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Application of advanced quantification techniques in nanoparticle-based vaccine development with the Sf9 cell baculovirus expression system

机译:高级定量技术在纳米粒子基疫苗开发中的应用,SF9细胞杆状病毒表达系统

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摘要

Nanoparticles generated by recombinant technologies are receiving increased interest in several applications, particularly the use of virus like particles (VLPs) for the generation of safer vaccines. The characterization and quantification of these nanoparticles with complex structures is very relevant for a better comprehension of the production systems and should circumvent the limitations of the most conventional quantification techniques often used. Here, we applied confocal microscopy, flow virometry and nanoparticle tracking analysis (NTA) to assess the production process of Gag virus-like particles (VLPs) in the Sf9 cell/baculovirus expression vector system (BEVS). These novel techniques were implemented in an optimization workflow based on Design of Experiments (DoE) and desirability functions to determine the best production conditions. A higher level of sensitivity was observed for NTA and confocal microscopy but flow virometry proved to be more accurate. Interestingly, extracellular vesicles were detected as an important source of contamination of this system. The synergistic interplay of viable cell concentration at infection (CCI), multiplicity of infection (MOI) and time of harvest (TOH) was assessed on five objective responses: VLP assembly, baculovirus infection, VLP production, cell viability and VLP productivity. Two global optimal conditions were defined, one targeting the maximal yield of VLPs and the other providing a balance between production and assembled VLPs. In both cases, a low MOl proved to be the best condition to achieve the highest VLP production and productivity yields. Cryo-EM analysis of nanoparticles produced in these conditions showed the typical size and morphology of HIV-1 VLPs. This study presents an integrative approach based on the combination of DoE and direct nanoparticle quantification techniques to comprehensively optimize the production of VLPs and other viral-based biotherapeutics. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由重组技术产生的纳米颗粒正在接受若干应用的增加,特别是使用像颗粒(VLP)的粒子(VLP)的使用,以产生更安全的疫苗。这些纳米颗粒的表征和定量具有复杂结构非常相关,以更好地理解生产系统,并且应该规避经常使用的最常规量化技术的局限性。这里,我们应用共聚焦显微镜,流动病毒学和纳米粒子跟踪分析(NTA)来评估SF9细胞/杆状病毒表达载体系统(BEV)中的GAG病毒样颗粒(VLP)的生产过程。这些新颖技术在基于实验(DOE)的设计和期望功能的优化工作流程中实现,以确定最佳生产条件。对于NTA和共聚焦显微镜观察到较高水平的敏感性,但流动病毒学被证明更准确。有趣的是,细胞外囊泡被检测为该系统的重要污染来源。对感染(CCI)的活性细胞浓度,感染多种感染(MOI)和收获时间(TOH)的协同相互作用是在五种客观的反应中进行评估:VLP组装,杆状病毒感染,VLP生产,细胞活力和VLP生产率。定义了两个全局最佳条件,一个靶向VLP的最大产量,另一个提供了生产和组装VLP之间的平衡。在这两种情况下,低摩尔被证明是实现最高VLP生产和生产率产量的最佳条件。在这些条件下生产的纳米颗粒的冷冻EM分析显示了HIV-1 VLP的典型尺寸和形态。本研究提出了一种基于DOE和直接纳米粒子定量技术的组合的一致方法,以全面优化VLP和其他基于病毒的生物治疗方法的产生。 (c)2019 Elsevier Ltd.保留所有权利。

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