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Different Routes of Protein Folding Contribute to Improved Protein Production in Saccharomyces cerevisiae

机译:不同的蛋白质折叠途径有助于改善<命名含量含量型=“属型”> Saccharomyces Cerevisiae

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Protein folding plays an important role in protein maturation and secretion. In recombinant protein production, many studies have focused on the folding pathway to improve productivity. Here, we identified two different routes for improving protein production by yeast. We found that improving folding precision is a better strategy. Dysfunction of this process is also associated with several aberrant protein-associated human diseases. Here, our findings about the role of glucosidase Cwh41p in the precision control system and the characterization of the strain with a more precise folding process could contribute to the development of novel therapeutic strategies. ABSTRACT Protein folding is often considered the flux controlling process in protein synthesis and secretion. Here, two previously isolated Saccharomyces cerevisiae strains with increased α-amylase productivity were analyzed in chemostat cultures at different dilution rates using multi-omics data. Based on the analysis, we identified different routes of the protein folding pathway to improve protein production. In the first strain, the increased abundance of proteins working on the folding process, coordinated with upregulated glycogen metabolism and trehalose metabolism, helped increase α-amylase productivity 1.95-fold compared to the level in the original strain in chemostat culture at a dilution rate of 0.2/h. The second strain further strengthened the folding precision to improve protein production. More precise folding helps the cell improve protein production efficiency and reduce the expenditure of energy on the handling of misfolded proteins. As calculated using an enzyme-constrained genome-scale metabolic model, the second strain had an increased productivity of 2.36-fold with lower energy expenditure than that of the original under the same condition. Further study revealed that the regulation of N -glycans played an important role in the folding precision control and that overexpression of the glucosidase Cwh41p can significantly improve protein production, especially for the strains with improved folding capacity but lower folding precision. Our findings elucidated in detail the mechanisms in two strains having improved protein productivity and thereby provided novel insights for industrial recombinant protein production as well as demonstrating how multi-omics analysis can be used for identification of novel strain-engineering targets.
机译:蛋白质折叠在蛋白质成熟和分泌中起重要作用。在重组蛋白质生产中,许多研究集中在折叠途径上以提高生产率。在这里,我们确定了两种不同的途径,用于通过酵母改善蛋白质产生。我们发现提高折叠精度是更好的策略。该方法的功能障碍也与几种异常蛋白质相关的人类疾病有关。在这里,我们关于葡萄糖糖苷CWH41P在精密控制系统中的作用以及具有更精确的折叠过程的菌株的表征可能有助于开发新的治疗策略。摘要蛋白质折叠通常被认为是蛋白质合成和分泌中的助焊剂控制过程。这里,使用多OMICS数据的不同稀释率的化学抑制率分析了两种以前分离的酿酒酶酿酒酵母菌株,以不同的稀释速率分析了α-淀粉酶生产率。基于分析,我们确定了蛋白质折叠途径的不同途径,以改善蛋白质产生。在第一种菌株中,在折叠过程中加工的蛋白质的增加,与上调的糖原代谢和海藻糖代谢有助于增加α-淀粉酶的生产率1.95倍,与稀释率的化学抑制培养物中的原始菌株的水平相比0.2 / h。第二种应变进一步加强了折叠精度以改善蛋白质产生。更精确的折叠有助于细胞改善蛋白质生产效率,并降低处理错误折叠蛋白质的能量支出。如使用酶受约束的基因组级代谢模型计算,第二种菌株的生产率增加2.36倍,能量消耗低于原始条件下的能量。进一步的研究表明,N-Glycans的调节在折叠精度控制中发挥着重要作用,并且葡萄糖苷酶CWH41P的过度表达可以显着改善蛋白质产生,特别是对于具有改善的折叠容量但折叠精度较低的菌株。我们的研究结果详细阐述了具有改善的蛋白质生产率的两个菌株的机制,从而为工业重组蛋白质生产提供了新的见解,并证明了如何用于识别新型应变工程目标的多OMICS分析。

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