Biomedical Engineering, Johns Hopkins University School of Medicine, Baltimore, MD, USA.
Biochemistry and Molecular Biology, Johns Hopkins Bloomberg School of Public Health, Baltimore, MD, USA.
Nat Commun. 2024 Sep 12;15(1):7973. doi: 10.1038/s41467-024-51907-4.
Molecular biosensors that accurately measure protein concentrations without external equipment are critical for solving numerous problems in diagnostics and therapeutics. Modularly transducing the binding of protein antibodies, protein switches or aptamers into a useful output remains challenging. Here, we develop a biosensing platform based on aptamer-regulated transcription in which aptamers integrated into transcription templates serve as inputs to molecular circuits that can be programmed to a produce a variety of responses. We modularly design molecular biosensors using this platform by swapping aptamer domains for specific proteins and downstream domains that encode different RNA transcripts. By coupling aptamer-regulated transcription with diverse transduction circuits, we rapidly construct analog protein biosensors and digital protein biosensors with detection ranges that can be tuned over two orders of magnitude and can exceed the binding affinity of the aptamer. Aptamer-regulated transcription is a straightforward and inexpensive approach for constructing programmable protein biosensors that could have diverse applications in research and biotechnology.
无需外部设备即可准确测量蛋白质浓度的分子生物传感器对于解决诊断和治疗中的众多问题至关重要。将蛋白质抗体、蛋白质开关或适体的结合转化为有用输出仍然具有挑战性。在这里,我们开发了一种基于适体调控转录的生物传感平台,其中整合到转录模板中的适体作为输入,用于可以编程产生各种响应的分子电路。我们使用此平台通过交换适体结构域和编码不同 RNA 转录本的下游结构域,对分子生物传感器进行模块化设计。通过将适体调控转录与多样化的转导电路相结合,我们可以快速构建模拟蛋白生物传感器和数字蛋白生物传感器,其检测范围可以调节两个数量级以上,并可以超过适体的结合亲和力。适体调控转录是构建可编程蛋白生物传感器的一种简单且廉价的方法,在研究和生物技术中有广泛的应用。