Brumatti Gabriela3,Garcia Minambres Albert3,Otte Ellen3,Noll Thomas5,Pirzas Vicky1,Laux Holger1

Affiliation:

1. CSL Innovation GmbH Marburg Germany

2. CSL Behring AG Bern Switzerland

3. CSL Innovation Melbourne Australia

4. School of Chemical Engineering University of Queensland St Lucia Australia

5. Center for Biotechnology (CeBiTec) University of Bielefeld Bielefeld Germany

Abstract

AbstractThe production of lentiviral vectors (LVs) pseudotyped with the vesicular stomatitis virus envelope glycoprotein (VSV‐G) is limited by the associated cytotoxicity of the envelope and by the production methods used, such as transient transfection of adherent cell lines. In this study, we established stable suspension producer cell lines for scalable and serum‐free LV production derived from two stable, inducible packaging cell lines, named GPRG and GPRTG. The established polyclonal producer cell lines produce self‐inactivating (SIN) LVs carrying a WAS‐T2A‐GFP construct at an average infectious titer of up to 4.64 × 107 TU mL−1 in a semi‐perfusion process in a shake flask and can be generated in less than two months. The derived monoclonal cell lines are functionally stable in continuous culture and produce an average infectious titer of up to 9.38 × 107 TU mL−1 in a semi‐perfusion shake flask process. The producer clones are able to maintain a productivity of >1 × 107 TU mL−1 day−1 for up to 29 consecutive days in a non‐optimized 5 L stirred‐tank bioreactor perfusion process, representing a major milestone in the field of LV manufacturing. As the producer cell lines are based on an inducible Tet‐off expression system, the established process allows LV production in the absence of inducers such as antibiotics. The purified LVs efficiently transduce human CD34+ cells, reducing the LV quantities required for gene and cell therapy applications.

Funder

CSL Limited

Publisher

Wiley

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