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Variability in intrinsic promoter strength underlies the temporal hierarchy of the Caulobacter SOS response induction.

Bacteria encode for gene regulatory networks crucial for sensing and repairing DNA damage. Upon exposure to genotoxic stress, these transcriptional networks are induced in a temporally structured manner. A case in point is of the highly conserved SOS response that is regulated by the LexA repressor. Studies have proposed that affinity of LexA towards promoters of SOS response genes is the primary determinant of its expression dynamics. Here, we describe an additional level of regulation beyond LexA box properties that modulates the SOS response gene expression pattern. Using transcriptomic analyses, we reveal a distinct temporal hierarchy in the induction of SOS-regulated genes in Caulobacter crescentus. We observe that LexA box properties are insufficient in predicting the temporal hierarchy of these genes. Instead, we find that intrinsic promoter strength underlies the order of gene activation, with differential sigma factor association as one of the factors modulating gene expression timing. Our findings highlight a novel regulatory layer in SOS dynamics and underscore the importance of promoter properties in shaping bacterial stress responses.

Promoter Regions, Genetic

Activation and modulation of the host response to DNA damage by an integrative and conjugative element.

Mobile genetic elements help drive horizontal gene transfer and bacterial evolution. Conjugative elements and temperate bacteriophages can be stably maintained in host cells. They can alter host physiology and regulatory responses and typically carry genes that are beneficial to their hosts. We found that ICEBs1, an integrative and conjugative element (ICE) of Bacillus subtilis, inhibits the host response to DNA damage (the SOS response). Activation of ICEBs1 before DNA damage reduced host cell lysis that was caused by SOS-mediated activation of two resident prophages. Further, activation of ICEBs1 itself activated the SOS response in a subpopulation of cells, and this activation was attenuated by the functions of the ICEBs1 genes ydcT and yddA (now ramT and ramA; ram for RecA modulator). Double-mutant analyses indicated that RamA functions to inhibit and RamT functions to both inhibit and activate the SOS response. Both RamT and RamA caused a reduction in RecA filaments, one of the early steps in activation of the SOS response. We suspect that there are several different mechanisms by which mobile genetic elements that generate single-stranded DNA (ssDNA) during their life cycle inhibit the host SOS response and RecA function, as RamT and RamA differ from the known SOS inhibitors encoded by conjugative elements.IMPORTANCEBacterial genomes typically contain mobile genetic elements, including bacteriophages (viruses) and integrative and conjugative elements, that affect host physiology. ICEs can excise from the chromosome and undergo rolling-circle replication, producing ssDNA, a signal that indicates DNA damage and activates the host SOS response. We found that following excision and replication, ICEBs1 of B. subtilis stimulates the host SOS response and that ICEBs1 encodes two proteins that limit the extent of this response. These proteins also reduce the amount of cell killing caused by resident prophages following their activation by DNA damage. These proteins are different from those previously characterized that inhibit the host SOS response and represent a new way in which ICEs can affect their host cells.

Bacillus subtilis

The small bacterial membrane protein YohP induces nucleoid condensation in E. coli and inhibits oligomerization of antimicrobial peptides.

Prokaryotic organisms execute multiple stress response mechanisms in order to cope with rapidly changing environments. Some mechanisms respond to specific cues, such as the OxyR-dependent response to hydrogen peroxide or the SOS-response that is induced upon DNA-damage. These specific responses complement general mechanisms that respond to multiple and diverse stressors. One example is nucleoid condensation, which is a rapid and effective mechanism for genome protection and observed in response to various stresses, including entry into stationary phase. Recently, the upregulation of small membrane proteins (SMPs) in response to stress was observed, but details on how this emerging class of proteins modulate the stress response is largely unknown. Here, we demonstrate that the production of two SMPs, YohP and YncL, cause nucleoid condensation in Escherichia coli. Nucleoid condensation is the result of YohP-/YncL-induced sublethal membrane depolarization, which induces the phage-shock response and leads to a reduction of global protein synthesis. YohP production also prevents the oligomerization of the antimicrobial peptide magainin-2 in the E. coli membrane and reduces the metabolic activity of E. coli cells. Thus, the synthesis of YohP and likely of other SMPs potentially protects bacterial cells against some unfavorable conditions by shifting them into a metabolically silent state.

YncL

A base editor facilitates simultaneous purine and pyrimidine substitutions for ex vivo and in vivo mutagenesis screens.

Genetic mutations are closely linked to human diseases, yet the relationship between many mutations and their corresponding phenotypes remains poorly understood. Furthermore, tools to study the connection between nucleotide variations and phenotypes are limited. To address this issue, we developed ACGBEmax by fusing the dual-functional deaminase, engineered N-methylpurine DNA glycosylase, and evolved SOS response associated peptidase domain with nCas9(D10A). ACGBEmax enables the precise conversion of A, C, and G to other bases in mammalian cells, thereby generating an extensive range of base mutations types. We used ACGBEmax to generate HPRT variants, identifying mutations conferring resistance to 6-thioguanine. Additionally, we performed in situ mutagenesis of Ctnnb1 in mouse liver, identifying both known and potential oncogenic mutations. Our results prove that ACGBEmax is a powerful tool for generating a wide spectrum of mutation types at specific gene loci, highlighting its significant potential for applications in functional screening and the directed evolution of protein variants.

Animals

The Oxidative DNA Lesion 6-Oxo-M1dG is a Potent Replication Block, Inducing Deletions and Base Substitution Mutations In Vivo.

One of the most prevalent exocyclic DNA adducts is 3-(2-deoxy-β-D-erythro-pentofuranosyl) pyrimido[1,2-α]purin-10(3H)-one (M1dG), an oxidative DNA lesion that forms by the reaction of guanines in nucleic acids and pool nucleotides with oxidation-induced base propenals or with the lipid peroxidation product, malondialdehyde. Further oxidation converts M1dG to 6-oxo-M1dG, an even more deleterious lesion whose genotoxic and mutagenic properties have been characterized in vitro. The present work uses a site-specifically modified viral genome to evaluate the biochemical consequences of 6-oxo-M1dG in Escherichia coli cells and contrast them with the properties of the M1dG parent lesion. We found that 6-oxo-M1dG strongly inhibited replication, with a bypass efficiency of 1-2%, relative to an unmodified guanine. By contrast, under the same experimental conditions, the bypass efficiency of M1dG was 30-40%. Beyond its low bypass rate, 6-oxo-M1dG was 20 times more mutagenic than M1dG, with the majority of mutations being single base deletions. However, when the levels of bypass polymerases were increased by inducing the SOS response, the proportion of deletions decreased, at the expense of additional single base substitutions, primarily G → T and G → C mutations. Finally, two DNA repair pathways─the direct reversal dioxygenase AlkB and glycosylase MutY─were investigated for their putative activity on 6-oxo-M1dG. The results indicated that neither system was capable of repairing this highly mutagenic lesion.

Escherichia coli

Mapping Protein Occupancy on DNA with an Unnatural Cytosine Modification.

The epigenome provides a dynamic layer of gene regulatory control above the static genetic sequence. DNA base modifications are key epigenetic regulators, predominantly found within CpG contexts in mammalian genomes. Working in tandem with these DNA modifications, chromatin-associated proteins and transcription factors further control gene expression. Given the interplay of these factors, concurrent mapping of DNA base modifications with protein-DNA occupancy can greatly aid in interpreting the epigenome. Existing multimodal mapping methods include the use of DNA methyltransferases to mark accessible, protein-unbound DNA in non-CpG contexts. However, such approaches can either confound readouts with native DNA modifications or constrain users to third-generation sequencing approaches. To circumvent these limitations, we explored the possibility of introducing an unnatural DNA base modification, 5-carboxymethylcytosine, as an alternative label for protein occupancy. Here, we report our efforts to rationally engineer non-CpG-specific DNA methyltransferases to take on neomorphic DNA carboxymethyltransferase (CxMTase) activities. We find that DNA carboxymethylation of cytosines in GpC contexts shows broad compatibility with the most widely used epigenetic detection methods and can be used to reliably report on protein occupancy states. Using this approach, we reveal the single-molecule binding patterns of LexA, a master repressor in the bacterial DNA damage (SOS) response, at its self-regulated and endogenously methylated promoter. We thus show that unnatural DNA modifications can uncover novel biological insights and potentiate new approaches to multimodal epigenetic profiling.

DNA

Identification of EppR, a Second Repressor of Error-Prone DNA Polymerase Genes in Acinetobacter baumannii.

Acinetobacter baumannii is an opportunistic pathogen causing several infections that are increasingly difficult to treat due to its ability to rapidly gain antibiotic resistances. These resistances can arise due to mutations through the activity of error-prone DNA polymerases, such as DNA polymerase V (DNA Pol V) in response to DNA damage. The regulation of the DNA damage response (DDR) in A. baumannii is not completely understood; the regulation of genes encoding multiple copies of DNA Pol V is not fully characterized. Through genome-wide mutagenesis, we have identified a novel TetR-like family regulator of the umuDC and umuC genes, which we have named Error-prone polymerase regulator (EppR). We have found that EppR represses the expression of the genes encoding DNA Pol V and itself through direct binding to an EppR motif in their promoters. Lastly, we show that EppR also regulates UmuDAb, previously identified as a regulator of genes encoding DNA Pol V. These two gene products are functionally required to ensure regulation of the expression of the two umuDC, the two umuC genes as well as the regulators umuDAb and eppR genes. With these results, we propose a model in which multiple transcription factors regulate the expression of all these genes.

Acinetobacter baumannii

Plant nitrogen nutrition: enhancing plant resilience to abiotic stresses.

Nitrogen (N) is not only an essential macronutrient for plant growth and development but also functions as a pivotal signaling molecule that orchestrates adaptive responses to various abiotic stresses, including acidic stress, aluminum toxicity, salinity, drought, and extreme temperatures. This review synthesizes recent advances in our understanding of the molecular mechanisms by which N signaling, mediated by different N forms (e.g., NH4+ and NO3-), integrates with core stress-response pathways. We specifically discuss the genetic crosstalk between N sensing and key signaling cascades, including abscisic acid (ABA) signaling, the salt overly sensitive (SOS) pathway, and reactive oxygen species (ROS) homeostasis. The review details how this integration modulates physiological and transcriptional reprogramming through central regulators such as NIN-like proteins (NLPs), calcineurin B-like protein (CBL)-interacting protein kinase (CIPK), and the target of rapamycin (TOR) kinase, ultimately optimizing the trade-off between growth and tolerance. By establishing a unified genetic and molecular framework, this review aims to provide a theoretical basis for developing novel strategies in precision N management and molecular breeding to synergistically enhance N use efficiency (NUE) and abiotic stress tolerance in crops.

Nitrogen