Faculty of Biology, Signalling Research Centres BIOSS and CIBSS, University of Freiburg, Freiburg im Breisgau, Germany.
Department of Biosystems Science and Engineering, ETH Zurich, Basel, Switzerland.
Adv Biochem Eng Biotechnol. 2021;178:197-226. doi: 10.1007/10_2020_158.
Synthetic biology is strongly inspired by concepts of engineering science and aims at the design and generation of artificial biological systems in different fields of research such as diagnostics, analytics, biomedicine, or chemistry. To this aim, synthetic biology uses an engineering approach relying on a toolbox of molecular sensors and switches that endows cellular hosts with non-natural computing functions and circuits. Importantly, this concept is not only limited to cellular approaches. Synthetic biological building blocks have also conferred sensing and switching capability to otherwise inactive materials. This principle has attracted high interest for the development of biohybrid materials capable of sensing and responding to specific molecular stimuli, such as disease biomarkers, antibiotics, or heavy metals. Moreover, the interconnection of individual sense-and-respond materials to complex materials systems has enabled the processing of, for example, multiple inputs or the amplification of signals using feedback topologies. Such systems holding high potential for applications in the analytical and diagnostic sectors will be described in this chapter.
合成生物学深受工程科学理念的启发,旨在设计和生成不同研究领域的人工生物系统,如诊断、分析、生物医学或化学。为此,合成生物学采用了一种基于分子传感器和开关工具包的工程方法,赋予细胞宿主非自然的计算功能和电路。重要的是,这个概念不仅限于细胞方法。合成生物学的构建模块还赋予了原本不活跃的材料传感和切换的能力。这一原理为开发能够感测和响应特定分子刺激(如疾病生物标志物、抗生素或重金属)的生物杂交材料吸引了极大的兴趣。此外,将单个感测和响应材料相互连接到复杂的材料系统中,使得可以使用反馈拓扑结构处理例如多个输入或信号的放大。在分析和诊断领域具有巨大应用潜力的此类系统将在本章中进行描述。