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A step forward to improve recombinant protein production in Pichia pastoris : from specific growth rate effect on protein secretion to carbon-starving conditions as advanced strategy.

机译:改善巴斯德毕赤酵母中重组蛋白生产的步骤:从对蛋白质分泌的特定生长速度影响到碳饥饿条件作为先进的策略。

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摘要

The recombinant protein production platform based on the GAP promoter and Pichia pastoris as a host has become a very promising system from an industrial point of view. The need for highly productive bioprocesses gives grounds for the optimization of fermentation strategies maximizing yields and/or productivities, which are often associated with cell growth. Coherent with previous studies, a positive effect of high specific growth rate (μ) on the productivity was observed in carbon-limited chemostat cultivations secreting an antibody fragment. Notably, no significant impact of this factor could be observed in the balance intra- and extracellular of the product. Accordingly, fed-batch cultures operating at a constant high μ were conducted. Furthermore, short carbon-starving periods were introduced along the exponential substrate feeding phase. Strikingly, it was observed an important increase of specific production rate (qP) during such short carbon-starving periods in relation to the exponential substrate feeding intervals. Therefore, the application of carbon-starving periods as an innovative operational strategy was proposed, resulting into increments up to 50% of both yields and total production. The implementation of the proposed substrate feeding profiles should be complementary to cell engineering strategies to improve the relation qP vs μ, thereby enhancing the overall bioprocess efficiency.
机译:从工业角度来看,以GAP启动子和巴斯德毕赤酵母为宿主的重组蛋白生产平台已成为非常有前途的系统。对高产生物工艺的需求为优化发酵策略提供了基础,从而使产量和/或生产率最大化,而这通常与细胞生长有关。与先前的研究一致,在分泌抗体片段的碳限制的恒化器培养物中观察到高比生长率(μ)对生产率的积极影响。值得注意的是,在产品的细胞内和细胞外平衡中未观察到该因素的显着影响。因此,进行了以恒定高μ操作的分批补料培养。此外,沿指数基底进料阶段引入了短的碳饥饿期。令人惊讶地,观察到在如此短的碳饥饿期中,相对于指数底物进料间隔,比生产率(qP)显着增加。因此,提出了将碳匮乏时期作为一种创新的运营策略的应用,从而使产量和总产量均增加了50%。拟议的底物进料图的实施应与细胞工程策略互补,以改善qP与μ的关系,从而提高整体生物工艺效率。

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    Garcia Ortega Xavier;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 eng
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