与新型葡萄糖节约小球藻共培养通过减少细胞浪费提高组织培养效率

IF 3.1 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Melanie Oey, Ute Marx, Horst Joachim Schirra, Ian L. Ross, Robert G. Parton, Ben Hankamer, Harriet P. Lo
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引用次数: 0

摘要

哺乳动物细胞培养技术对于重组蛋白的生产、类器官的产生、医疗应用和体外培养肉的产生至关重要。然而,它们受到成本高、缺乏血管o2供应以及由此导致的3D组织形成抑制的限制。有效的培养基和营养物使用、氧合和废物管理是改善的关键。微藻利用有机或无机二氧化碳从光中产生氧气,这补充了培养中的消耗二氧化碳和呼吸二氧化碳的哺乳动物细胞。然而,常见的微藻培养条件在温度和盐度上与哺乳动物细胞培养环境不同,这使得共同培养的时间很短,而且具有挑战性。我们筛选了几种不同的微藻来鉴定小球藻(Chlorella sp. BDH-1, BDH-1),它在哺乳动物培养条件下具有较高的生长速度,但与其他小球藻不同,它不竞争葡萄糖作为能量来源。在共培养中,BDH-1通过维持哺乳动物细胞的氧化磷酸化来减少细胞废物的产生,从而稳定pH值,使培养寿命延长三倍,并优化营养利用,从而使生长性能提高80%。它进一步减少了昂贵和具有伦理挑战性的胎牛血清需求。总的来说,哺乳动物细胞/BDH-1的共同培养改善了组织培养的健康并降低了成本,为生物技术和医疗部门的应用铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Co-Cultivation With New Glucose-Sparing Chlorella Algae Boosts Tissue Culture Efficiency by Reducing Cell Waste

Co-Cultivation With New Glucose-Sparing Chlorella Algae Boosts Tissue Culture Efficiency by Reducing Cell Waste

Co-Cultivation With New Glucose-Sparing Chlorella Algae Boosts Tissue Culture Efficiency by Reducing Cell Waste

Co-Cultivation With New Glucose-Sparing Chlorella Algae Boosts Tissue Culture Efficiency by Reducing Cell Waste

Mammalian cell culture technologies are crucial for recombinant protein production, organoid generation, medical applications, and the generation of in vitro cultivated meat. However, they are limited by high costs, lack of vascular O2-provision, and the resultant inhibition of 3D tissue formation. Effective media and nutrient usage, oxygenation, and waste management are key to improvement. Microalgae utilize organic or inorganic CO2 to produce O2 from light, which complements O2-consuming and CO2-respiring mammalian cells in culture. However, common microalgal cultivation conditions differ in temperature and salinity from mammalian cell cultivation environments, making co-cultivation short-lived and challenging. We screened several different microalgae species to identify Chlorella sp. BDH-1 (BDH-1), which has high growth rates in mammalian culture conditions, but unlike other Chlorella species, does not compete for glucose as an energy source. In co-culture, BDH-1 reduces cellular waste production by maintaining mammalian cells in oxidative phosphorylation, which stabilizes pH, tripling culture longevity, and optimizes nutrient usage, which increases growth performance up to 80%. It further allows the reduction of expensive and ethically challenging fetal bovine serum requirements. Collectively, mammalian cell/BDH-1 co-cultivation improves tissue culture health and reduces costs, paving the path for applications in the biotechnology and medical sectors.

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来源期刊
Biotechnology Journal
Biotechnology Journal Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
2.10%
发文量
123
审稿时长
1.5 months
期刊介绍: Biotechnology Journal (2019 Journal Citation Reports: 3.543) is fully comprehensive in its scope and publishes strictly peer-reviewed papers covering novel aspects and methods in all areas of biotechnology. Some issues are devoted to a special topic, providing the latest information on the most crucial areas of research and technological advances. In addition to these special issues, the journal welcomes unsolicited submissions for primary research articles, such as Research Articles, Rapid Communications and Biotech Methods. BTJ also welcomes proposals of Review Articles - please send in a brief outline of the article and the senior author''s CV to the editorial office. BTJ promotes a special emphasis on: Systems Biotechnology Synthetic Biology and Metabolic Engineering Nanobiotechnology and Biomaterials Tissue engineering, Regenerative Medicine and Stem cells Gene Editing, Gene therapy and Immunotherapy Omics technologies Industrial Biotechnology, Biopharmaceuticals and Biocatalysis Bioprocess engineering and Downstream processing Plant Biotechnology Biosafety, Biotech Ethics, Science Communication Methods and Advances.
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