五高细胞培养物中压力诱导的过早衰老:细胞密度效应的主要因素。

IF 4.3 3区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Rui Min, Dahe Zhang, Mingzhe He, Jingyuan Chen, Xiaoping Yi, Yingping Zhuang
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引用次数: 0

摘要

杆状病毒表达载体系统(BEVS)因其生物安全性、操作便利性、快速扩展性和自组装病毒样颗粒的能力,在疫苗开发、蛋白质工程和药物代谢研究中受到高度重视。然而,接种时增加细胞密度会严重影响 BEVS 的生产能力,从而产生 "细胞密度效应"。本研究旨在通过对转录组和蛋白质组的时间序列分析,探索细胞密度效应的机理,从而克服或缓解细胞密度增加导致的生产能力下降。对不同CCI(感染时细胞密度)条件下的五高细胞进行的omics动态分析显示,"细胞密度效应 "的影响随着时间的推移而增加,尤其影响遗传信息的处理、错误修复、蛋白质表达调控和物质能量代谢。对 "五高 "细胞生长阶段的 Omics 分析表明,培养 36 小时后(细胞密度约为 1 × 106 cells/mL),核糖体相关蛋白的表达量减少,导致蛋白质合成能力迅速下降,这是细胞衰老的关键指标。衰老验证实验表明,细胞在 36 小时后开始出现明显的早期衰老特征,导致宿主细胞抗应激能力下降。过表达和 siRNA 抑制研究表明,ndufa12 基因是限制 "细胞密度效应 "的潜在调控靶标。我们的研究结果表明,应激诱导的五高细胞过早衰老导致能量代谢和蛋白质合成能力降低,是导致细胞密度效应的关键因素,并最终影响病毒的产生。总之,这项研究为管理细胞密度效应导致的病毒生产限制提供了新的见解,并为减轻生物制造技术中细胞衰老的不利影响提供了创新策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stress-induced premature senescence in high five cell cultures: a principal factor in cell-density effects.

The Baculovirus Expression Vector System (BEVS) is highly valued in vaccine development, protein engineering, and drug metabolism research due to its biosafety, operational convenience, rapid scalability, and capacity for self-assembling virus-like particles. However, increasing cell density at the time of inoculation severely compromises the production capacity of BEVS, resulting in the "cell density effect". This study aimed to explore the mechanisms of the cell density effect through time-series analysis of transcriptomes and proteomes, with the goal of overcoming or alleviating the decline in productivity caused by increased cell density. The dynamic analysis of the omics of High Five cells under different CCI (cell density at infection) conditions showed that the impact of the "cell density effect" increased over time, particularly affecting genetic information processing, error repair, protein expression regulation, and material energy metabolism. Omics analysis of the growth stage of High Five cells showed that after 36 h of culture (cell density of about 1 × 106 cells/mL), the expression of ribosome-related proteins decreased, resulting in a rapid decrease in protein synthesis capacity, which was a key indicator of cell aging. Senescence verification experiments showed that cells began to show obvious early aging characteristics after 36 h, resulting in a decrease in the host cell's ability to resist stress. Overexpression and siRNA inhibition studies showed that the ndufa12 gene was a potential regulatory target for restricting the "cell density effect". Our results suggested that stress-induced premature senescence in High Five cell cultures, resulting in reduced energy metabolism and protein synthesis capabilities, was a critical factor contributing to cell density effects, and ultimately affecting virus production. In conclusion, this study provided new insights into managing virus production limitations due to cell density effects and offered innovative strategies to mitigate the adverse effects of cellular aging in biomanufacturing technologies.

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来源期刊
Bioresources and Bioprocessing
Bioresources and Bioprocessing BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
7.20
自引率
8.70%
发文量
118
审稿时长
13 weeks
期刊介绍: Bioresources and Bioprocessing (BIOB) is a peer-reviewed open access journal published under the brand SpringerOpen. BIOB aims at providing an international academic platform for exchanging views on and promoting research to support bioresource development, processing and utilization in a sustainable manner. As an application-oriented research journal, BIOB covers not only the application and management of bioresource technology but also the design and development of bioprocesses that will lead to new and sustainable production processes. BIOB publishes original and review articles on most topics relating to bioresource and bioprocess engineering, including: -Biochemical and microbiological engineering -Biocatalysis and biotransformation -Biosynthesis and metabolic engineering -Bioprocess and biosystems engineering -Bioenergy and biorefinery -Cell culture and biomedical engineering -Food, agricultural and marine biotechnology -Bioseparation and biopurification engineering -Bioremediation and environmental biotechnology
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