Current state and recent advances in biopharmaceutical production in Escherichia coli, yeasts and mammalian cells

Современное состояние и последние достижения в производстве биофармацевтических препаратов в Escherichia coli, дрожжах и клетках млекопитающих
Borut Štrukelj, Aleš Berlec
2013-02-05

Escherichia coli expressionPichia pastorisbiopharmaceutical productionhumanized glycosylationmammalian cell lines
Almost all of the 200 or so approved biopharmaceuticals have been produced in one of three host systems: the bacterium Escherichia coli, yeasts (Saccharomyces cerevisiae, Pichia pastoris) and mammalian cells. We describe the most widely used methods for the expression of recombinant proteins in the cytoplasm or periplasm of E. coli, as well as strategies for secreting the product to the growth medium. Recombinant expression in E. coli influences the cell physiology and triggers a stress response, which has to be considered in process development. Increased expression of a functional protein can be achieved by optimizing the gene, plasmid, host cell, and fermentation process. Relevant properties of two yeast expression systems, S. cerevisiae and P. pastoris, are summarized. Optimization of expression in S. cerevisiae has focused mainly on increasing the secretion, which is otherwise limiting. P. pastoris was recently approved as a host for biopharmaceutical production for the first time. It enables high-level protein production and secretion. Additionally, genetic engineering has resulted in its ability to produce recombinant proteins with humanized glycosylation patterns. Several mammalian cell lines of either rodent or human origin are also used in biopharmaceutical production. Optimization of their expression has focused on clonal selection, interference with epigenetic factors and genetic engineering. Systemic optimization approaches are applied to all cell expression systems. They feature parallel high-throughput techniques, such as DNA microarray, next-generation sequencing and proteomics, and enable simultaneous monitoring of multiple parameters. Systemic approaches, together with technological advances such as disposable bioreactors and microbioreactors, are expected to lead to increased quality and quantity of biopharmaceuticals, as well as to reduced product development times.
1
Efficient recombinant protein production in E. coli requires coordinated optimization of genes, plasmids, host cells, and fermentation processes while managing expression-induced stress responses.
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Escherichia coli, yeasts, and mammalian cells produce nearly all of approximately 200 approved biopharmaceuticals.
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High-throughput systemic approaches combining microarrays, next-generation sequencing, and proteomics, together with disposable and microbioreactors, are expected to improve product quality and quantity while shortening development times.
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Mammalian-cell expression is improved through clonal selection, epigenetic modulation, and genetic engineering.
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Saccharomyces cerevisiae production is primarily limited by secretion, whereas Pichia pastoris enables high-level production and secretion, including proteins with humanized glycosylation patterns.

Biopharmaceutical production in Escherichia coli, yeasts (Saccharomyces cerevisiae and Pichia pastoris), and mammalian cells

Expression optimization, secretion, cellular stress responses, glycosylation, and process-development strategies governing the quality, quantity, and efficiency of recombinant biopharmaceutical production

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2013-02-05
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Borut Štrukelj
Aleš Berlec
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