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Biology subjects

Peinetti, A. S.

Publications and source records attributed to Peinetti, A. S..

2 recordsLinked to original sources

In vitro evolution of DNA operators enables multivalency protein-DNA interactions: towards programmable transcription factor regulation

In vitro transcription (IVT) systems regulated by allosteric transcription factors (aTFs) are central to emerging cell-free biosensing and synthetic biology platforms, yet their performance is often limited by suboptimal protein-DNA interactions and the need for well-characterized regulatory elements. Here, we report an in vitro evolution strategy to engineer DNA operator sequences that enables tunable aTF-DNA interactions without requiring prior detailed knowledge of the native operator or regulatory mechanism. Using a SELEX-based approach with integrated positive and counter-selection steps, we evolved non-natural operators for the sulfane sulfur-responsive transcriptional repressor SqrR. The selected sequences preserve ligand-responsive allostery, with some sequences exhibiting enhanced binding affinity and reducing transcriptional leakage. Notably, we identify operator with binding behaviors consistent with cooperative recruitment of multiple SqrR dimers, suggesting that sequence architecture can modulate aTF-DNA interactions beyond affinity alone. Incorporation of these operators into IVT circuits improves transcriptional control and dynamic range, enabling the development of ROSALIND-based sensors for sulfane sulfur species, achieving sensitive and selective detection in a fully cell-free format. More broadly, this work establishes operator evolution as a programmable strategy to optimize transcription factor-DNA interactions and expand the design space of transcription-based biosensors, including for systems lacking well-characterized genetic components.

synthetic biology↗

Lateral flow cell-free transcriptional assay for contaminant detection

Cell free transcriptional biosensors are emerging as a powerful technology, offering enhanced capabilities for detecting chemical contaminants in settings where traditional analytical techniques fall short of societal needs. However, the sensitivity of these biosensors for many critical chemical contaminants often remains insufficient to meet regulatory detection limits, while maintaining portability and ensuring selectivity. In this work, an in vitro transcription (IVT) based lateral flow assay (LFA) is reported, which is 1000 times more sensitive than reported IVT portable detection methods. Through combining the amplification power of IVT with nucleic acid LFA-based avidity effects, we develop rapid, ultra-sensitive turn-on sensors. Our sensors meet regulatory detection limits for lead, a particularly challenging metal ion contaminant, in untreated spring water samples collected from a basin that exemplifies the environmental monitoring challenges. Additionally, we show that by optimizing the IVT conditions, we can tune the limit of detection to produce an on-off signal reaching the WHO regulation threshold and others. Finally, we evaluate the selectivity of different metal-responsive repressors in the context of in vitro biosensing and discuss how to identify potentially hazardous samples with an easy-to-use and point-of-care assay.

synthetic biology↗