Abstract <p>Several strategies have been developed in recent years to improve virus-like particle (VLP)-based vaccine production processes. Among these, the metabolic engineering of cell lines has been one of the most promising approaches. Based on previous work and a proteomic analysis of HEK293 cells producing Human Immunodeficiency Virus-1 (HIV-1) Gag VLPs under transient transfection, four proteins susceptible of enhancing VLP production were identified: ataxia telangiectasia mutated (ATM), ataxia telangiectasia and rad3-related (ATR), DNA-dependent protein kinase catalytic subunit (DNA-PKcs), and retinal rod rhodopsin-sensitive cGMP 3',5'-cyclic phosphodiesterase subunit delta (PDEδ). The knockdown of ATM, ATR, and PDEδ in HEK293 cells increased HIV-1 VLP titers in the supernatant by 3.4-, 2.1-, and 2.2-fold, respectively. Also, possible metabolic synergies between plasmids were investigated by statistical design of experiments (DoE), enabling us to identify the optimal production strategy, that was further demonstrated at lab-scale stirred tank bioreactor operated in perfusion, significantly increasing both VLPs specific and volumetric productivities to 8.3 × 10<sup>3</sup> VLPs/cellxday and 7.5 × 10<sup>12</sup> VLPs/Lxday, respectively.</p> Key points <p><i>• ATM, ATR, and PDEδ knockdowns increased VLP production in HEK293 cells.</i></p> <p><i>• Knockdown of ATM increased budding efficiency and extracellular vesicle concentration.</i></p> <p><i>• ATM knockdown could be intensified to bioreactor scale operated in perfusion.</i></p> Graphical Abstract <p></p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Targeted knockdown of ATM, ATR, and PDEδ increases Gag HIV-1 VLP production in HEK293 cells

  • Andy Díaz-Maneh,
  • Pol Pérez-Rubio,
  • Cristina Rigau Granes,
  • Laia Bosch-Molist,
  • Jesús Lavado-García,
  • Francesc Gòdia,
  • Laura Cervera

摘要

Abstract

Several strategies have been developed in recent years to improve virus-like particle (VLP)-based vaccine production processes. Among these, the metabolic engineering of cell lines has been one of the most promising approaches. Based on previous work and a proteomic analysis of HEK293 cells producing Human Immunodeficiency Virus-1 (HIV-1) Gag VLPs under transient transfection, four proteins susceptible of enhancing VLP production were identified: ataxia telangiectasia mutated (ATM), ataxia telangiectasia and rad3-related (ATR), DNA-dependent protein kinase catalytic subunit (DNA-PKcs), and retinal rod rhodopsin-sensitive cGMP 3',5'-cyclic phosphodiesterase subunit delta (PDEδ). The knockdown of ATM, ATR, and PDEδ in HEK293 cells increased HIV-1 VLP titers in the supernatant by 3.4-, 2.1-, and 2.2-fold, respectively. Also, possible metabolic synergies between plasmids were investigated by statistical design of experiments (DoE), enabling us to identify the optimal production strategy, that was further demonstrated at lab-scale stirred tank bioreactor operated in perfusion, significantly increasing both VLPs specific and volumetric productivities to 8.3 × 103 VLPs/cellxday and 7.5 × 1012 VLPs/Lxday, respectively.

Key points

• ATM, ATR, and PDEδ knockdowns increased VLP production in HEK293 cells.

• Knockdown of ATM increased budding efficiency and extracellular vesicle concentration.

• ATM knockdown could be intensified to bioreactor scale operated in perfusion.

Graphical Abstract