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Assembly of the Mycobacterium tuberculosis type VII ESX-1 secretion system in Mycobacterium smegmatis identifies a new transcriptional activator of esx-1 genes and a novel TB vaccine.

Mycobacterium tuberculosis (M. tb) uses its type VII secretion system (T7SS) ESX-1 to export immunogenic, virulence-mediating protein effectors. In this study, the fast-growing, non-pathogenic model mycobacteria Mycobacterium smegmatis mc2-155 was engineered to express the M. tb T7SS ESX-1 system. We found that M. smegmatis transformed with M. tb esx-1 locus genes only, as well as M. smegmatis transformed with M. tb esx-1 and espACD operon genes (designated MSX-1), produces and secretes the M. tb ESX-1 protein effectors EsxA, EsxB, and EspB. However, the abundance of these proteins was higher inside the cell and culture filtrate of the MSX-1 strain. Although ESX-1 is critical for M. tb pathogenesis, expression of M. tb ESX-1 did not make the recombinant M. smegmatis strains virulent in macrophages. Serendipitously, transformation of M. smegmatis with a modified esx-1 locus in this study revealed rv3860, a gene of previously unknown function, to be required for the transcription of pe35, ppe68, esxB, and esxA genes. Finally, mice vaccinated with MSX-1 were found to be as protected as mice vaccinated with Mycobacterium bovis BCG against M. tb infection, without becoming sensitized to tuberculin. These results show that a functional M. tb ESX-1 system can be assembled in M. smegmatis to uncover novel facets of the secretion machinery and that the modified M. smegmatis strain can function as a tuberculosis (TB) vaccine. Unlike BCG, however, its deployment may be compatible with tests currently used to diagnose TB.IMPORTANCEIn this study, we modified Mycobacterium smegmatis, which is often used as a surrogate model organism in mycobacterial research, to produce and assemble a functional Mycobacterium tuberculosis (M. tb) ESX-1 protein secretion system. One such M. smegmatis strain named MSX-1 was found to make a functional M. tb ESX-1 system without becoming virulent. And in using M. smegmatis as a chassis to study the ESX-1 system, we found that rv3860, an M. tb gene of previously unknown function, is needed for the production of key ESX-1 proteins. Finally, mice vaccinated with MSX-1 were as protected from tuberculosis (TB) as mice given BCG, the only approved TB vaccine. Notably, we found that unlike BCG, MSX-1 does not sensitize mice to the antigens used in existing TB diagnostic tests. These observations, taken together, highlight the utility of M. smegmatis as a chassis to study the M. tb ESX-1 secretion machinery.

Mycobacterium smegmatis

WhiB6 Transduces Contact-Dependent Signaling in Mycobacterium smegmatis and Coordinately Induces Both ESX-1 and ESX-4.

Bacteria have evolved complex conditional pathways that respond to environmental stresses and signals. We use conjugation in Mycobacterium smegmatis to identify contact-recognition and response pathways that mediate interactions between donor and recipient cells. Contact with a compatible donor cell initiates a response in the recipient that requires the ESX-1 secretion system and subsequently activates the dormant ESX-4 secretion system. The links of this signal transduction pathway, the mechanism of coordination and dependency between ESX-1 and ESX-4 secretion systems, are unknown. Previous studies identified SigM as a cell-contact responsive sigma factor dedicated to activating ESX-4. WhiB proteins are iron-sulfur-binding stress-response transcription factors exclusively found in Actinobacteria. WhiB6 has been shown to regulate ESX-1 associated gene expression in other mycobacteria. Here, we show that WhiB6 is required both for conjugation and for transducing cell-contact dependent signaling in the recipient cell. Our RNA-seq, ChIP-seq, and proteomic profiling data define a WhiB6 regulon that supports conjugative cell-cell interaction. The WhiB6 regulon includes genes encoding ESX-1, ESX-4, SigM, as well as dispersed operons that likely support ESX secretion. Our data demonstrate that WhiB6 is epistatic to SigM and ESX-4 in this signal transduction pathway. This work shows that WhiB6 functions as a signal transduction node in recipient cells: it coordinates the expression of two ESX systems and it also induces uncharacterized proteins that collectively constitute a complete secretion response to recipient contact with a donor cell.

Mycobacterium smegmatis

Identification of novel inhibitors of Mycobacterium smegmatis growth through genome-wide overexpression of Cluster P3 mycobacteriophage Xavia genes.

Bacteriophages encode numerous genes with no known function, many of which can affect essential cellular processes when expressed in the bacterial host. For mycobacteriophages, genome-wide overexpression in Mycobacterium smegmatis can be used to identify proteins that impair growth. To evaluate the cytotoxic potential of the Cluster P3 phage Xavia, we constructed a plasmid library containing 71 predicted Xavia genes under the anhydrotetracycline inducible promoter pTet and screened this library in a plate-based cytotoxicity assay to measure impacts on M. smegmatis growth. Two genes prevented transformants recovery, consistent with toxicity under basal promoter leakiness, and inducible expression of 18 additional genes impaired growth. These inhibitory proteins include structural components; factors involved in DNA metabolism, lysogeny, and lysis; and several proteins with no known function. These results extend functional screening into a lineage of actinobacteriophages that has not previously been characterized, and identify new proteins that warrant further mechanistic analysis.

Mycobacterium smegmatis

Development of an arabinose-inducible gene expression system for nontuberculous mycobacteria.

Nontuberculous mycobacteria (NTM) are emerging pathogens for which genetic tools remain limited. Here, we developed an arabinose-inducible gene expression system based on a modified pBAD24 vector adapted for mycobacterial hosts. The vector carries replication origins for mycobacteria and Escherichia coli, as well as selectable markers compatible with NTM. In Mycobacterium abscessus (Mycobacteroides abscessus), the system enabled dose-dependent induction of target gene expression by arabinose, as demonstrated by increased antibiotic resistance and quantitative RT-PCR analysis. Although basal expression was observed in the absence of arabinose, expression levels were tunable across arabinose concentrations. The system was also functional in Mycobacterium smegmatis (Mycolicibacterium smegmatis) and Mycobacterium bovis BCG, although the degree of basal expression varied among host species. These results establish a tunable inducible expression system for mycobacteria and provide a useful genetic tool for studies of NTM biology.

Arabinose

Ultra-high field strength electroporation enables efficient DNA transformation and genome editing in nontuberculous mycobacteria.

Efficient DNA delivery is essential for genetic manipulation of mycobacteria and for dissecting their physiology, pathogenesis, and drug resistance. Although electroporation enables transformation efficiencies exceeding 10⁵ CFU per µg DNA in Mycobacterium smegmatis and Mycobacterium tuberculosis, it remains highly inefficient in many nontuberculous mycobacteria (NTM), including Mycobacterium abscessus. Here, we discovered that NTM such as M. abscessus exhibit exceptional tolerance to ultra-high electric field strengths and that hypertonic preconditioning partially protects cells from electroporation-induced damage. Using ultra-high electric field strength (3 kV/mm) electroporation, we achieved dramatic improvements in plasmid transformation efficiency-up to 106-fold in M. abscessus, 83-fold in Mycobacterium marinum, and 37-fold in Mycobacterium kansasii-compared to standard conditions (1.25  kV/mm). Transformation efficiency was further influenced by the choice of selectable marker. Ultra-high field strength electroporation also markedly enhanced allelic exchange in M. abscessus expressing Che9c RecET recombinases, increasing the recovery of gene deletion mutants by over 1,000-fold relative to conventional electroporation. In parallel, oligonucleotide-mediated recombineering for targeted point mutations produced nearly 10,000-fold more mutants under ultra-high field conditions. Together, these findings establish ultra-high field electroporation as a robust, broadly applicable platform for genetic engineering of NTMs. This method substantially enhances transformation efficiency and enables construction of advanced genetic tools-including expression libraries and CRISPRi knockdown libraries-in species that have historically resisted genetic manipulation.IMPORTANCEInfections caused by nontuberculous mycobacteria (NTM), including Mycobacterium abscessus, are increasing globally, yet genetic manipulation of these pathogens remains technically challenging due to inefficient DNA delivery and low gene editing success. The ultra-high electric field strength electroporation strategy described here overcomes these barriers, enabling dramatic improvements in both transformation and genome editing efficiency. This advance paves the way for high-throughput functional genomics in NTMs, including the construction of genome-wide knockout, CRISPRi knockdown, and expression libraries. Broad adoption of this approach will accelerate discovery of genetic determinants of virulence and drug resistance, facilitating the development of antimicrobials and vaccines.

Electroporation

The phenotypic landscape of the mycobacterial cell.

The Mycobacteriales are an order of diverse bacteria that thrive in many environmental and host-associated niches. Because the most notorious member of this clade, Mycobacterium tuberculosis, is a major human pathogen, research on Mycobacteriales has focused on pathogenesis, and, as a consequence, many fundamental aspects of Mycobacterial biology remain understudied. Here, we address this gap by performing a genome-wide CRISPRi chemical genomics screen using a diverse set of >35 antibiotics, detergents, and other anti-microbials predominantly targeting the cell envelope of Mycobacterium smegmatis, a saprophytic model Mycobacterium. We highlight new information derived from this screen, including the identification of novel functions for previously uncharacterized conserved and essential genes (in mycolic acid and arabinogalactan synthesis), the discovery of a new drug scaffold/protein target pair, and insights into the mechanism of action of two commonly used antibiotics. These data are also a valuable resource for the mycobacterial research community, as they provide thousands of novel phenotypes for uncharacterized genes and meaningful phenotypic correlations between annotated and uncharacterized genes.

Journal Article

Rv2741 Promotes Mycobacterium Survival by Modulating Macrophage Function via the IL-1α-MAPK Axis.

One of the primary healthcare problems in the world today is tuberculosis (TB), a chronic infectious illness brought on by Mycobacterium tuberculosis (M. tuberculosis). A distinct family of PE_PGRS proteins, encoded by the M. tuberculosis genome, has attracted more attention because of their involvement in immune evasion and bacterial pathogenicity. Nevertheless, the specific functions and mechanisms of action for the majority of PE_PGRS proteins remain largely unexplored. This study focuses on the Rv2741 (PE_PGRS47) gene, which is exclusively present in pathogenic mycobacteria. To examine the function of Rv2741 in host-pathogen interactions, we created recombinant strains of Mycobacterium smegmatis (M. smegmatis) that expressed the M. tuberculosis Rv2741 gene. IL-1α was found to be a key mediator of host response modulation by Rv2741. Rv2741 downregulates the secretion of IL-1α and inhibits the MAPK signaling pathway, particularly the p38 and ERK1/2 pathways, thereby cooperatively inhibiting macrophage autophagy and apoptosis. Meanwhile, the decrease in IL-1α secretion directly leads to changes in the cytokine secretion pattern and a reduction in nitric oxide (NO) production. This multifaceted regulatory mechanism ultimately favors the survival of M. smegmatis in macrophages. This research significantly expands our understanding of Rv2741 function, revealing its crucial role as a multifunctional virulence factor in the immune evasion of M. tuberculosis.

Interleukin-1alpha

The transcriptional regulator CasR controls mycobacterial antioxidant defense and biofilm formation via multiple direct targets.

AIMS: The antioxidant defense system of Mycobacterium tuberculosis is critical for pathogenicity and persistence within macrophages, yet the regulatory networks remain poorly understood. This study aims to elucidate the molecular mechanism by which the transcription factor CasR regulates antioxidant defense in mycobacteria through delineation of the regulatory axis linking CasR activity, target gene expression, and the antioxidant phenotype. METHODS AND RESULTS: Using Mycobacterium smegmatis as a model organism, we demonstrate that overexpression of CasR renders the bacteria significantly susceptible to hydrogen peroxide. Electrophoretic mobility shift assay (EMSA) and β-galactosidase reporter analyses reveal that CasR directly binds and represses the promoter of cyp144, an uncharacterized cytochrome P450-encoding gene. Deletion of casRMsmreduces biofilm formation, consistent with the expected derepression of cyp144Msm, a gene that negatively regulates both biofilm and oxidative stress tolerance. EMSA and β-galactosidase activity assays also demonstrate that CasR negatively regulates antioxidant gene katGI, suggesting that CasR exerts a broader, global regulatory role within the mycobacterial antioxidant defense network. Furthermore, we identify isoleucine 18 as a critical residue for the DNA-binding and regulatory function of CasR. CONCLUSION: This study establishes CasR as a pleiotropic transcriptional regulator that directly controls multiple antioxidant genes, including cyp144 and katGI, in mycobacteria. We report a previously unrecognized role for a cytochrome P450 family member in suppressing bacterial antioxidant capacity, as cyp144 overexpression reduces biofilm formation. These findings provide a valuable reference for further investigation into mycobacterial antioxidant mechanisms and identify CasR and Cyp144 as potential targets for the development of anti-tuberculosis drugs.

Biofilms

Complete Genome Sequences of Mycobacteriophages TribleTrouble, TClif, Llorens and CallaLilly.

We report the genome sequences of four novel phages that infect Mycobacterium smegmatis mc 2 155. Phages TribleTrouble, TClif, Llorens and CallaLilly have siphovirus morphology and double-stranded DNA genomes consisting of 61,665bp, 61,466bp, 59,708bp and 59,631bp, respectively. Based on gene content similarity, these phages belong to the K cluster of Mycobacterium phages. No novel genomic features were noted beyond those previously observed for phages of the K cluster.

Journal Article