Unraveling Cytotoxicity in HEK293 Cells During Recombinant AAV Production for Gene Therapy Applications

IF 3.2 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Pranay Ladiwala, Nelson Ndahiro, Pricila Hauk, Junneng Wen, Justin Sargunas, Yu-Ju Chen, Erik Barton, Michael J. Betenbaugh
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Abstract

Transient transfection of HEK293 cells represents the dominant technique for the production of recombinant adeno-associated virus (AAV) vectors. However, recombinant AAV (rAAV) production is cytotoxic, potentially impacting process performance, product yields, and quality, complicating downstream processing. This study characterizes cell death response for rAAV producing HEK293 cells and explores the potential to control cytotoxicity. Initial analysis of triple transfected cells revealed caspase-mediated apoptosis as a likely mechanism of cellular death. Next, the causes of this cytotoxicity were investigated by dissecting transfection steps. Exposing cells to polyethyleneimine (PEI) alone or complexed with a blank plasmid at typical concentrations had a limited impact on cell growth. However, the inclusion of plasmid constructs containing genes to produce rAAVs triggered significant cell death, with the helper plasmid being the most toxic both independently and in combination with packaging and transgene plasmids. Additionally, apoptosis in transfected cultures could be inhibited using the pan-caspase inhibitor, N-benzyloxycarbonyl-Val-Ala-Asp-fluoromethylketone (Z-VAD.fmk), leading to a 65% increase in peak viable cell density (VCD). Although the rAAV genome titer remained relatively unaltered, capsid levels declined upon cell death inhibition. Consequently, the ratio of full to empty capsids, an important product quality attribute (PQA) for rAAVs increased following caspase inhibition. This study provides insights into apoptosis activation in rAAVs and uncovers avenues for its modulation to alter PQAs.

Abstract Image

在重组AAV生产过程中揭示HEK293细胞的细胞毒性用于基因治疗
瞬时转染HEK293细胞是生产重组腺相关病毒(AAV)载体的主要技术。然而,重组AAV (rAAV)生产具有细胞毒性,可能影响工艺性能、产品产量和质量,使下游加工复杂化。本研究表征了rAAV产生HEK293细胞的细胞死亡反应,并探索了控制细胞毒性的潜力。三重转染细胞的初步分析显示,caspase介导的细胞凋亡可能是细胞死亡的机制。接下来,通过解剖转染步骤来研究这种细胞毒性的原因。将细胞单独暴露于聚乙烯亚胺(PEI)或在典型浓度下与空白质粒复合对细胞生长的影响有限。然而,包含产生raav的基因的质粒构建物引发了显著的细胞死亡,辅助质粒无论单独使用还是与包装质粒和转基因质粒结合使用都是毒性最大的。此外,使用pan-caspase抑制剂n- benzyloxycarbonyl- val - ala - asp - fluorom甲基酮(Z-VAD.fmk)可以抑制转染培养物中的凋亡,导致峰值活细胞密度(VCD)增加65%。尽管rAAV基因组滴度保持相对不变,但衣壳水平在细胞死亡抑制后下降。因此,在caspase抑制后,raav的重要产品质量属性(PQA)——满衣壳与空衣壳的比例增加。本研究提供了对raav细胞凋亡激活的见解,并揭示了其调节pqa的途径。
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来源期刊
Biotechnology Journal
Biotechnology Journal Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
2.10%
发文量
123
审稿时长
1.5 months
期刊介绍: Biotechnology Journal (2019 Journal Citation Reports: 3.543) is fully comprehensive in its scope and publishes strictly peer-reviewed papers covering novel aspects and methods in all areas of biotechnology. Some issues are devoted to a special topic, providing the latest information on the most crucial areas of research and technological advances. In addition to these special issues, the journal welcomes unsolicited submissions for primary research articles, such as Research Articles, Rapid Communications and Biotech Methods. BTJ also welcomes proposals of Review Articles - please send in a brief outline of the article and the senior author''s CV to the editorial office. BTJ promotes a special emphasis on: Systems Biotechnology Synthetic Biology and Metabolic Engineering Nanobiotechnology and Biomaterials Tissue engineering, Regenerative Medicine and Stem cells Gene Editing, Gene therapy and Immunotherapy Omics technologies Industrial Biotechnology, Biopharmaceuticals and Biocatalysis Bioprocess engineering and Downstream processing Plant Biotechnology Biosafety, Biotech Ethics, Science Communication Methods and Advances.
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