School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA, USA.
Adv Biochem Eng Biotechnol. 2023;186:141-161. doi: 10.1007/10_2023_223.
Organisms from across the tree of life have evolved highly efficient mechanisms for sensing molecules of interest using biomolecular machinery that can in turn be quite valuable for the development of biosensors. However, purification of such machinery for use in in vitro biosensors is costly, while the use of whole cells as in vivo biosensors often leads to long sensor response times and unacceptable sensitivity to the chemical makeup of the sample. Cell-free expression systems overcome these weaknesses by removing the requirements associated with maintaining living sensor cells, allowing for increased function in toxic environments and rapid sensor readout at a production cost that is often more reasonable than purification. Here, we focus on the challenge of implementing cell-free protein expression systems that meet the stringent criteria required for them to serve as the basis for field-deployable biosensors. Fine-tuning expression to meet these requirements can be achieved through careful selection of the sensing and output elements, as well as through optimization of reaction conditions via tuning of DNA/RNA concentrations, lysate preparation methods, and buffer conditions. Through careful sensor engineering, cell-free systems can continue to be successfully used for the production of tightly regulated, rapidly expressing genetic circuits for biosensors.
从生命之树的各个分支进化而来的生物已经进化出了使用生物分子机制来感应感兴趣的分子的高效机制,而这些机制反过来又可以为生物传感器的发展提供非常有价值的工具。然而,为了在体外生物传感器中使用这些设备,对其进行纯化的成本很高,而将整个细胞用作体内生物传感器通常会导致传感器响应时间长,并且对样品的化学成分敏感。无细胞表达系统通过去除与维持活传感器细胞相关的要求克服了这些弱点,从而允许在毒性环境中增加功能,并以生产成本实现快速传感器读数,而生产成本通常比纯化更为合理。在这里,我们专注于实施无细胞蛋白质表达系统的挑战,这些系统必须满足作为现场部署的生物传感器基础的严格标准。通过仔细选择感应和输出元件,并通过调整 DNA/RNA 浓度、裂解物制备方法和缓冲条件来优化反应条件,可以对表达进行微调以满足这些要求。通过仔细的传感器工程,无细胞系统可以继续成功地用于生产用于生物传感器的紧密调节、快速表达的遗传电路。