Influence of Cell Physiological Status on the Intensified Fed-Batch Cultures at Ultra-High Seeding Density.

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biotechnology and applied biochemistry Pub Date : 2025-01-20 DOI:10.1002/bab.2721
Qingyuan Ran, Ying Su, Weijian Zhang, Xinran Zhang, Liang Zhao, Min Chen, Yuxiang Wan, Wen-Song Tan, Qian Ye
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Abstract

Recent years, intensified fed-batch culture with ultra-high seeding density (uHSD-IFB) is coming to the forefront of manufacturers' choice for its enhanced productivity. However, the effects of seed cell physiological state and aeration strategies on these processes remain underexplored due to the ultra-high seeding density. Currently, the pre-production seeding inoculum (N-1) crucial for the uHSD-IFB cultures relies heavily upon case-by-case empirical experiences. To develop a rational seeding approach as a guideline, we here explored the impact of perfusion rates and cell growth states on the subsequent uHSD-IFB processes. It was found that seed cells in the exponential growth phase with high perfusion rates in the N-1 perfusion stage allowed for higher viable cell density and titer in the production stage. In particular, lower levels of reactive oxygen species, higher proportions of G1 and S phase, and higher specific cell oxygen uptake rates (OURs) were exhibited in these cells, resulting in higher cell specific growth rates and integral of viable cell concentration (IVCC) throughout the production cultures. Further investigation into the effect of aeration strategies was carried out in the benchtop bioreactors. A final yield of 4.5 g/L, an increase of nearly 110%, was achieved by a sophisticated dual sparger system compared to the other two processes with either one l-shaped or micro-sparger. These results provide a direction for the design and establishment of high-titer processes in intensified fed-batch cultures at ultra-high seeding density. Synopsis: In this work, we first explored the impact of perfusion rates and cell growth states on the subsequent uHSD-IFB processes. Further investigation into the effect of aeration strategies of intensified fed-batch process was carried out in the benchtop bioreactors. These results provide a direction for the design and establishment of high-titer processes in intensified fed-batch cultures at ultra-high seeding density.

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超高播种密度强化补料批培养对细胞生理状态的影响。
近年来,超高播种密度(uHSD-IFB)强化补料分批培养因其提高生产率而成为制造商的首选。然而,由于超高的种子密度,种子细胞生理状态和曝气策略对这些过程的影响尚不清楚。目前,对uHSD-IFB培养至关重要的生产前播种接种量(N-1)在很大程度上依赖于个案经验。为了制定合理的播种方法作为指导,我们在这里探讨了灌注率和细胞生长状态对随后的uHSD-IFB过程的影响。结果表明,在N-1灌注阶段,处于指数生长期的种子细胞具有较高的灌注率,在生产阶段可获得较高的活细胞密度和滴度。特别是,在这些细胞中表现出较低水平的活性氧,较高比例的G1期和S期,以及较高的特定细胞摄氧量(our),从而在整个生产培养过程中产生较高的细胞特定生长速率和活细胞浓度积分(IVCC)。在台式生物反应器中对曝气策略的影响进行了进一步的研究。与使用L型或微型喷撒器的其他两种工艺相比,采用复杂的双喷撒系统的最终产率为4.5 g/L,提高了近110%。这些结果为在超高播种密度条件下设计和建立高滴度间歇强化培养工艺提供了指导。摘要:在这项工作中,我们首先探讨了灌注速率和细胞生长状态对随后的uHSD-IFB过程的影响。在台式生物反应器中进一步研究了强化投料间歇工艺曝气策略的影响。这些结果为在超高播种密度条件下设计和建立高滴度间歇强化培养工艺提供了指导。
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来源期刊
Biotechnology and applied biochemistry
Biotechnology and applied biochemistry 工程技术-生化与分子生物学
CiteScore
6.00
自引率
7.10%
发文量
117
审稿时长
3 months
期刊介绍: Published since 1979, Biotechnology and Applied Biochemistry is dedicated to the rapid publication of high quality, significant research at the interface between life sciences and their technological exploitation. The Editors will consider papers for publication based on their novelty and impact as well as their contribution to the advancement of medical biotechnology and industrial biotechnology, covering cutting-edge research in synthetic biology, systems biology, metabolic engineering, bioengineering, biomaterials, biosensing, and nano-biotechnology.
期刊最新文献
Evaluation of the Role of PnuC Gene in Enhancing Nicotinamide Mononucleotide Synthesis. Assessment of Garbage Enzyme as a Bioremediation Method for the Wastewater Treatment. Influence of Cell Physiological Status on the Intensified Fed-Batch Cultures at Ultra-High Seeding Density. Lipocalin-2 Determination on Multiwalled Carbon Nanotube Integrated Circular Electrodes for Diagnosing Ulcerative Colitis. Optimization of Culture Medium Ingredients and Culture Conditions for Bacteriocin Production in Lactococcus lactis NCU036019.
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