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Knockout of the lysosomal membrane protein, LAMP2C, improves transient gene expression in HEK293 cells via increased intracellular plasmid availability
  • Kim, Dongwoo ;
  • Kim, Seul Mi ;
  • Lee, Jaejin ;
  • Kim, Jiwon ;
  • Lee, Jae Seong
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Publication Year
2024-01-01
Publisher
John Wiley and Sons Inc
Citation
Biotechnology Journal, Vol.19
Keyword
HEK cellsknockoutLAMP2Clysosomal membrane proteinplasmid degradation transient gene expression
Mesh Keyword
HEK cellHEK293 cellsKnockoutLAMP2CLysosomal membrane proteinLysosomal membranesMembrane proteinsPlasmid degradation transient gene expressionTherapeutic proteinTransient gene expressionsAnimalsCricetinaeCricetulusGene ExpressionHEK293 CellsHumansLysosomal Membrane ProteinsNucleotide Transport ProteinsPlasmidsTransfection
All Science Classification Codes (ASJC)
Applied Microbiology and BiotechnologyMolecular Medicine
Abstract
Plasmid-based transfection can be used in many applications such as transient gene expression (TGE)-based therapeutic protein production. These applications preferentially require maximization of intracellular plasmid availability. Here, we applied a lysosome engineering approach to alleviate lysosome-mediated nucleic acid degradation and enhance the TGE in mammalian cells. By knocking out the lysosomal membrane protein LAMP2C, which is known to be the main player in RNautophagy/DNautophagy (RDA), we significantly improved transient fluorescent protein expression in HEK293 cells by improving the retention rate of transfected plasmids; however, this effect was not observed in CHO cells. Additional knockout of a lysosomal membrane transporter and another RDA player, SIDT2, was ineffective, regardless of the presence of LAMP2C. LAMP2C knockout enhanced TGE-based mAb production in HEK293 cells by up to 2.82-fold increase in specific mAb productivity. Taken together, these results demonstrate that HEK293 cells can be engineered to improve the usage of the transfected plasmid via knockout of the lysosomal membrane protein LAMP2C and provide efficient host cells in TGE systems for therapeutic protein production.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33797
DOI
https://doi.org/10.1002/biot.202300017
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Type
Article
Funding
This research was supported by the NRF funded by the Korean government (2021R1A2C4002733 and 2019R1A6A1A11051471).
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College of Bio-convergence Engineering
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