Optogenetic control of phosphate-responsive genes using single component fusion proteins in Saccharomyces cerevisiae
Cleere, M. M.; Gardner, K. H.
Show abstract
Blue light illumination can be detected by Light-Oxygen-Voltage (LOV) photosensing proteins and translated into a range of biochemical responses, facilitating the generation of novel optogenetic tools to control cellular function. Here, we develop new variants of our previously described VP-EL222 light-dependent transcription factor and apply them to study the phosphate-responsive signaling (PHO) pathway in the budding yeast Saccharomyces cerevisiae, exemplifying the utilities of these new tools. Focusing first on the VP-EL222 protein itself, we quantified the tunability of gene expression as a function of light intensity and duration, and demonstrated that this system can tolerate the addition of substantially larger effector domains without impacting function. We further demonstrated the utility of several EL222-driven transcriptional controllers in both plasmid and genomic settings, using the PHO5 and PHO84 promoters in their native chromosomal contexts as examples. These studies highlight the utility of light-controlled gene activation using EL222 tethered to either artificial transcription domains or yeast activator proteins (Pho4). Similarly, we demonstrate the ability to optogenetically repress gene expression with EL222 fused to the yeast Ume6 protein. We finally investigated the effects of moving EL222 recruitment sites to different locations within the PHO5 and PHO84 promoters, as well as determining how this artificial light-controlled regulation could be integrated with the native controls dependent on inorganic phosphate (Pi) availability. Taken together, our work expands the applicability of these versatile optogenetic tools in the types of functionalities they can deliver and biological questions that can be probed.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Intergeneric chromosomal transfer in yeast results in improved phenotypes and widespread transcriptional responses 95%
- Light-dependent modulation of protein localization and function in living bacteria cells 95%
- Designing efficient genetic code expansion in Bacillus subtilis to gain biological insights 95%
Similar papers in this journal
Similar papers in this journal
- A monogenic and fast-responding Light-Inducible Cre recombinase as a novel optogenetic switch 98%
- Variation in Ubiquitin System Genes Creates Substrate-Specific Effects on Proteasomal Protein Degradation 96%
- Expression of a CO2-permeable aquaporin enhances mesophyll conductance in the C4 species Setaria viridis 95%
Similar papers in this journal
- A tool to dissect heterotypic determinants of homotypic protein phase behavior 93%
- Dynamic proximity interaction profiling suggests that YPEL2 is involved in cellular stress surveillance 93%
- Deep Mutational Scanning Reveals a De Novo Disulfide Bond and Combinatorial Mutations for Engineering Thermostable Myoglobin 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.