Experimental and biophysical modeling of transcription and translation dynamics in bacterial- and mammalian-based cell-free expression systems

IF 2.5 4区 医学 Q3 BIOCHEMICAL RESEARCH METHODS SLAS Technology Pub Date : 2024-04-01 DOI:10.1016/j.slast.2022.02.001
Yuwen Zhao , Shue Wang
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引用次数: 0

Abstract

Cell-free expression (CFE) systems have been used extensively in systems and synthetic biology as a promising platform for manufacturing proteins and chemicals. Currently, the most widely used CFE system is in vitro protein transcription and translation platform. As the rapidly increased applications and uses, it is crucial to have a standard biophysical model for quantitative studies of gene circuits, which will provide a fundamental understanding of basic working mechanisms of CFE systems. Current modeling approaches mainly focus on the characterization of E. coli-based CFE systems, a computational model that can be utilized for both bacterial- and mammalian-based CFE has not been investigated. Here, we developed a simple ODE (ordinary differential equation)-based biophysical model to simulate transcription and translation dynamics for both bacterial- and mammalian- based CFE systems. The key parameters were estimated and adjusted based on experimental results. We next tested four gene circuits to characterize kinetic dynamics of transcription and translation in E. coli- and HeLa-based CFE systems. The real-time transcription and translation were monitored using Broccoli aptamer, double stranded locked nucleic acid (dsLNA) probe and fluorescent protein. We demonstrated the difference of kinetic dynamics for transcription and translation in both systems, which will provide valuable information for quantitative genomic and proteomic studies. This simple biophysical model and the experimental data for both E. coli- and HeLa-based CFE will be useful for researchers that are interested in genetic engineering and CFE bio-manufacturing.

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基于细菌和哺乳动物的无细胞表达系统中转录和翻译动态的实验和生物物理建模。
无细胞表达(CFE)系统已被广泛应用于系统生物学和合成生物学,是制造蛋白质和化学品的一个前景广阔的平台。目前,应用最广泛的无细胞表达系统是体外蛋白质转录和翻译平台。随着应用和用途的迅速增加,建立一个用于基因回路定量研究的标准生物物理模型至关重要,这将为了解 CFE 系统的基本工作机制提供基础。目前的建模方法主要集中在基于大肠杆菌的 CFE 系统的表征上,一种可同时用于基于细菌和哺乳动物的 CFE 的计算模型尚未得到研究。在此,我们开发了一个基于 ODE(常微分方程)的简单生物物理模型,用于模拟细菌和哺乳动物 CFE 系统的转录和翻译动态。根据实验结果对关键参数进行了估计和调整。接下来,我们测试了四个基因回路,以确定基于大肠杆菌和希拉菌的 CFE 系统中转录和翻译的动力学特征。我们使用西兰花适配体、双链锁定核酸(dsLNA)探针和荧光蛋白对转录和翻译进行了实时监测。我们证明了两个系统中转录和翻译动力学的差异,这将为基因组和蛋白质组的定量研究提供有价值的信息。这个简单的生物物理模型和基于大肠杆菌和 HeLa 的 CFE 的实验数据将对基因工程和 CFE 生物制造感兴趣的研究人员有所帮助。
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来源期刊
SLAS Technology
SLAS Technology Computer Science-Computer Science Applications
CiteScore
6.30
自引率
7.40%
发文量
47
审稿时长
106 days
期刊介绍: SLAS Technology emphasizes scientific and technical advances that enable and improve life sciences research and development; drug-delivery; diagnostics; biomedical and molecular imaging; and personalized and precision medicine. This includes high-throughput and other laboratory automation technologies; micro/nanotechnologies; analytical, separation and quantitative techniques; synthetic chemistry and biology; informatics (data analysis, statistics, bio, genomic and chemoinformatics); and more.
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