Amplifying Genetic Logic Gates
Affiliations
Organisms must process information encoded via developmental and environmental signals to survive and reproduce. Researchers have also engineered synthetic genetic logic to realize simpler, independent control of biological processes. We developed a three-terminal device architecture, termed the transcriptor, that uses bacteriophage serine integrases to control the flow of RNA polymerase along DNA. Integrase-mediated inversion or deletion of DNA encoding transcription terminators or a promoter modulates transcription rates. We realized permanent amplifying AND, NAND, OR, XOR, NOR, and XNOR gates actuated across common control signal ranges and sequential logic supporting autonomous cell-cell communication of DNA encoding distinct logic-gate states. The single-layer digital logic architecture developed here enables engineering of amplifying logic gates to control transcription rates within and across diverse organisms.
Synthetic gene circuits in plants: recent advances and challenges.
Khan A, Lister R Quant Plant Biol. 2025; 6:e6.
PMID: 40070723 PMC: 11894408. DOI: 10.1017/qpb.2025.3.
There and turn back again: the application of phage serine integrases in eukaryotic systems.
Sales T, de Oliveira M, Florentino L, Lima R, Rech E Front Bioeng Biotechnol. 2025; 13:1478413.
PMID: 40066361 PMC: 11891168. DOI: 10.3389/fbioe.2025.1478413.
Li Y, Wu Y, Xu X, Liu Y, Li J, Du G Nucleic Acids Res. 2025; 53(2).
PMID: 39797735 PMC: 11724366. DOI: 10.1093/nar/gkae1315.
Phage-mediated intercellular CRISPRi for biocomputation in bacterial consortia.
Pujar A, Pathania A, Hopper C, Pandi A, Calderon C, Fugger M Nucleic Acids Res. 2024; 53(3).
PMID: 39727169 PMC: 11797038. DOI: 10.1093/nar/gkae1256.
Tuning and functionalization of logic gates for time resolved programming of bacterial populations.
Backer L, Broux K, Weckx L, Khanal S, Aertsen A Nucleic Acids Res. 2024; 53(1.
PMID: 39657755 PMC: 11724278. DOI: 10.1093/nar/gkae1158.