推进法菲Komagataella重组蛋白的表达:机遇与挑战。

IF 2.4 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Wen Lv, Menghao Cai
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引用次数: 0

摘要

Komagataella phaffii已被公认为重组蛋白生产的多功能平台,其应用范围涵盖生物制药,工业酶,食品添加剂等。它的优点包括高水平的蛋白表达、适度的翻译后修饰、高密度的培养和低成本的甲醇利用。但在提高生产效率和扩大适用性方面仍面临挑战。本文综述了提高法菲氏梭菌生产力的关键策略,包括遗传操作工具、转录和翻译调控、蛋白质折叠和分泌优化方面的系统进展。糖基化工程也受到关注,因为它使治疗性蛋白质和功能性食品添加剂的人源化糖基化谱得以使用。组学技术和基因组尺度的代谢模型为细胞代谢提供了新的见解,增强了重组蛋白的表达。高通量筛选技术是构建高表达菌株和加速菌株优化的关键。随着基因编辑、合成和系统生物学工具的进步,K. phaffii表达平台在基础研究和工业应用方面得到了显著改善。未来的创新旨在充分利用K. phaffii作为下一代细胞工厂,为各种应用提供高效,可扩展和经济高效的解决方案。它作为生物技术领域的关键驱动因素继续保持着希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancing recombinant protein expression in Komagataella phaffii: opportunities and challenges.

Komagataella phaffii has gained recognition as a versatile platform for recombinant protein production, with applications covering biopharmaceuticals, industrial enzymes, food additives, etc. Its advantages include high-level protein expression, moderate post-translational modifications, high-density cultivation, and cost-effective methanol utilization. Nevertheless, it still faces challenges for the improvement of production efficiency and extension of applicability. This review highlights the key strategies used to facilitate productivity in K. phaffii, including systematic advances in genetic manipulation tools, transcriptional and translational regulation, protein folding and secretion optimization. Glycosylation engineering is also concerned as it enables humanized glycosylation profiles for the use in therapeutic proteins and functional food additivities. Omics technologies and genome-scale metabolic models provide new insights into cellular metabolism, enhancing recombinant protein expression. High-throughput screening technologies are also emphasized as crucial for constructing high-expression strains and accelerating strain optimization. With advancements in gene-editing, synthetic and systems biology tools, the K. phaffii expression platform has been significantly improved for fundamental research and industrial use. Future innovations aim to fully harness K. phaffii as a next-generation cell factory, providing efficient, scalable, and cost-effective solutions for diverse applications. It continues to hold promise as a key driver in the field of biotechnology.

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来源期刊
FEMS yeast research
FEMS yeast research 生物-生物工程与应用微生物
CiteScore
5.70
自引率
6.20%
发文量
54
审稿时长
1 months
期刊介绍: FEMS Yeast Research offers efficient publication of high-quality original Research Articles, Mini-reviews, Letters to the Editor, Perspectives and Commentaries that express current opinions. The journal will select for publication only those manuscripts deemed to be of major relevance to the field and generally will not consider articles that are largely descriptive without insights on underlying mechanism or biology. Submissions on any yeast species are welcome provided they report results within the scope outlined below and are of significance to the yeast field.
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