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基于进化的小分子生物传感器工程。

Evolution-guided engineering of small-molecule biosensors.

机构信息

Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kgs. Lyngby, Denmark.

Joint BioEnergy Institute, Emeryville, CA, USA.

出版信息

Nucleic Acids Res. 2020 Jan 10;48(1):e3. doi: 10.1093/nar/gkz954.

Abstract

Allosteric transcription factors (aTFs) have proven widely applicable for biotechnology and synthetic biology as ligand-specific biosensors enabling real-time monitoring, selection and regulation of cellular metabolism. However, both the biosensor specificity and the correlation between ligand concentration and biosensor output signal, also known as the transfer function, often needs to be optimized before meeting application needs. Here, we present a versatile and high-throughput method to evolve prokaryotic aTF specificity and transfer functions in a eukaryote chassis, namely baker's yeast Saccharomyces cerevisiae. From a single round of mutagenesis of the effector-binding domain (EBD) coupled with various toggled selection regimes, we robustly select aTF variants of the cis,cis-muconic acid-inducible transcription factor BenM evolved for change in ligand specificity, increased dynamic output range, shifts in operational range, and a complete inversion-of-function from activation to repression. Importantly, by targeting only the EBD, the evolved biosensors display DNA-binding affinities similar to BenM, and are functional when ported back into a prokaryotic chassis. The developed platform technology thus leverages aTF evolvability for the development of new host-agnostic biosensors with user-defined small-molecule specificities and transfer functions.

摘要

变构转录因子(aTFs)已被证明在生物技术和合成生物学中具有广泛的应用价值,可作为配体特异性生物传感器,实现细胞代谢的实时监测、选择和调控。然而,在满足应用需求之前,生物传感器的特异性以及配体浓度与生物传感器输出信号之间的相关性(也称为传递函数)通常需要进行优化。在这里,我们提出了一种在真核生物底盘(即酿酒酵母)中进化原核 aTF 特异性和传递函数的通用且高通量的方法。通过将效应物结合域(EBD)的单次诱变与各种切换选择方案相结合,我们能够稳健地选择 cis,cis-粘康酸诱导转录因子 BenM 的 aTF 变体,以改变配体特异性、增加动态输出范围、改变操作范围,以及完全从激活到抑制的功能反转。重要的是,通过仅靶向 EBD,进化后的生物传感器显示出与 BenM 相似的 DNA 结合亲和力,并且当重新导入原核底盘时仍然具有功能。因此,所开发的平台技术利用了 aTF 的可进化性,开发出具有用户定义的小分子特异性和传递函数的新型无宿主依赖性生物传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/70c1/6943132/d095d993d1f2/gkz954fig1.jpg

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