Curated Optogenetic Publication Database

Search precisely and efficiently by using the advantage of the hand-assigned publication tags that allow you to search for papers involving a specific trait, e.g. a particular optogenetic switch or a host organism.

Qr: switch:"EL222"
Showing 1 - 25 of 80 results
Not Review Not Background
1.

Moderate expression and activity of flocculins underlie the characteristic flocculation phenotype of Saccharomyces pastorianus.

blue EL222 S. cerevisiae Transgene expression Nucleic acid editing
Appl Environ Microbiol, 8 Sep 2026 DOI: 10.1128/aem.00883-26 Link to full text
Abstract: Flocculation is a key technological trait in lager brewing, governing fermentation performance, yeast recovery, and beer quality. In the allo-aneuploid hybrid yeast Saccharomyces pastorianus, the genetic basis of flocculation remains poorly resolved due to its complex dual sub-genome architecture. Here, we systematically re-annotated and functionally characterized the complete FLO gene repertoire of the Group II strain CBS 1483. Thirteen FLO genes were identified, including allelic variants and a previously uncharacterized adhesin, Flo12, containing a Hyphal_reg_CWP domain instead of the canonical PA14 lectin-binding domain. Structural modeling revealed strong conservation of Ca²+-binding residues in PA14 domains, alongside repeat-region diversification likely contributing to functional variability. Using optogenetic expression in a FLO-null background, we demonstrated that SpcI-FLO9-1 and SpcI-FLO9-2_1 are the strongest drivers of flocculation, exhibiting NewFlo-like sugar sensitivity. Transcriptomic analysis during 17°P wort fermentation showed dynamic induction of these genes coinciding with flocculation onset. Surprisingly, deletion of both loci in CBS 1483 did not abolish but only delayed sedimentation in wort, accompanied by improved maltose utilization and attenuation. These findings reveal functional redundancy and compensatory mechanisms within the FLO network of lager yeast, highlighting the genetic complexity underlying flocculation, and providing a molecular framework to inform yeast selection, strain development, and optimization of the lager fermentation processes.IMPORTANCEFlocculation, the process by which yeast cells aggregate and settle, is essential for producing clear, high-quality lager beer, and for efficient yeast recovery during brewing. However, the genetic basis of this trait in lager yeast has remained poorly understood because these strains possess unusually complex hybrid genomes. In this study, we systematically identified and characterized the complete set of flocculation genes in the industrial lager yeast Saccharomyces pastorianus CBS 1483. We demonstrated that lager yeast flocculation is not controlled by a single dominant gene, but instead emerges from the combined action of several moderately active adhesion proteins that are expressed at low levels during fermentation. Surprisingly, deleting the two strongest candidate genes only delayed, rather than eliminated, sedimentation, revealing a robust compensatory network that preserves brewing performance. These findings refine the current understanding of yeast flocculation and provide a molecular framework for developing brewing strains with improved fermentation efficiency, product consistency, and flavor quality.
2.

Ingestible Hydrogel-Encapsulated Optogenetic Yeast Controlled by Wearable Electronics Enables Programmable IL-10 Delivery for Inflammatory Bowel Disease Therapy.

blue EL222 P. pastoris Transgene expression
ACS Appl Mater Interfaces, 26 Aug 2026 DOI: 10.1021/acsami.6c10319 Link to full text
Abstract: Engineered yeast-living drugs offer significant potential for oral protein therapy but remain limited by poor intestinal retention and lack of precise spatiotemporal control over therapeutic delivery. Here, we developed an ingestible hydrogel-encapsulated optogenetic yeast system controlled by a wearable electronic device for programmable interleukin-10 (IL-10) delivery in inflammatory bowel disease (IBD). We engineered Pichia pastoris with an EL222-based blue-light-inducible circuit achieving rapid, stringent IL-10 secretion (50% saturated concentration within just 1 h upon induction). The yeast was encapsulated in a photo-crosslinkable HAMA hydrogel that was gelated within 60 s upon blue-light exposure, exhibiting robust mechanical stability and tissue adhesion. A lightweight (2.27 g) wearable Bluetooth-controlled electronic device delivered targeted blue light transdermally, enabling simultaneous in situ hydrogel crosslinking and optogenetic activation in yeast cells. This system significantly extended the time yeast stays in the mouse gut, with reporter gene expression lasting over 5 h, while the unencapsulated control group lasted less than 2 h. In DSS-induced colitis mice, our strategy reduced proinflammatory cytokines (IL-1β, IL-6, and TNF-α) by >60%, restored intestinal barrier integrity, and normalized gut microbiota diversity to near-healthy levels, which performed significantly better than in other groups. This integrated "extracorporeal instruction-intracorporeal response" paradigm establishes a digitally programmable platform for precision live biotherapeutics. However, limited blue-light tissue penetration remains a key constraint; future work should focus on near-infrared photosensitive systems, programmable-degradation hydrogels, and wireless closed‑loop feedback to advance clinical translation.
3.

Rapid and reversible regulation of cell cycle progression in budding yeast using optogenetics.

blue EL222 S. cerevisiae Cell cycle control Endogenous gene expression
Cell Rep Methods, 30 Jul 2026 DOI: 10.1016/j.crmeth.2026.101541 Link to full text
Abstract: The complexity of the eukaryotic cell cycle complicates experiment design and data interpretation, limiting our understanding of how cells coordinate cell cycle processes. Traditional perturbation methods, including knockouts, deletions, and arrest-inducing chemicals, are limited by compensatory feedback interactions or pleiotropic side effects. Inducible synthetic systems offer greater specificity but often rely on external inducers, making rapid reversibility difficult. Here, we developed OPTO-Cln2, an optogenetic tool for light-controlled and reversible regulation of G1 progression in budding yeast. Using time-lapse microscopy, we show that OPTO-Cln2-strains rapidly switch between normal and altered G1 progression. Combining OPTO-Cln2 with a readout of TORC1 and PKA activity, we find that oscillatory signaling dynamics is coordinated with G1 progression. Finally, we show that OPTO-Cln2 enables at least two cycles of synchronous arrest and release in liquid cultures. This system provides a powerful approach for studying cell cycle dynamics and the coordination of cell growth with division.
4.

Multi-level precise regulation of gene transcription in the yeast Saccharomyces cerevisiae based on light-sensitive CRISPR/Cas systems.

blue EL222 S. cerevisiae Transgene expression
Nucleic Acids Res, 17 Jul 2026 DOI: 10.1093/nar/gkag719 Link to full text
Abstract: Regulation of gene transcription based on clustered regularly interspaced short palindromic repeats (CRISPR) is a powerful tool for constructing synthetic gene circuits in Saccharomyces cerevisiae. The current CRISPR-based regulatory approaches primarily focus on inhibiting the binding of dCas9 protein to single guide RNA (sgRNA) or blocking target site recognition. However, these regulation strategies are often at a single level, and their sensitivity still needs to be improved. In this study, the gene regulatory approaches at the translational and post-translational levels were integrated with optogenetic control patterns to attain very sensitive multi-level precision regulation of the dCas9 protein, thereby facilitating flexible regulation of transcription levels of target genes. This strategy was used to regulate the transcription levels of fluorescent proteins, resulting in up to 2.58-fold increase in the fluorescence intensity of mCherry compared to that without regulation. This CRISPR-based multi-level optogenetic system should be extremely helpful in understanding gene regulatory networks and in designing robust genetic circuits for synthetic biology.
5.

Dual-channel optogenetics in yeast for multiplexed light-based control of cellular processes and pathways.

blue red AsLOV2 AtLOV2 EL222 iLight S. cerevisiae Transgene expression Benchmarking Multichromatic
Nat Commun, 22 May 2026 DOI: 10.1038/s41467-026-73399-0 Link to full text
Abstract: Optogenetics which involves the use of light to control cell functions on a genetic level has found utility in studying cell physiology, biomaterials and metabolic engineering. S. cerevisiae is an industrially relevant model organism that is used in many applications, but due to the large number of genes required and issues relating to cross-activation between different colours, optogenetics for different wavelengths of light have not been multiplexed in S. cerevisiae. In this paper, we develop a compact red light responsive optogenetic system for S. cerevisiae that requires only a single gene and no exogenous cofactors. Through engineering modular protein domains, we reduce the cross-activation of our system by blue light. We integrate our red light optogenetic system with EL222 blue light optogenetics to establish dual channel optogenetics in S. cerevisiae and demonstrate its utility for engineering biology through the light-based control of flavonoid luteolin synthesis and flocculation for ease of product extraction. We also demonstrate our system's potential for the development of living materials by producing dual-coloured optogenetic patterns using S. cerevisiae. This work expands optogenetic applications in S. cerevisiae from single-light to multi-light systems, introducing the potential to multiplex different colours of light for dynamic, orthogonal control of separate cell processes.
6.

Rationally designed light-inducible RNA-releasing protein for translational regulation and optogenetic control of gene therapies.

blue red AsLOV2 CRY2/CIB1 EL222 Magnets PhyA/FHY1 TULIP VVD B16-F10 CHO-K1 HEK293 HeLa Hepa1-6 human IPSCs HUVEC mouse in vivo Neuro-2a Transgene expression
Trends Biotechnol, 8 Apr 2026 DOI: 10.1016/j.tibtech.2026.03.004 Link to full text
Abstract: In this study, we describe a rationally designed light-inducible RNA-releasing protein (LIRP) capable of inhibiting mRNA translation in the dark while permitting gene expression upon exposure to blue or ambient light. This LIRP-dependent gene switch is compatible with various delivery routes of gene- and cell-based therapy, such as subcutaneous implantation of microencapsulated light-sensitive cells or expression in various light-accessible body sites using single adeno-associated virus (AAV) vectors. To exemplify a gene therapy approach that directly harnesses ambient light as a natural illumination source to induce therapeutic action, we show how intradermal delivery of AAV2 vectors carrying a LIRP-regulated gene switch controlling murine thymic stromal lymphopoietin expression was effective in enabling light-dependent prevention and treatment of diet-induced obesity. To describe another therapeutic scenario, we engineered AAV2 vectors for LIRP-dependent expression of Vascular endothelial growth factor (VEGF) inhibitors for the treatment of retinal neovascular diseases. Upon intravitreal delivery into mice suffering from wet macular degeneration, VEGF inhibitors were constantly produced when animals were exposed to daylight, but therapeutic actions could be flexibly interrupted either by exposure to dark environments or by administration of a selective blue light filter at any point in time. When compared to conventional treatment strategies based on constitutive VEGF inhibition over the course of 3 months, we show that a regulated gene therapy approach through LIRP-dependent optogenetics was advantageous in maintaining a normal retina thickness. This work not only provides a valuable addition to the optogenetic toolbox but also offers a perspective to translate light-dependent gene switches toward therapeutic usage.
7.

Photoactivated probiotic micro-reactor synchronizes STING/TLRs agonists to spatiotemporally synergize antitumor immunotherapy.

blue EL222 E. coli Transgene expression
J Nanobiotechnology, 2 Apr 2026 DOI: 10.1186/s12951-026-04300-w Link to full text
Abstract: Reprogramming tumor-associated macrophages (TAMs) from the pro-tumoral M2-like state to the immunostimulatory M1-like phenotype has emerged as a promising strategy for tumor therapy. However, most M2-like TAMs are preferentially located in hypoxic regions of the tumor, which are poorly accessible to many advanced drug delivery systems, posing a significant challenge to effective TAM reprogramming. Here, leveraging the tropism of facultative anaerobic bacteria to localize and propagate in the hypoxic tumor, an optogenetically engineered Escherichia coli Nissle 1917 strain conjugated with murine STING agonist (EcNflaB@UPD) was developed for cancer-specific immunotherapy. Upon near-infrared light illumination, the blue and UV emissions from upconversion nanoparticles (UCNPs) simultaneously activate the expression of Toll-like receptor (TLR) agonist, flaB, from EcNflaB, and the release of photocaged murine STING agonist, DMXAA, respectively. This spatiotemporally synchronized dual release ensures co-localized STING and TLR5 agonists inside the hypoxic niche, repolarizing TAMs from the M2 to the M1 phenotype via synergistic TLR5-MAPK1-NF-κB and STING-NF-κB signaling. The polarization of TAMs enhances their antigen-presenting capacity and, more importantly, activates the cytotoxic, stem-like and memory CD8+ T cells responses. This subsequently inhibits tumor growth, relapse, and metastasis in the murine 4T1 tumor model. Collectively, our work introduces the bacteria-based system that uses near-infrared light to dual-release immunotherapeutics for systemic anti-tumor immunity, opening new avenues for precise and effective cancer immunotherapy.
8.

Light-directed evolution of dynamic, multi-state, and computational protein functionalities.

blue red AtLOV2 EL222 PhyB/PIF3 S. cerevisiae Cell cycle control Transgene expression Benchmarking Multichromatic
Cell, 6 Mar 2026 DOI: 10.1016/j.cell.2026.02.002 Link to full text
Abstract: Evolving dynamic, multi-state, and computational protein functionalities is challenging because it requires selection pressure on all the states of a protein of interest (POI) and the transitions between them. To create a continuous directed evolution paradigm for such properties, we genetically engineered budding yeast for optogenetic input to switch a POI "on" and "off," which, in turn, controls a Cdk1 cyclin that is essential for one cell-cycle stage but detrimental for another. The method, "optovolution," generates dynamic selection pressure on POI cycling at the timescale of tens of minutes. We used it to evolve 19 new variants of the LOV transcription factor El222, including in vivo green-light-responsive variants allowing LOV color-multiplexing. Evolving the PhyB-Pif3 optogenetic system, we discovered that loss of YOR1 makes supplementing phycocyanobilin (PCB) unnecessary. Finally, we demonstrated the generality of the method by evolving a non-light-responsive AND gate (PEST-rtTA). Optovolution makes difficult-to-engineer protein functionalities continuously evolvable.
9.

Magneto-Photonic Gene Circuit for Minimally Invasive Control of Gene Expression in Mammalian Cells.

blue EL222 HEK293FT HeLa Transgene expression
ACS Omega, 5 Mar 2026 DOI: 10.1021/acsomega.5c13335 Link to full text
Abstract: Precise control of gene expression is one of the fundamental goals of synthetic biology. Whether the objective is to modify endogenous cellular function or induce the expression of molecules for diagnostic and therapeutic purposes, gene regulation remains a key aspect of biological systems. Over time, advances in protein engineering and molecular biology have led to the creation of gene circuits capable of inducing the expression of specific proteins in response to external stimulus such as light. These optogenetic, or light-activated circuits hold significant potential for gene therapy as a tool for regulating the expression of therapeutic genes within cells. However, the applications of optogenetic systems can be limited by the lack of efficient ways to deliver light into cells or tissue. Our approach to address this challenge is to harness the power of bioluminescence to produce light directly inside cells using a luminescent enzyme. Combined with a photosensitive transcription factor, we report the development of a genetically encoded optogenetic circuit for the control of gene expression. Furthermore, we utilized a magneto-sensitive protein to engineer a split-protein version of this luminescent enzyme, where its reconstitution is driven by a 50 mT magnetic stimulus. Thus, resulting in a gene circuit activated by a combination of light and magnetic stimulus. We expect this work to advance the implementation of light-controlled systems without the need of external light sources, as well as serve as a basis for the development of future magneto-sensitive tools.
10.

Improving T cell expansion by optogenetically engineered bacteria-loaded MMP-2-responsive cyclophosphamide for antitumor immunotherapy.

blue EL222 E. coli Transgene expression
J Nanobiotechnology, 28 Nov 2025 DOI: 10.1186/s12951-025-03801-4 Link to full text
Abstract: The efficacy of antitumor immunotherapy is closely associated with the expansion of tumor-infiltrating CD8+ T cells. However, within the tumor microenvironment, CD8+ T cells often exhibit reduced proliferation due to persistent exposure to tumor antigens. The cytokine IL-2 is a potent growth factor that can drive the expansion of tumor-infiltrating lymphocytes. While its clinical application has been severely limited by systemic toxicity and in vivo instability. To address these challenges, we have developed a dual-responsive system (EcNIL-2@UCNP/Gel-CTX) leveraging the hypoxic tropisms of E. coli Nissle 1917(EcN). This system is capable of producing IL-2 in situ upon near-infrared (NIR) irradiation and releasing low-dose cyclophosphamide (CTX) in response to matrix metalloproteinase-2 (MMP-2) in the tumor microenvironment. The EcNIL-2@UCNP/Gel-CTX system not only drives the expansion of CD8+ T cells and boost the activity of NK cells but also reduces Treg cell populations, thereby remodeling the immune microenvironment and eliciting robust tumor-specific immune responses in H22 subcutaneous tumors in mice and confers long-term protection against tumor rechallenge by promoting the generation of durable memory T cells. Our findings provide an both light and tumor microenvironment responsive platform for enhanced cancer immunotherapy.
11.

Magneto-Photonic Gene Circuit for Minimally Invasive Control of Gene Expression in Mammalian Cells.

blue EL222 HEK293FT Transgene expression
bioRxiv, 23 Nov 2025 DOI: 10.1101/2025.11.21.688514 Link to full text
Abstract: Precise control of gene expression is one of the fundamental goals of synthetic biology. Whether the objective is to modify endogenous cellular function or induce the expression of molecules for diagnostic and therapeutic purposes, gene regulation remains a key aspect of biological systems. Over time, advances in protein engineering and molecular biology have led to the creation of gene circuits capable of inducing the expression of specific proteins in response to external stimulus such as light. These optogenetic, or light-activated circuits hold significant potential for gene therapy as a tool for regulating the expression of therapeutic genes within cells. However, the applications of optogenetic systems can be limited by the lack of efficient ways for light delivery inside cells or tissue. Our approach to address this challenge is to harness the power of bioluminescence to produce light directly inside cells using a luminescent enzyme. Combined with a photosensitive transcription factor, we report the development of a fully genetically encoded optogenetic circuit for control of gene expression. Furthermore, we utilized a magneto sensitive protein to engineer a split protein version of this luminescent enzyme, where its reconstitution is driven by a 50mT magnetic stimulus. Thus, resulting in a first-of-its-kind gene circuit activated by a combination of light and magnetic stimulus. We expect this work to advance the implementation of light-controlled systems without the need of external light sources, as well as serve as a basis for the development of future magneto-sensitive tools.
12.

De novo designed protein guiding targeted protein degradation.

blue EL222 Magnets E. coli Transgene expression
Nat Commun, 17 Jul 2025 DOI: 10.1038/s41467-025-62050-z Link to full text
Abstract: Targeted protein degradation is a powerful tool for biological research, cell therapy, and synthetic biology. However, conventional methods often depend on pre-fused degrons or chemical degraders, limiting their wider applications. Here we develop a guided protein labeling and degradation system (GPlad) in Escherichia coli, using de novo designed guide proteins and arginine kinase (McsB) for precise degradation of various proteins, including fluorescent proteins, metabolic enzymes, and human proteins. We expand GPlad into versatile tools such as antiGPlad, OptoGPlad, and GPTAC, enabling reversible inhibition, optogenetic regulation, and biological chimerization. The combination of GPlad and antiGPlad allows for programmable circuit construction, including ON/OFF switches, signal amplifiers, and oscillators. OptoGPlad-mediated degradation of MutH accelerates E. coli evolution under protocatechuic acid stress, reducing the required generations from 220 to 100. GPTAC-mediated degradation of AroE enhanced the titer of 3-dehydroshikimic acid to 92.6 g/L, a 23.8% improvement over the conventional CRISPR interference method. We provide a tunable, plug-and-play strategy for straightforward protein degradation without the need for pre-fusion, with substantial implications for synthetic biology and metabolic engineering.
13.

Potent optogenetic regulation of gene expression in mammalian cells for bioproduction and basic research.

blue EL222 VVD CHO-K1 HEK293T human IPSCs Transgene expression
Nucleic Acids Res, 20 Jun 2025 DOI: 10.1093/nar/gkaf546 Link to full text
Abstract: Precise temporal and spatial control of gene expression greatly benefits the study of specific cellular circuits and activities. Compared to chemical inducers, light-dependent control of gene expression by optogenetics achieves a higher spatial and temporal resolution. Beyond basic research, this could also prove decisive for manufacturing difficult-to-express proteins in pharmaceutical bioproduction. However, current optogenetic gene-expression systems limit this application in mammalian cells, as expression levels and the degree of induction upon light stimulation are insufficient. To overcome this limitation, we designed a photoswitch by fusing the blue light-activated light-oxygen-voltage receptor EL222 from Erythrobacter litoralis to the three transcriptional activator domains VP64, p65, and Rta in tandem. The resultant photoswitch, dubbed DEL-VPR, allows up to a 570-fold induction of target gene expression by blue light, thereby achieving expression levels of strong constitutive promoters. Here, we used DEL-VPR to enable light-induced expression of complex monoclonal and bispecific antibodies with reduced byproduct expression and increased yield of functional protein complexes. Our approach offers temporally controlled yet strong gene expression and applies to academic and industrial settings.
14.

Orthogonal replication with optogenetic selection evolves yeast JEN1 into a mevalonate transporter.

blue EL222 S. cerevisiae Transgene expression
Mol Syst Biol, 11 Jun 2025 DOI: 10.1038/s44320-025-00113-5 Link to full text
Abstract: The in vivo continuous evolution system OrthoRep (orthogonal replication) is a powerful strategy for rapid enzyme evolution in Saccharomyces cerevisiae that diversifies genes at a rate exceeding the endogenous genome mutagenesis rate by several orders of magnitude. However, it is difficult to neofunctionalize genes using OrthoRep partly because of the way selection pressures are applied. Here we combine OrthoRep with optogenetics in a selection strategy we call OptoRep, which allows fine-tuning of selection pressure with light. With this capability, we evolved a truncated form of the endogenous monocarboxylate transporter JEN1 (JEN1t) into a de novo mevalonate importer. We demonstrate the functionality of the evolved JEN1t (JEN1tY180C/G) in the production of farnesene, a renewable aviation biofuel, from mevalonate fed to fermentation media or produced by microbial consortia. This study shows that the light-induced complementation of OptoRep may improve the ability to evolve functions not currently accessible for selection, while its fine tunability of selection pressure may allow the continuous evolution of genes whose desired function has a restrictive range between providing effective selection and cellular viability.
15.

Balancing Doses of EL222 and Light Improves Optogenetic Induction of Protein Production in Komagataella phaffii.

blue EL222 P. pastoris Transgene expression
Biotechnol Bioeng, 24 May 2025 DOI: 10.1002/bit.29027 Link to full text
Abstract: Komagataella phaffii, also known as Pichia pastoris, is a powerful host for recombinant protein production, in part due to its exceptionally strong and tightly controlled PAOX1 promoter. Most K. phaffii bioprocesses for recombinant protein production rely on PAOX1 to achieve dynamic control in two-phase processes. Cells are first grown under conditions that repress PAOX1 (growth phase), followed by methanol-induced recombinant protein expression (production phase). In this study, we propose a methanol-free approach for dynamic metabolic control in K. phaffii using optogenetics, which can help enhance input tunability and flexibility in process optimization and control. The light-responsive transcription factor EL222 from Erythrobacter litoralis is used to regulate protein production from the PC120 promoter in K. phaffii with blue light. We used two system designs to explore the advantages and disadvantages of coupling or decoupling EL222 integration with that of the gene of interest. We investigate the relationship between EL222 gene copy number and light dosage to improve production efficiency for intracellular and secreted proteins. Experiments in lab-scale bioreactors demonstrate the feasibility of the outlined optogenetic systems as potential alternatives to conventional methanol-inducible bioprocesses using K. phaffii.
16.

Optogenetic control of pheromone gradients and mating behavior in budding yeast.

blue EL222 S. cerevisiae Control of cytoskeleton / cell motility / cell shape Endogenous gene expression Control of cell-cell / cell-material interactions
Life Sci Alliance, 11 Apr 2025 DOI: 10.26508/lsa.202403078 Link to full text
Abstract: During mating in budding yeast, cells use pheromones to locate each other and fuse. This model system has shaped our current understanding of signal transduction and cell polarization in response to extracellular signals. The cell populations producing extracellular signal landscapes themselves are, however, less well understood, yet crucial for functionally testing quantitative models of cell polarization and for controlling cell behavior through bioengineering approaches. Here we engineered optogenetic control of pheromone landscapes in mating populations of budding yeast, hijacking the mating-pheromone pathway to achieve spatial control of growth, cell morphology, cell-cell fusion, and distance-dependent gene expression in response to light. Using our tool, we were able to spatially control and shape pheromone gradients, allowing the use of a biophysical model to infer the properties of large-scale gradients generated by mating populations in a single, quantitative experimental setup, predicting that the shape of such gradients depends quantitatively on population parameters. Spatial optogenetic control of diffusible signals and their degradation provides a controllable signaling environment for engineering artificial communication and cell-fate systems in gel-embedded cell populations without the need for physical manipulation.
17.

Light-induced expression of gRNA allows for optogenetic gene editing of T lymphocytes in vivo.

blue CRY2/CIB1 EL222 HEK293FT HEK293T mouse in vivo primary mouse T cells Nucleic acid editing
Nucleic Acids Res, 20 Mar 2025 DOI: 10.1093/nar/gkaf213 Link to full text
Abstract: There is currently a lack of tools capable of perturbing genes in both a precise and a spatiotemporal fashion. The flexibility of CRISPR (clustered regularly interspaced short palindromic repeats), coupled with light's unparalleled spatiotemporal resolution deliverable from a controllable source, makes optogenetic CRISPR a well-suited solution for precise spatiotemporal gene perturbations. Here, we present a new optogenetic CRISPR tool (Blue Light-inducible Universal VPR-Improved Production of RGRs, BLU-VIPR) that diverges from prevailing split-Cas design strategies and instead focuses on optogenetic regulation of guide RNA (gRNA) production. We engineered BLU-VIPR around a new potent blue-light activated transcription factor (VPR-EL222) and ribozyme-flanked gRNA. The BLU-VIPR design is genetically encoded and ensures precise excision of multiple gRNAs from a single messenger RNA transcript. This simplified spatiotemporal gene perturbation and allowed for several types of optogenetic CRISPR, including indels, CRISPRa, and base editing. BLU-VIPR also worked in vivo with cells previously intractable to optogenetic gene editing, achieving optogenetic gene editing in T lymphocytes in vivo.
18.

Anti-Pdc1p Nanobody as a Genetically Encoded Inhibitor of Ethanol Production Enables Dual Transcriptional and Post-translational Controls of Yeast Fermentations.

blue EL222 S. cerevisiae Endogenous gene expression
ACS Synth Biol, 17 Mar 2025 DOI: 10.1021/acssynbio.4c00617 Link to full text
Abstract: Microbial fermentation provides a sustainable method of producing valuable chemicals. Adding dynamic control to fermentations can significantly improve titers, but most systems rely on transcriptional controls of metabolic enzymes, leaving existing intracellular enzymes unregulated. This limits the ability of transcriptional controls to switch off metabolic pathways, especially when metabolic enzymes have long half-lives. We developed a two-layer transcriptional/post-translational control system for yeast fermentations. Specifically, the system uses blue light to transcriptionally activate the major pyruvate decarboxylase PDC1, required for cell growth and concomitant ethanol production. Switching to darkness transcriptionally inactivates PDC1 and instead activates the anti-Pdc1p nanobody, NbJRI, to act as a genetically encoded inhibitor of Pdc1p accumulated during the growth phase. This dual transcriptional/post-translational control improves the production of 2,3-BDO and citramalate by up to 100 and 92% compared to using transcriptional controls alone in dynamic two-phase fermentations. This study establishes the NbJRI nanobody as an effective genetically encoded inhibitor of Pdc1p that can enhance the production of pyruvate-derived chemicals.
19.

Light-induced programmable solid-liquid phase transition of biomolecular condensates for improved biosynthesis.

blue EL222 S. cerevisiae Organelle manipulation
Trends Biotechnol, 12 Mar 2025 DOI: 10.1016/j.tibtech.2025.02.012 Link to full text
Abstract: Keeping condensates in liquid-like states throughout the biosynthesis process in microbial cell factories remains an ongoing challenge. Here, we present a light-controlled phase regulator, which maintains the liquid-like features of synthetic condensates on demand throughout the biosynthesis process upon light induction, as demonstrated by various live cell-imaging techniques. Specifically, the tobacco etch virus (TEV) protease controlled by light cleaves intrinsically disordered proteins (IDPs) to alter their valency and concentration for controlled phase transition and programmable fluidity of cellular condensates. As a proof of concept, we harness this capability to significantly improve the production of squalene and ursolic acid (UA) in engineered Saccharomyces cerevisiae. Our work provides a powerful approach to program the solid-liquid phase transition of biomolecular condensates for improved biosynthesis.
20.

Functional analysis of Saccharomyces cerevisiae FLO genes through optogenetic control.

blue EL222 S. cerevisiae Transgene expression Control of cell-cell / cell-material interactions
FEMS Yeast Res, 30 Jan 2025 DOI: 10.1093/femsyr/foaf057 Link to full text
Abstract: Flocculation in Saccharomyces cerevisiae is a critical phenotype with ecological and industrial significance. This study aimed to functionally dissect the contributions of individual FLO genes (FLO1, FLO5, FLO9, FLO10, FLO11) to flocculation by employing an optogenetic circuit (OptoQ-AMP5) for precise, light-inducible control of gene expression. A FLO-null platform yeast strain was engineered allowing the expression of individual FLO genes without native background interference. Each FLO gene was reintroduced into the FLO-null background under the control of OptoQ-AMP5. Upon light induction, strains expressing FLO1, FLO5, or FLO10 demonstrated strong flocculation, with FLO1 and FLO5 forming large and structurally distinct aggregates. FLO9 induced a weaker phenotype. Sugar inhibition assays revealed distinct sensitivities among flocculins, notably FLO9's novel sensitivity to fructose and maltotriose. Additionally, FLO-induced changes in cell surface hydrophobicity were quantified, revealing that FLO10 and FLO1 conferred the greatest hydrophobicity, correlating with their aggregation strength. This work establishes a robust platform for investigating flocculation mechanisms in yeast with temporal precision. It highlights the phenotypic diversity encoded within the FLO gene family and their differential responses to environmental cues. The optogenetic system provides a valuable tool for both fundamental studies and the rational engineering of yeast strains for industrial fermentation processes requiring controlled flocculation.
21.

Optogenetic control of transgene expression in Marchantia polymorpha.

blue red EL222 PhyB/PIF6 M. polymorpha Transgene expression Multichromatic
Appl Plant Sci, 28 Jan 2025 DOI: 10.1002/aps3.11632 Link to full text
Abstract: The model liverwort Marchantia polymorpha is an emerging testbed species for plant metabolic engineering but lacks well-characterized inducible promoters, which are necessary to minimize biochemical and physiological disruption when over-accumulating target products. Here, we demonstrate the functionality of the light-inducible plant-usable light-switch elements (PULSE) optogenetic system in Marchantia and exemplify its use through the light-inducible overproduction of the bioplastic poly-3-hydroxybutyrate (PHB).
22.

Optogenetic control of Corynebacterium glutamicum gene expression.

blue near-infrared BphP1/Q-PAS1 EL222 iLID NcWC1-LOV VfAU1-LOV VVD C. glutamicum in silico Transgene expression
Nucleic Acids Res, 11 Dec 2024 DOI: 10.1093/nar/gkae1149 Link to full text
Abstract: Corynebacterium glutamicum is a key industrial workhorse for producing amino acids and high-value chemicals. Balancing metabolic flow between cell growth and product synthesis is crucial for enhancing production efficiency. Developing dynamic, broadly applicable, and minimally toxic gene regulation tools for C. glutamicum remains challenging, as optogenetic tools ideal for dynamic regulatory strategies have not yet been developed. This study introduces an advanced light-controlled gene expression system using light-controlled RNA-binding proteins (RBP), a first for Corynebacterium glutamicum. We established a gene expression regulation system, 'LightOnC.glu', utilizing the light-controlled RBP to construct light-controlled transcription factors in C. glutamicum. Simultaneously, we developed a high-performance light-controlled gene interference system using CRISPR/Cpf1 tools. The metabolic flow in the synthesis network was designed to enable the production of chitin oligosaccharides (CHOSs) and chondroitin sulphate oligosaccharides A (CSA) for the first time in C. glutamicum. Additionally, a light-controlled bioreactor was constructed, achieving a CHOSs production concentration of 6.2 g/L, the highest titer recorded for CHOSs biosynthesis to date. Herein, we have established a programmable light-responsive genetic circuit in C. glutamicum, advancing the theory of dynamic regulation based on light signaling. This breakthrough has potential applications in optimizing metabolic modules in other chassis cells and synthesizing other compounds.
23.

Genetically-stable engineered optogenetic gene switches modulate spatial cell morphogenesis in two- and three-dimensional tissue cultures.

blue red EL222 PhyB/PIF6 TULIP CHO-K1 HEK293 HEK293T HeLa Transgene expression Cell death Developmental processes
Nat Commun, 2 Dec 2024 DOI: 10.1038/s41467-024-54350-7 Link to full text
Abstract: Recent advances in tissue engineering have been remarkable, yet the precise control of cellular behavior in 2D and 3D cultures remains challenging. One approach to address this limitation is to genomically engineer optogenetic control of cellular processes into tissues using gene switches that can operate with only a few genomic copies. Here, we implement blue and red light-responsive gene switches to engineer genomically stable two- and three-dimensional mammalian tissue models. Notably, we achieve precise control of cell death and morphogen-directed patterning in 2D and 3D tissues by optogenetically regulating cell necroptosis and synthetic WNT3A signaling at high spatiotemporal resolution. This is accomplished using custom-built patterned LED systems, including digital mirrors and photomasks, as well as laser techniques. These advancements demonstrate the capability of precise spatiotemporal modulation in tissue engineering and open up new avenues for developing programmable 3D tissue and organ models, with significant implications for biomedical research and therapeutic applications.
24.

Light-Induced Nanobody-Mediated Targeted Protein Degradation for Metabolic Flux Control.

blue EL222 S. cerevisiae Signaling cascade control Transgene expression
ACS Synth Biol, 11 Nov 2024 DOI: 10.1021/acssynbio.4c00552 Link to full text
Abstract: In metabolic engineering, increasing chemical production usually involves manipulating the expression levels of key enzymes. However, limited synthetic tools exist for modulating enzyme activity beyond the transcription level. Inspired by natural post-translational mechanisms, we present targeted enzyme degradation mediated by optically controlled nanobodies. We applied this method to a branched biosynthetic pathway, deoxyviolacein, and observed enhanced product specificity and yield. We then extend the biosynthesis pathway to violacein and show how simultaneous degradation of two target enzymes can further shift production profiles. Through the redirection of metabolic flux, we demonstrate how targeted enzyme degradation can be used to minimize unwanted intermediates and boost the formation of desired products.
25.

Bacteria-based cascade in situ near-infrared nano-optogenetically induced photothermal tumor therapy.

blue EL222 E. coli Transgene expression
Theranostics, 12 Aug 2024 DOI: 10.7150/thno.98097 Link to full text
Abstract: Rationale: Optogenetically engineered facultative anaerobic bacteria exhibit a favorable tendency to colonize at solid tumor sites and spatiotemporally-programmable therapeutics release abilities, attracting extensive attention in precision tumor therapy. However, their therapeutic efficacy is moderate. Conventional photothermal agents with high tumor ablation capabilities exhibit low tumor targeting efficiency, resulting in significant off-target side effects. The combination of optogenetics and photothermal therapy may offer both tumor-targeting and excellent tumor-elimination capabilities, which unfortunately has rarely been investigated. Herein, we construct a bacteria-based cascade near-infrared optogentical-photothermal system (EcNαHL-UCNPs) for enhanced tumor therapy. Methods: EcNαHL-UCNPs consists of an optogenetically engineered Escherichia coli Nissle 1917 (EcN) conjugated with lanthanide-doped upconversion nanoparticles (UCNPs), which are capable of locally secreting α-hemolysin (αHL), a pore-forming protein, in responsive to NIR irradiation. Anti-tumor effects of EcNαHL-UCNPs were determined in both H22 and 4T1 tumors. Results: The αHL not only eliminates tumor cells, but more importantly disrupts endothelium to form thrombosis as an in situ photothermal agent in tumors. The in situ formed thrombosis significantly potentiates the photothermic ablation of H22 tumors upon subsequent NIR light irradiation. Besides, αHL secreted by EcNαHL-UCNPs under NIR light irradiation not only inhibits 4T1 tumor growth, but also suppresses metastasis of 4T1 tumor via inducing the immune response. Conclusion: Our studies highlight bacteria-based cascade optogenetical-photothermal system for precise and effective tumor therapy.
Submit a new publication to our database