Golden Gate Assembly of Aerobic and Anaerobic Microbial Bioreporters.
Aaron J HinzBenjamin StenzlerAlexandre J PoulainPublished in: Applied and environmental microbiology (2021)
Microbial bioreporters provide direct insight into cellular processes by producing a quantifiable signal dictated by reporter gene expression. The core of a bioreporter is a genetic circuit in which a reporter gene (or operon) is fused to promoter and regulatory sequences that govern its expression. In this study, we develop a system for constructing novel Escherichia coli bioreporters based on Golden Gate assembly, a synthetic biology approach for the rapid and seamless fusion of DNA fragments. Gene circuits are generated by fusing promoter and reporter sequences encoding yellow fluorescent protein, mCherry, bacterial luciferase, and an anaerobically active flavin-based fluorescent protein. We address a barrier to the implementation of Golden Gate assembly by designing a series of compatible destination vectors that can accommodate the assemblies. We validate the approach by measuring the activity of constitutive bioreporters and mercury and arsenic biosensors in quantitative exposure assays. We also demonstrate anaerobic quantification of mercury and arsenic in biosensors that produce flavin-based fluorescent protein, highlighting the expanding range of redox conditions that can be examined by microbial bioreporters. IMPORTANCE Microbial bioreporters are versatile genetic tools with wide-ranging applications, particularly in the field of environmental toxicology. For example, biosensors that produce a signal output in the presence of a specific analyte offer less costly alternatives to analytical methods for the detection of environmental toxins such as mercury and arsenic. Biosensors of specific toxins can also be used to test hypotheses regarding mechanisms of uptake, toxicity, and biotransformation. In this study, we develop an assembly platform that uses a synthetic biology technique to streamline construction of novel Escherichia coli bioreporters that produce fluorescent or luminescent signals either constitutively or in response to mercury and arsenic exposure. Beyond the synthesis of novel biosensors, our assembly platform can be adapted for numerous applications, including labelling bacteria for fluorescent microscopy, developing gene expression systems, and modifying bacterial genomes.
Keyphrases
- label free
- gene expression
- microbial community
- quantum dots
- escherichia coli
- dna methylation
- genome wide
- drinking water
- living cells
- high throughput
- copy number
- heavy metals
- crispr cas
- transcription factor
- protein protein
- binding protein
- high resolution
- poor prognosis
- single molecule
- wastewater treatment
- amino acid
- sewage sludge
- human health
- risk assessment
- fluorescent probe
- oxidative stress
- high intensity
- genome wide identification
- loop mediated isothermal amplification
- biofilm formation
- single cell
- staphylococcus aureus
- optical coherence tomography
- gene therapy
- metal organic framework