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首页> 外文期刊>Biotechnology Progress >Decreased Protein Expression and Intermittent Recoveries in BiP Levels Result from Cellular Stress during Heterologous Protein Expression in Saccharomyces cerevisiae
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Decreased Protein Expression and Intermittent Recoveries in BiP Levels Result from Cellular Stress during Heterologous Protein Expression in Saccharomyces cerevisiae

机译:酿酒酵母中异源蛋白质表达过程中细胞应激导致BiP水平蛋白质表达减少和间歇性恢复

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Cells are inherently robust to environmental perturbations and have evolved to recover readily from short-term exposure to heat, pH changes, and nutrient deprivation during times of stress. The stress of unfolded protein accumulation has been implicated previously in low protein yields during heterologous protein expression. Here we describe the dynamics of the response to this stress, termed the unfolded protein Saccharomyces cerevisiae. Expression of scFv decreased the growth rate fo yeast cells whether the scFv was expressed from single-copy plasmids or integrated into the chromosome. However, the growth rates recovered at longer expression times, and surprisingly, the recovery occurred more quickly in the high-copy integration strains. The presence of a functional UPR patway was necessary for a recovery of normal growth rates. During the growth inhibition, the UPR pathway appeared to be activated, resulting in decreased intracellular scFv levels and intermittent recovery of the chaperone BiP within the endoplasmic reticulum. Intracellular scFv was observed primarily in the endoplasmic reticulum, consistent with activation of the UPR pathway. Although the intracellular scFv levels dropped over the course of the expression, this was not a result of scFv secretion. A functional UPR pathway was necessary for the drop in intracellular scFv, suggesting that the decrease was a direct response of UPR activation. Taken together, these results suggest that control of heterologous gene expression to avoid UPR activation will result in higher production levels.
机译:细胞天生具有抵御环境干扰的能力,并且已经进化为可以从短期暴露于热量,pH值变化和压力期间营养缺乏的情况中恢复过来。先前已经表明,在异源蛋白表达过程中,低蛋白产量牵涉到未折叠蛋白积聚的压力。在这里,我们描述了对这种压力的响应的动力学,称为未折叠的酿酒酵母。无论scFv是从单拷贝质粒表达还是整合到染色体中,scFv的表达都会降低酵母细胞的生长速率。然而,生长速度在更长的表达时间恢复,并且令人惊讶的是,在高拷贝整合菌株中恢复更快地发生。为了恢复正常的生长速度,必须存在功能性UPR通道。在生长抑制期间,UPR途径似乎被激活,导致细胞内scFv水平降低和内质网中伴侣BiP的间歇性恢复。主要在内质网中观察到细胞内scFv,与UPR途径的激活一致。尽管细胞内scFv水平在表达过程中下降,但这不是scFv分泌的结果。功能性的UPR通路对于细胞内scFv的下降是必需的,表明该下降是UPR激活的直接反应。综上所述,这些结果表明,控制异源基因表达以避免UPR激活将导致更高的产量。

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