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Hydrofoam and oxygen headspace bioreactors improve cell-free therapeutic protein production yields through enhanced oxygen transport

机译:水红液和氧气页座生物反应器通过增强的氧气运输改善无细胞治疗蛋白质产量的产量

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Protein therapeutics are powerful tools in the fight against diabetes, cancers, growth disorders, and many other debilitating diseases. However, availability is limited due to cost and complications of production from living organisms. To make life-saving protein therapeutics more available to the world, the possibility of magistral or point-of-care protein therapeutic production has gained focus. The recent invention and optimization of lyophilized "cell-free" protein synthesis reagents and its demonstrated ability to produce highly active versions of FDA-approved cancer therapeutics have increased its potential for low-cost, single-batch, magistral medicine. Here we present for the first time the concept of increased oxygen mass transfer in small-batch, cell-free protein synthesis (CFPS) reactions through air-water foams. These "hydrofoam" reactions increased CFPS yields by up to 100%. Contrary to traditional protein synthesis using living organisms, where foam bubbles cause cell-lysis and production losses, hydrofoam CFPS reactions are "cell-free" and better tolerate foaming. Simulation and experimental results suggest that oxygen transfer is limiting in even small volume batch CFPS reactors and that the hydrofoam format improved oxygen transfer. This is further supported by CFPS reactions achieving higher yields when oxygen gas replaces air in the headspace of batch reactions. Improving CFPS yields with hydrofoam reduces the overall cost of biotherapeutic production, increasing availability to the developing world. Beyond protein therapeutic production, hydrofoam CFPS could also be used to enhance other CFPS applications including biosensing, biomanufacturing, and biocatalysis.
机译:蛋白质治疗剂是对抗糖尿病,癌症,生长障碍和许多其他衰弱疾病的强大工具。但是,由于生物体的成本和产量并发症,可用性受到限制。为了使拯救生命的蛋白质治疗方法更适用于世界,裁员或护理点蛋白治疗生产的可能性已经获得了重点。最近的发明和优化冻干的“无细胞”蛋白质合成试剂及其制备高活性版本的FDA批准的癌症治疗剂的能力增加了其低成本,单批,杂志的潜力。在这里,我们首次出现了通过空气水泡沫的小批量,无细胞蛋白质合成(CFPS)反应增加氧气传递增加的概念。这些“加氢泡沫塑料”反应增加CFP率高至100%。与使用生物体的传统蛋白质合成相反,其中泡沫泡沫导致细胞裂解和生产损失,水力泡沫的CFP反应是“无细胞”,更好地耐受发泡。模拟和实验结果表明,氧气转移在甚至小体积分批CFPS反应器中限制,水合泡沫塑料形式改善了氧气转移。当氧气在分批反应顶部空间中的空气取代空气时,CFPS反应进一步支持这一点。利用水荷改善CFPS产量降低了生物治疗生产的总成本,增加了发展中国家的可用性。除蛋白质治疗生产外,加氢泡沫塑料CFP还可用于增强其他CFPS应用,包括生物传感,生物制造和生物分析。

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