bioRxiv Science⌕ Search

Biology subjects

Ruiz Sanchis, D.

Publications and source records attributed to Ruiz Sanchis, D..

2 recordsLinked to original sources

Macroscopic chemical to electrical signal converter in microbial communities

Excitable cells can convert electrical signals into chemical outputs to facilitate the active transport of information across larger distances. This electrical-to-chemical conversion requires a tightly regulated expression of ion channels. Alterations of ion channel expression provide landmarks of numerous pathological diseases, such as cardiac arrhythmia, epilepsy, or cancer. Although the activity of ion channels can be locally regulated by external light or chemical stimulus, it remains challenging to coordinate the expression of ion channels on extended spatial-temporal scales in a non-invasive manner. Here, we have engineered yeast S. cerevisiae to read and convert local chemical concentrations into a dynamic electrical field distributed across cell populations. The core mechanism encodes a chemically-excitable dual-feedback gene circuit that precisely tunes the expression domain of potassium channels, globally coordinating cyclic firing of the plasma membrane potential (PMP). We demonstrate that this mechanism leverages an engineered constitutively open bacterial potassium channel KcsA to directly couple chemical stimuli with ion flux through gene expression and it can interface with the host ion channels through the pulsatile production of toxins. Our study provides a robust synthetic transcriptional toolbox underlying the conversion of local chemical environments into spatiotemporally organized electrical impulses for various cellular engineering, synthetic biology, and potential therapeutic applications.

synthetic biology↗

Synthetic biosensor circuits generate a frequency-encoded response to phytohormones under a dynamic environment

How do dynamic hormone inputs translate into speed, and precision of response is one of the most challenging questions of science. To approach this question, we constructed minimal synthetic gene circuits capable of responding to plant hormones auxin and salicylic acid (SA). These circuits integrate bacterial multi antibiotic resistance (Mar) repressors that directly detect phytohormones through a ligand-induced conformational switch. The combination of individual circuits in synthetic auxin-SA crosstalk was sufficient to coordinate responses across the cell population with tunable precision and speed in long-term microfluidics experiments. This antagonistic auxin-SA crosstalk retains temporal memory upon extended exposure to hormones and synchronizes the behavior of individual cells with the environmental clock. Our study shows how dynamic hormone inputs can be translated in robust and precise responses with a minimal assembly of bacterial transcriptional repressors, suggesting an alternative regulatory strategy to known plant hormone signaling systems.

synthetic biology↗