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Enhancement of hybridoma formation clonability and cell proliferation in a nanoparticle-doped aqueous environment

机译:纳米颗粒掺杂水环境中杂交瘤形成克隆性和细胞增殖的增强

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摘要

BackgroundThe isolation and production of human monoclonal antibodies is becoming an increasingly important pursuit as biopharmaceutical companies migrate their drug pipelines away from small organic molecules. As such, optimization of monoclonal antibody technologies is important, as this is becoming the new rate-limiting step for discovery and development of new pharmaceuticals. The major limitations of this system are the efficiency of isolating hybridoma clones, the process of stabilizing these clones and optimization of hybridoma cell secretion, especially for large-scale production.Many previous studies have demonstrated how perturbations in the aqueous environment can impact upon cell biology. In particular, radio frequency (RF) irradiation of solutions can have dramatic effects on behavior of solutions, cells and in particular membrane proteins, although this effect decays following removal of the RF. Recently, it was shown that nanoparticle doping of RF irradiated water (NPD water) produced a stabilized aqueous medium that maintained the characteristic properties of RF irradiated water for extended periods of time. Therefore, the ordering effect in water of the RF irradiation can now be studied in systems that required prolonged periods for analysis, such as eukaryotic cell culture. Since the formation of hybridoma cells involves the formation of a new membrane, a process that is affected by the surrounding aqueous environment, we tested these nanoparticle doped aqueous media formulations on hybridoma cell production.
机译:背景技术随着生物制药公司将药物管道从有机小分子转移到其他地方,人类单克隆抗体的分离和生产正变得越来越重要。因此,单克隆抗体技术的优化很重要,因为这已成为发现和开发新药物的新的限速步骤。该系统的主要局限性在于分离杂交瘤克隆的效率,稳定这些克隆的过程以及优化杂交瘤细胞分泌的能力,特别是对于大规模生产而言。以前的许多研究表明,水环境中的扰动如何影响细胞生物学。特别地,溶液的射频辐射可以对溶液,细胞特别是膜蛋白的行为产生显着影响,尽管这种影响在去除RF后会减弱。近来,显示出RF辐射水(NPD水)的纳米颗粒掺杂产生稳定的水性介质,其在延长的时间段内保持RF辐射水的特性。因此,现在可以在需要长时间分析的系统(例如真核细胞培养)中研究RF辐射在水中的有序效应。由于杂交瘤细胞的形成涉及新膜的形成,该过程受周围水环境的影响,因此我们在杂交瘤细胞生产中测试了这些纳米颗粒掺杂的水介质制剂。

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