Advances in Mammalian Cell Line Development Technologies for Recombinant Protein Production
Достижения в области технологий создания линий клеток млекопитающих для получения рекомбинантных белков
2013-04-26
SCID: 54.1/yfh5bf6p
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clone screeningglutamine synthetase systemmammalian cell line developmentmethotrexate amplificationrecombinant protein production
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Abstract (AI)
From 2006 to 2011, an average of 15 novel recombinant protein therapeutics have been approved by US Food and Drug Administration (FDA) annually. In addition, the expiration of blockbuster biologics has also spurred the emergence of biosimilars. The increasing numbers of innovator biologic products and biosimilars have thus fuelled the demand of production cell lines with high productivity. Currently, mammalian cell line development technologies used by most biopharmaceutical companies are based on either the methotrexate (MTX) amplification technology or the glutamine synthetase (GS) system. With both systems, the cell clones obtained are highly heterogeneous, as a result of random genome integration by the gene of interest and the gene amplification process. Consequently, large numbers of cell clones have to be screened to identify rare stable high producer cell clones. As such, the cell line development process typically requires 6 to 12 months and is a time, capital and labour intensive process. This article reviews established advances in protein expression and clone screening which are the core technologies in mammalian cell line development. Advancements in these component technologies are vital to improve the speed and efficiency of generating robust and highly productive cell line for large scale production of protein therapeutics.
Key Findings
1
Advances in protein expression and clone-screening technologies are identified as essential for faster, more efficient generation of robust, highly productive production cell lines.
2
Because rare stable high-producer clones must be identified through extensive screening, mammalian cell line development typically takes 6–12 months and requires substantial time, capital, and labor.
3
FDA approvals averaged 15 novel recombinant protein therapeutics annually from 2006 to 2011, while biologic patent expirations increased biosimilar development.
4
Growing innovator biologic and biosimilar pipelines have intensified demand for mammalian production cell lines with high productivity.
5
Most biopharmaceutical companies rely on methotrexate amplification or glutamine synthetase systems, but random integration and amplification generate highly heterogeneous clones.
Research Object
mammalian cell line development for recombinant protein production
Research Subject
advances in protein expression and clone screening technologies to improve the speed, efficiency, stability, and productivity of cell-line generation
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2013-04-26
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