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Exploring Sequence Characteristics Related to High-Level Production of Secreted Proteins in Aspergillus niger

机译:探索黑曲霉相关分泌蛋白的高水平生产序列特征分析

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摘要

Protein sequence features are explored in relation to the production of over-expressed extracellular proteins by fungi. Knowledge on features influencing protein production and secretion could be employed to improve enzyme production levels in industrial bioprocesses via protein engineering. A large set, over 600 homologous and nearly 2,000 heterologous fungal genes, were overexpressed in Aspergillus niger using a standardized expression cassette and scored for high versus no production. Subsequently, sequence-based machine learning techniques were applied for identifying relevant DNA and protein sequence features. The amino-acid composition of the protein sequence was found to be most predictive and interpretation revealed that, for both homologous and heterologous gene expression, the same features are important: tyrosine and asparagine composition was found to have a positive correlation with high-level production, whereas for unsuccessful production, contributions were found for methionine and lysine composition. The predictor is available online at . Subsequent work aims at validating these findings by protein engineering as a method for increasing expression levels per gene copy.
机译:探讨了与真菌产生过表达的细胞外蛋白有关的蛋白序列特征。通过蛋白质工程,可以利用有关影响蛋白质生产和分泌的特征的知识来提高工业生物过程中酶的生产水平。使用标准化的表达盒,在黑曲霉中过表达了一大组,超过600个同源和近2,000个异源真菌基因,并对高产量与无产量进行了评分。随后,基于序列的机器学习技术被应用于识别相关的DNA和蛋白质序列特征。发现该蛋白质序列的氨基酸组成具有最高的预测性,并且解释表明,对于同源和异源基因表达,相同的特征很重要:酪氨酸和天冬酰胺的组成与高水平生产呈正相关,而对于不成功的生产,发现了蛋氨酸和赖氨酸组成的贡献。可在上在线获取预测变量。随后的工作旨在通过蛋白质工程验证这些发现,以此作为增加每个基因拷贝表达水平的方法。

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