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Synthetic transcriptional repression systems in plants.

Transcriptional repression is a fundamental regulatory mechanism that enables precise control of gene expression in response to developmental signals and environmental stimuli. Synthetic biology can leverage this process within plants to engineer programmable transgene repression systems. This review examines strategies for harnessing prokaryotic repressors in eukaryotic systems to develop synthetic repression systems in plants. These systems utilize modular promoter and repressor architectures that can be tuned through operator placement and repression-domain fusion, respectively, to adjust transcriptional regulation. Chemically dependent inducibility can also be introduced either through use of native derepression mechanisms of the prokaryotic repressors or the incorporation of ligand-binding domains. Finally, this review explores key challenges in designing synthetic repression systems, including kinetics constraints, balancing ON and OFF states, and differences between transient and transgenic expression contexts. Overall, this review highlights modular design frameworks for tunable transgene expression in plants.

Gene Expression Regulation, Plant

Nitric oxide enhances SlSPL10-mediated transcriptional repression of carotenoid synthesis genes to delay tomato fruit carotenoid accumulation.

Nitric oxide (NO) inhibits climacteric fruit ripening, but its mechanisms remain elusive. Here, S-nitrosoglutathione (GSNO, a NO donor) reduces carotenoid accumulation in tomato fruit, confirming NO's role as carotenoid biosynthesis suppressor. Transcriptome analysis identified SlSPL10 (SQUAMOSA promoter binding protein-like 10) as a key player during this process. Genetic evidence further revealed that SlSPL10 negatively regulates carotenoid synthesis. Moreover, GSNO fails to suppress carotenoid synthesis in slspl10 mutant fruit, in contrast to wild-type fruit, highlighting the involvement of SlSPL10 in NO-inhibited carotenoid synthesis. Transcriptomic profiling of slspl10 mutant fruit showed that both NO and SlSPL10 regulate key carotenoid synthesis genes (SlGPS, SlPDS, SlZDS, SlZISO, and SlCRTISO). SlSPL10 directly binds to the promoters of these genes to repress their transcription, and NO enhances the transcriptional inhibition of SlGPS, SlZISO, and SlCRTISO. These three genes are indispensable for SlSPL10's role in NO-mediated carotenoid suppression. Collectively, NO enhances SlSPL10-mediated repression of carotenoid biosynthesis gene expression, reducing carotenoid accumulation in tomato fruit.

Solanum lycopersicum

A Hox-dependent anchoring mechanism mediates transcriptional repression of autophagy-related genes at the nuclear periphery.

The spatial organization of the genome within the nucleus is critical for gene regulation, yet the mechanisms by which transcription factors (TFs) orchestrate this process remain poorly understood. Here, we demonstrate that the Drosophila Hox protein Ultrabithorax (Ubx) represses autophagy-related (atg) genes by tethering their loci to the nuclear periphery. This repressive activity relies on the interaction with the nuclear lamina component Lamin-C (LamC). Furthermore, we identify that DNA-binding of Ubx is determinant for both the physical interaction with nucleoplasmic LamC and the repression of atg genes in vivo. Together, our findings reveal a mechanism whereby a Hox TF functions as a spatial anchor, positioning target genes within a LamC-rich nuclear compartment to ensure efficient transcriptional repression.

Animals

Non-coding RNA 7SK drives tumor resistance by coupling local oncogenic activation with global transcriptional repression.

The conserved non-coding RNA 7SK is a well-established global transcriptional repressor, yet its context-specific functions in cancer and therapy resistance remain paradoxical. Here, we resolve this paradox by uncovering a dual-axis mechanism through which 7SK drives colorectal cancer (CRC) resistance. By integrating single-cell multi-omics with functional assays, we demonstrate that 7SK not only selectively activates the JUN transcriptional network to fuel tumor proliferation but also reduces global transcriptional entropy to stabilize an immunosuppressive microenvironment and promote immune escape. This "local activation-global suppression" paradigm is conserved across multiple cancer types, positioning 7SK as a potential pan-cancer therapeutic target. Our findings reveal 7SK as a dynamic modulator that balances oncogene-specific transcription with global transcriptional suppression across cancers, providing a new framework for understanding and targeting ncRNA-mediated resistance.

Humans

Detection of messenger RNA from the isoleucine--valine operons of Salmonella typhimurium by heterologous DNA-RNA hybridization: involvement of transfer RNA in transcriptional repression.

A hybridization assay using Escherichia coli K-12 DNA isolated from the specialized transducing bacteriophage gammaCI857St68h80 dilv was used to examine the rate of synthesis of the messenger RNA's (mRNA) derived from the isoleucine-valine (ilv) gene cluster of Salmonella typhimurium. In all cases examined, changes in ilv enzyme levels could be correlated with changes in the rate of synthesis of ilv mRNA. Several well characterized regulatory mutants of S. typhimurium had rates of synthesis of ilv mRNA 3 to 8-fold higher than the repressed wild-type strain. The increased rates of ilv mRNA synthesis found in a hisT strain as well as in isoleucyl-and leucyl-tRNA SYNTHETASE MUTANTS, STRONGLY SUGGESTS A ROLE FOR BRANCHED-CHAIN AMINOACYL-TRNA's in transcriptional control.

Coliphages

TagR, a newly identified member of the MarR family of transcriptional regulators, represses the NRPS operon in Klebsiella oxytoca.

Toxigenic Klebsiella oxytoca strains produce the pyrrolobenzodiazepine enterotoxins tilimycin (TM) and tilivalline (TV), which contribute to the development of antibiotic-associated hemorrhagic colitis. The biosynthesis of these toxins depends on the nonribosomal peptide synthetase (NRPS) operon located within the til pathogenicity island. Although several global and signal-responsive regulators of NRPS operon expression have been identified, the regulatory network governing enterotoxin biosynthesis remains incompletely characterized. In this study, we identified a previously unrecognized transcriptional regulator encoded within the til pathogenicity island of K. oxytoca. This protein, designated TagR (Tilivalline-associated genes repressor), is a member of the MarR family and acts as a negative regulator of NRPS operon expression. Structural prediction, molecular dynamics simulations, and biochemical analyses demonstrated that TagR exhibits the characteristic architecture of MarR family regulators and forms a stable homodimer. Deletion of tagR led to significant upregulation of the NRPS-associated genes npsA, thdA, and npsB, while complementation restored transcriptional repression. Electrophoretic mobility shift assays confirmed that TagR binds directly and specifically to the regulatory region upstream of the NRPS operon, supporting a mechanism of direct transcriptional repression. Consistent with these findings, loss of TagR significantly increased the cytotoxicity of K. oxytoca culture supernatants toward HeLa cells. Collectively, these results identify TagR as a direct repressor of the NRPS operon and expand the regulatory framework governing enterotoxin biosynthesis in toxigenic K. oxytoca. This study provides new insight into the transcriptional control of virulence-associated genes and establishes TagR as a previously unrecognized component of the regulatory network controlling TM and TV production.IMPORTANCEElucidating the mechanisms by which toxigenic Klebsiella oxytoca regulates enterotoxin production is critical for understanding the pathogenesis of antibiotic-associated hemorrhagic colitis. TagR is identified as a previously unrecognized MarR family regulator that directly represses the nonribosomal peptide synthetase (NRPS) operon responsible for tilimycin (TM) and tilivalline (TV) biosynthesis. This discovery uncovers a novel regulatory mechanism governing toxin production and offers new perspectives on virulence regulation in this emerging intestinal pathogen.

Klebsiella oxytoca

Control of foreign DNA: emerging roles of xenogeneic silencers.

Bacteria continuously acquire foreign DNA through horizontal gene transfer, yet its successful integration depends on regulatory mechanisms that balance genome protection with evolutionary innovation. Xenogeneic silencers are central to this process: they preferentially bind AT-rich DNA, a common feature of many horizontally acquired genetic elements, and repress its transcription. Recent studies, however, reveal a much broader regulatory repertoire. Beyond transcriptional repression, these proteins contribute to chromosome organization by forming higher-order nucleoprotein complexes and phase-separated condensates that shape bacterial nucleoid architecture. Furthermore, they play roles in regulating bacteriophage infection cycles, including mechanisms by which phages hijack host silencing activities for their own benefit. Their extensive regulatory reach, spanning virulence genes, biofilm formation, specialized metabolite production, and mobile genetic elements (MGEs), underscores their central role in connecting environmental signals, including fluctuations in the second messenger c-di-GMP, with gene expression, and genome organization. The diversification of xenogeneic silencers across bacterial chromosomes, plasmids, phages, and other MGEs highlights their evolutionary significance. Together, these recent findings position xenogeneic silencers as dynamic regulatory modules that shape the fate of foreign DNA across the horizontal gene transfer network.

Gene Transfer, Horizontal

Transcription factor LbUBC positively regulates salt gland development and salt tolerance by directly binding to the LbTTG1 promoter and repressing its transcription.

KEY MESSAGE:: LbUBC enhances salt tolerance by promoting salt gland development via repressing LbTTG1, revealing a synergisticregulatory mechanism in Limonium bicolor. In the context of increasingly severe soil salinization, salt-tolerant genetic resources from halophytes show great application potential. In particular, the recretohalophyte Limonium bicolor, which possesses specialized salt gland structures, has become a key model for deciphering the molecular mechanisms underlying salt tolerance and salt gland development. In this study, using LbTTG1-overexpressing and -silenced lines, we demonstrate that LbTTG1 negatively regulates salt-gland development and salt tolerance. Through yeast one-hybrid, EMSA, and dual-luciferase assays, Lb7G33228 (LbUBC) was screened and verified as an upstream transcriptional regulator of LbTTG1. LbUBC enhances salt tolerance in L. bicolor by positively regulating salt-gland development, verified using LbUBC silence and overexpression strains. Interestingly, LbUBC represses the expression of its downstream target LbTTG1, thereby releasing the inhibitory effect of LbTTG1 on salt-gland development. In this manner, LbUBC positively regulates salt-gland development, achieving a dynamic balance in the regulation of salt-gland development and salt tolerance in L. bicolor. This study reveals a synergistic regulatory mechanism involving multiple genes, offering new insights for comprehensively dissecting the molecular regulatory network of salt-gland development.

Salt Tolerance

High temperature-responsive DEAR4 condensation confers thermotolerance through recruiting TOPLESS in Arabidopsis nucleus.

Global warming is harmful to plants and threatens crop yields in the world. In contrast to other abiotic stresses, the molecular mechanisms for plant high temperature perception and signaling are still not fully understood. Here, we report that transcription factor DREB AND EAR MOTIF PROTEIN 4 (DEAR4) positively regulates heat tolerance in Arabidopsis thaliana. We further reveal that DEAR4 proteins undergo liquid-liquid phase separation (LLPS) and high temperature could induce DEAR4 condensate formation in the nucleus. Moreover, DEAR4 recruits the transcriptional co-repressor TOPLESS (TPL) into the nuclear speckles under high temperature. The high temperature triggered DEAR4-TPL co-condensates enhance their transcriptional repression activity through modulating histone deacetylation levels of GASA5, which is a reported negative regulator of HEAT SHOCK PROTEINs (HSPs). A genome-wide transcriptional landscape study confirms that DEAR4 induces the expression of multiple HSPs. Taken together, we illustrate a transcriptional repression mechanism mediated by DEAR4 through LLPS to confer plants thermotolerance and open a new avenue for translating this knowledge into crops for improving their heat resistance.

Arabidopsis

Structure and Methyl-lysine Binding Selectivity of the HUSH Complex Subunit MPP8.

The Human Silencing Hub (HUSH) guards the genome from the pathogenic effects of retroelement expression. Composed of MPP8, TASOR, and Periphilin-1, HUSH recognizes actively transcribed retrotransposed sequences by the presence of long (>1.5-kb) nascent transcripts without introns. HUSH recruits effectors that alter chromatin structure, degrade transcripts, and deposit transcriptionally repressive epigenetic marks. Here, we report the crystal structure of the C-terminal domain (CTD) of MPP8 necessary for HUSH activity. The MPP8 CTD consists of five ankyrin repeats followed by a domain with structural homology to the PINIT domains of Siz/PIAS-family SUMO E3 ligases. AlphaFold3 modeling of the MPP8-TASOR complex predicts that a SPOC domain and a domain with a novel fold in TASOR form extended interaction interfaces with the MPP8 CTD. Point mutations at these interfaces resulted in loss of HUSH-dependent transcriptional repression in a cell-based reporter assay, validating the AlphaFold3 model. The MPP8 chromodomain, known to bind the repressive mark H3K9me3, bound with similar or higher affinity to sequences in the H3K9 methyltransferase subunits SETDB1, ATF7IP, G9a, and GLP. Hence, MPP8 promotes heterochromatinization by recruiting H3K9 methyltransferases. Our work identifies novel structural elements in MPP8 required for HUSH complex assembly and silencing, thereby fulfilling vital functions in controlling retrotransposons.

Humans

Mechanisms of Transcriptional Regulation by Salicylic Acid Receptors.

Salicylic acid (SA) is a key phytohormone that activates plant defense responses 1-3. In Arabidopsis, NPR1 (also known as NIM1) and NPR3/NPR4 have been identified as dual SA receptors responsible for perceiving SA 4-6. However, the mechanisms of how SA binding to the NPR proteins leads to induction of defense gene expression remain unclear. Here, we elucidate how SA triggers transcriptional activation via NPR1 and relieves transcriptional repression mediated by NPR3/NPR4. We identified Mediator Complex Subunit 15A (MED15A) as a bridge between NPR1 and the Mediator complex governing transcription. SA induces direct interaction of NPR1 with MED15A. Structural and functional analysis showed that the binding of NPR1 to MED15A is essential for NPR1-mediated transcriptional activation. Meanwhile, SA relieves transcriptional repression mediated by NPR3/NPR4. NIM1-interacting 1 (NIMIN1) interacts with NPR3/NPR4 and the Topless (TPL) co-repressor, connecting them to Polycomb Repressive Complex 2 (PRC2) to mediate H3K27 trimethylation of SA-responsive genes. SA inhibits the interactions between NPR3/NPR4 and NIMIN1, reduces H3K27 trimethylation levels and increases histone acetylation of the target genes to release NPR3/NPR4-mediated repression. Our study offers a comprehensive view of SA-mediated defense gene activation. These findings lay a foundation for designing more effective SA analogs as agrochemicals and for engineering crop resistance by manipulating SA perception and signaling.

Journal Article

Macromolecular and cytological changes in fission yeast G0 nuclei.

When starved of nitrogen, cells of the fission yeast Schizosaccharomyces pombe enter a quiescent 'G0' state with smaller nuclei and transcriptional repression. The genomics of S. pombe G0 cells has been well studied, but much of its nuclear cell biology remains unknown. Here, we use confocal microscopy, immunoblots and electron cryotomography to investigate the cytological, biochemical and ultrastructural differences between S. pombe proliferating, G1-arrested and G0 cell nuclei, with an emphasis on the histone acetylation, RNA polymerase II fates and macromolecular complex packing. Compared to proliferating cells, G0 cells have lower levels of histone acetylation, nuclear RNA polymerase II and active transcription. The G0 nucleus has similar macromolecular crowding yet fewer chromatin-associated multi-megadalton globular complexes. Induced histone hyperacetylation during nitrogen starvation results in cells that have larger nuclei and therefore chromatin that is less compact. However, these histone-hyperacetylated cells remain transcriptionally repressed with similar nuclear crowding. Canonical nucleosomes - those that resemble the crystal structure - are rare in proliferating, G1-arrested and G0 cells. Our study therefore shows that extreme changes in nucleus physiology are possible without extreme reorganization at the macromolecular level.

Schizosaccharomyces

ATOH8 confers the vulnerability of tumor cells to ferroptosis by repressing SCD expression.

Emerging evidence indicates that transcriptional regulation plays pivotal roles in modulating cellular vulnerability to ferroptosis. However, the intricate mechanisms governing these processes remain poorly understood. In this study, we identify ATOH8, a basic helix-loop-helix (bHLH) transcription factor, as a key player in ferroptosis regulation. ATOH8 is significantly upregulated in tumor cells following treatment with a ferroptosis inducer. Overexpression of ATOH8 increases the susceptibility of tumor cells to ferroptosis, while deletion of ATOH8 promotes ferroptosis evasion. Mechanistically, ATOH8 confers the sensitivity of tumor cells to ferroptosis by suppressing the transcription of stearoyl-CoA desaturase (SCD). Additionally, another bHLH family member, TCF3, is found to functions as a co-factor with ATOH8 by forming a TCF3-ATOH8 transcriptional repressive complex that suppresses SCD transcription. Furthermore, searching for upstream element reveals that EZH2 epigenetically suppresses ATOH8 expression by promoting DNA methylation in the ATOH8 promoter region and increasing the level of H3K27 me3. Importantly, pharmacological inhibition of EZH2 in a combined with a ferroptosis inducer markedly impedes tumor growth both in vitro and in vivo. Collectively, our study elucidates a molecular link between ferroptosis and epigenetic and transcriptional regulation, highlighting the potential of EZH2 and ATOH8 as therapeutic targets for cancer treatment.

Ferroptosis

Selective repression of transcription by base sequence specific synthetic polymers.

We report the effect of novel synthetic polymers on deoxyribonucleic acid (DNA) directed ribonucleic acid (RNA) synthesis in vitro. Polymers contained base-selective monomers, including a GC-specific phenazine derivative and an AT-specific triphenylmethane dye. Radical chain polymerization was carried out in aqueous solution by using monomers bound to a template DNA, which was obtained from either lambda or T7 bacteriophage. Polymers were isolated and reannealed with DNA samples, including competitive mixtures of T7 and lambda DNAs. We measured transcription from DNA-polymer complexes by using Escherichia coli RNA polymerase and determined not only the reduction in total transcription levels but also the relative inhibition of lambda- or T7-specific transcription by using a hybridization assay. The results show that micromolar concentrations of individual dyes are sufficient to cause substantial inhibition of transcription when the dyes are incorporated into polymers. More significantly, a number of the polymers inhibited more strongly transcription from the DNA which had served as template for polymer synthesis than from the DNA present as competitor in the annealing process. We conclude that template synthesis of DNA-binding polymers can lead to preferential inhibition of function of the original template. The apparent relative affinity of polymer for competing DNAs can be altered by at least an order of magnitude depending on which DNA was used as the synthesis template. The results offer a new approach to improving the specificity of DNA-binding drugs.

Coloring Agents

Active learning of enhancers and silencers in the developing neural retina.

Deep learning is a promising strategy for modeling cis-regulatory elements. However, models trained on genomic sequences often fail to explain why the same transcription factor can activate or repress transcription in different contexts. To address this limitation, we developed an active learning approach to train models that distinguish between enhancers and silencers composed of binding sites for the photoreceptor transcription factor cone-rod homeobox (CRX). After training the model on nearly all bound CRX sites from the genome, we coupled synthetic biology with uncertainty sampling to generate additional rounds of informative training data. This allowed us to iteratively train models on data from multiple rounds of massively parallel reporter assays. The ability of the resulting models to discriminate between CRX sites with identical sequence but opposite functions establishes active learning as an effective strategy to train models of regulatory DNA. A record of this paper's transparent peer review process is included in the supplemental information.

Retina

Phosphorylation as a regulatory mechanism of HP1 protein multifunctionality.

The Heterochromatin Protein 1 (HP1) family proteins are key regulators of chromatin structure and genome function, acting as "reader" proteins that recognize and bind to histone H3 lysine 9 methylation (H3K9me). Beyond their canonical role in heterochromatin formation and transcriptional repression, HP1 proteins exhibit functional versatility, participating in transcriptional activation, RNA processing, DNA repair, and chromosome segregation. This multifunctionality is mediated partially by post-translational modifications (PTMs), with phosphorylation emerging as a central regulatory mechanism. This review explores the diverse effects of HP1 phosphorylation on protein function and chromatin interactions, focusing on Drosophila melanogaster HP1a and its orthologs, mammalian HP1α and S. pombe Swi6. Phosphorylation in the N-terminal tail enhances HP1's affinity for H3K9me, promoting transcriptional silencing. Mitotic phosphorylation of serine residues in the hinge region, regulated by kinases such as AURKB and NDR1/2, leads to chromatin release and relocalization to the kinetochore, enabling proper chromosome segregation. Additionally, phosphorylation modulates HP1 phase separation dynamics, influencing nuclear compartmentalization and chromatin condensation. These findings highlight phosphorylation as a versatile molecular switch that enables HP1 proteins to transition between structural and regulatory roles, contributing to their evolutionary conserved multifunctionality in genome regulation and cell division. Further investigation into HP1 phosphorylation across species and contexts is essential to fully understand its contributions to chromatin biology.

Phosphorylation

ModE Regulates Alternative Nitrogenase Expression in the Methanogen Methanosarcina acetivorans.

All methanogens that can fix nitrogen use molybdenum (Mo) nitrogenase. Some methanogens, including Methanosarcina acetivorans , also contain alternative vanadium- and iron-nitrogenases, encoded by the vnf and anf operons, respectively. These nitrogenases are produced when there is insufficient Mo to support Mo-nitrogenase activity. The factors that control the expression of the alternative nitrogenases in response to Mo availability are unknown in methanogens. Here we show that ModE is the regulator that represses transcription of the vnf and anf operons in M. acetivorans when cells are grown with Mo. CRISPRi repression of modE results in a significant increase in the transcription of the vnf and anf operons as well as the detection of Fe-nitrogenase during nitrogen fixation in the presence of Mo. Gel shift assays with recombinant ModE demonstrated that ModE binds a specific sequence motif upstream of the vnf and anf operons, as well as other genes and operons related to nitrogen fixation and Mo transport. However, purified ModE does not contain Mo, and the addition of Mo does not alter the affinity of ModE for DNA, indicating M. acetivorans ModE may not directly bind Mo. This study shows that ModE is the primary Mo-responsive regulator of alternative nitrogenase expression in M. acetivorans , but other factor(s) are likely involved in directly sensing Mo.

Methanosarcina

Mediator at the Helm: Coordinating transcription and biomolecular condensates in hematopoiesis.

Hematopoiesis relies on precisely coordinated transcriptional programs that balance stem cell self-renewal, lineage commitment, and terminal differentiation. Central to this regulation is the Mediator complex, a large multi-subunit transcriptional co-regulator that integrates signals from transcription factors and chromatin regulators to control RNA polymerase Ⅱ (Pol Ⅱ) activity. The dynamic and modular composition of Mediator enables context-dependent transcriptional outputs, while individual subunits can exert specialized regulatory functions during hematopoietic lineage specification, thereby contributing to cell-fate-specific transcriptional outputs. Recent advances further reveal that transcriptional regulation is shaped by the spatial organization of regulatory machinery with biomolecular condensates formed through liquid-liquid phase separation (LLPS), particularly at super-enhancers. In this emerging framework, Mediator functions not only as a transcriptional integrator but also as a key coordinator of transcriptional machinery within condensates at cell-fate-related gene loci. In this chapter, we summarize how distinct Mediator subunits confer specific modes of transcriptional regulation and discuss how the interplay between Mediator and phase-separated condensates shapes transcriptional control during hematopoiesis. We highlight how specific subunits, including MED1 and MED26, participate in distinct regulatory modes in erythropoiesis, spanning super-enhancer-driven transcriptional activation, progenitor expansion, and condensate-associated mechanisms that influence Pol Ⅱ pausing and global transcription repression during terminal differentiation. Together, these findings support a model in which Mediator integrates transcriptional regulation with nuclear organization through condensate-mediated mechanisms, providing a conceptual framework for understanding hematopoietic cell fate decisions and transcriptional dysregulation in hematological diseases.

Hematopoiesis