Wagner Hanna J, Kemmer Svenja, Engesser Raphael, Timmer Jens, Weber Wilfried
Faculty of Biology University of Freiburg Schänzlestraße 1 79104 Freiburg Germany.
BIOSS-Centre for Biological Signalling Studies University of Freiburg Schänzlestraße 18 79104 Freiburg Germany.
Adv Sci (Weinh). 2018 Nov 28;6(4):1801320. doi: 10.1002/advs.201801320. eCollection 2019 Feb 20.
Feedforward and feedback loops are key regulatory elements in cellular signaling and information processing. Synthetic biology exploits these elements for the design of molecular circuits that enable the reprogramming and control of specific cellular functions. These circuits serve as a basis for the engineering of complex cellular networks, opening the door for numerous medical and biotechnological applications. Here, a similar principle is applied. Feedforward and positive feedback circuits are incorporated into biohybrid polymer materials in order to develop signal-sensing and signal-processing devices. This concept is exemplified by the detection of the proteolytic activity of the botulinum neurotoxin A. To this aim, site-specific proteases are incorporated into receiver, transmitter, and output materials, and their release, diffusion, and/or activation are wired according to a feedforward or a positive feedback circuit. The development of a quantitative mathematical model enables analysis and comparison of the performance of both systems. The flexible design could be easily adapted to detect other toxins or molecules of interest. Furthermore, cellular signaling or gene regulatory pathways could provide additional blueprints for the development of novel biohybrid circuits. Such information-processing, material-embedded biological circuits hold great promise for a variety of analytical, medical, or biotechnological applications.
前馈和反馈回路是细胞信号传导和信息处理中的关键调节元件。合成生物学利用这些元件来设计分子电路,从而实现对特定细胞功能的重新编程和控制。这些电路是复杂细胞网络工程的基础,为众多医学和生物技术应用打开了大门。在此,应用了类似的原理。前馈和正反馈电路被整合到生物杂交聚合物材料中,以开发信号传感和信号处理装置。肉毒杆菌神经毒素A的蛋白水解活性检测就是这一概念的例证。为此,将位点特异性蛋白酶整合到受体、发射器和输出材料中,并根据前馈或正反馈电路对它们的释放、扩散和/或激活进行连接。定量数学模型的开发能够对两个系统性能进行分析和比较。这种灵活的设计可以很容易地进行调整,以检测其他毒素或感兴趣的分子。此外,细胞信号传导或基因调控途径可为新型生物杂交电路的开发提供更多蓝图。这种信息处理、材料嵌入的生物电路在各种分析、医学或生物技术应用中具有巨大潜力。