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PNAS Plus: RNAi expression tuning microfluidic screening and genome recombineering for improved protein production in Saccharomyces cerevisiae

机译:PNAS Plus:RNAi表达调节微流体筛选和基因组重组可提高酿酒酵母中的蛋白质产量

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摘要

The cellular machinery that supports protein synthesis and secretion lies at the foundation of cell factory-centered protein production. Due to the complexity of such cellular machinery, the challenge in generating a superior cell factory is to fully exploit the production potential by finding beneficial targets for optimized strains, which ideally could be used for improved secretion of other proteins. We focused on an approach in the yeast Saccharomyces cerevisiae that allows for attenuation of gene expression, using RNAi combined with high-throughput microfluidic single-cell screening for cells with improved protein secretion. Using direct experimental validation or enrichment analysis-assisted characterization of systematically introduced RNAi perturbations, we could identify targets that improve protein secretion. We found that genes with functions in cellular metabolism (YDC1, AAD4, ADE8, and SDH1), protein modification and degradation (VPS73, KTR2, CNL1, and SSA1), and cell cycle (CDC39), can all impact recombinant protein production when expressed at differentially down-regulated levels. By establishing a workflow that incorporates Cas9-mediated recombineering, we demonstrated how we could tune the expression of the identified gene targets for further improved protein production for specific proteins. Our findings offer a high throughput and semirational platform design, which will improve not only the production of a desired protein but even more importantly, shed additional light on connections between protein production and other cellular processes.
机译:支持蛋白质合成和分泌的细胞机制是以细胞工厂为中心的蛋白质生产的基础。由于这种细胞机械的复杂性,建立一个卓越的细胞工厂所面临的挑战是通过找到优化菌株的有益靶标来充分利用生产潜力,该菌株理想地可用于改善其他蛋白质的分泌。我们集中于酿酒酵母中的一种方法,该方法可使用RNAi与高通量微流单细胞筛选相结合的蛋白质表达得到改善的细胞,从而减弱基因表达。使用直接实验验证或系统分析的RNAi扰动进行的富集分析辅助表征,我们可以确定可提高蛋白质分泌的靶标。我们发现,具有细胞代谢功能的基因(YDC1,AAD4,ADE8和SDH1),蛋白质的修饰和降解(VPS73,KTR2,CNL1和SSA1)以及细胞周期(CDC39)都可以在表达时影响重组蛋白质的产生。在不同程度的下调水平。通过建立一个包含Cas9介导的重组的工作流程,我们证明了如何调整已鉴定基因靶标的表达,以进一步提高特定蛋白的蛋白产量。我们的发现提供了高通量和半合理的平台设计,这不仅将改善所需蛋白质的生产,而且更重要的是,将进一步阐明蛋白质生产与其他细胞过程之间的联系。

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