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Identification of genetic determinants that promote biofilm growth under heterotrophic conditions in Cupriavidus necator using transposon enrichment.

Cupriavidus necator is a metabolically versatile β-proteobacterium of growing interest for auto- and heterotrophic bioprocesses, yet the genetic determinants governing its biofilm formation remain largely uncharacterized, particularly under process-relevant heterotrophic conditions. Here, we applied a forward-genetics transposon-enrichment approach to identify loci which promote surface-associated growth. A high-density mini-Tn5 mutant library (26,185 insertion clones, exceeding the >17,000 required for genome-wide coverage) was cultivated as a biofilm in a microfluidic flow-cell system on fructose for 168 h, and the surface-associated community was characterized by deep sequencing. Twelve genes showed significantly elevated insertion frequencies, several with documented links to biofilm formation in other bacteria, including the ferrous-iron uptake system (feoA/feoB), galU, and a GSDEF/EAL dual-domain protein. The gene B2043 (E6A55_RS29530), encoding this c-di-GMP-metabolizing protein, was selected for validation by markerless deletion. Under static conditions, the ΔB2043 mutant showed a 1.69 ± 0.06-fold increase in biofilm-associated biomass (p = 5.16 × 10-15). Under flow-through conditions, the mutant attached faster, entered exponential growth ∼10 h earlier, reached its biovolume plateau ∼16 h earlier than the wild-type, and formed distinct tower-like structures. These results identify B2043 as a negative regulator of biofilm formation acting predominantly during attachment, provide the first experimental evidence for c-di-GMP-dependent biofilm regulation in C. necator H16, and establish a functional-genomics framework - together with eleven further candidate loci - for engineering productive biofilms in this organism.

Biofilm formation

Identification of genes promoting fitness of a plant-associated Salmonella Choleraesuis strain on alfalfa sprouts during cold storage.

Consumption of sprouted seeds, such as alfalfa sprouts, has increased in recent years due to their nutritional value and antioxidant content. However, these products have repeatedly been implicated in outbreaks of foodborne pathogens, including Salmonella enterica. Although host-adapted Salmonella serovars are less frequently associated with foodborne illness, infections caused by these serovars often result in invasive and severe outcomes, highlighting the importance of understanding their persistence in food production systems. Moreover, the variability among Salmonella serovars requires characterization beyond the most prevalent types to support the development of precision food safety strategies effective across the diversity of serovars capable of contaminating fresh produce. Here, a plant-internalized Salmonella Choleraesuis strain was used as a model to investigate persistence mechanisms on alfalfa sprouts. A bar-coded transposon mutant library comprising approximately 33,000 unique insertions was generated, along with a collection of individual insertion mutants. These resources were used to identify genetic determinants contributing to strain fitness on sprouts under abusive cold storage (8°C) simulating commercial shelf-life environments. Genome-wide analyses identified negative selection for mutants with insertions in eda, fabF, lpp1_2, pnp, stpA, SCHChr_03621, and two intergenic regions. Competition assays confirmed fitness defects associated with eda, encoding a key enzyme of the Entner-Doudoroff pathway; mnmG, encoding a tRNA modification enzyme involved in translational fidelity; and fabF, involved in fatty acid biogenesis. These findings provide a genome-wide perspective on mechanisms enabling persistence on sprouts of a plant-associated, host-adapted Salmonella strain during cold storage and inform risk assessment and intervention design within precision food safety frameworks.IMPORTANCEFood safety strategies are frequently based on knowledge derived from well-studied, epidemiologically relevant Salmonella serovars, yet many less frequent types still pose a risk to consumers and may contaminate fresh produce. Different Salmonella serovars may vary in the relative contribution of persistence mechanisms. Recognizing these differences is essential for improving precision food safety efforts, particularly for foods such as sprouts that are repeatedly linked to outbreaks. This study highlights that less-studied serovars can rely on both shared survival strategies and unique traits that might otherwise not be captured by current control approaches. By demonstrating that strain diversity influences persistence on fresh produce, this work supports the development of precision food safety strategies that address a broader spectrum of Salmonella, thereby improving risk assessment and helping to better protect public health.

food safety

Dual roles of genes required for intrinsic resistance to clarithromycin in evasion of killing by serum complement in Haemophilus influenzae.

Macrolide antibiotics are commonly prescribed to treat Haemophilus influenzae respiratory tract infections. Studies have primarily focused on emerging H. influenzae strains with acquired macrolide resistance, while the bacterium's intrinsic resistance to antibiotics has been underexamined. Here, we used a genome-wide approach of transposon insertion-site sequencing to screen an H. influenzae mutant library grown in sub-inhibitory doses of the macrolide antibiotic clarithromycin (CLR) to identify 33 genes involved in intrinsic CLR resistance. Almost half of these genes are also needed for survival in the mouse lung. We focused on candidate genes necessary for both intrinsic macrolide resistance and lung survival. Two of these genes affect the outer-membrane composition of H. influenzae, orfH and omp26. Deletions of these genes in Rd and nontypeable H. influenzae clinical isolates, Hi375 and NT127, conferred sensitivity to CLR and polymyxin B and increased membrane permeability to ethidium bromide (EtBr). The omp26 mutant was sensitive to killing by human serum. Deletions of orfH or omp26 in an acrR mutant strain overexpressing a multidrug efflux pump abrogated resistance of the acrR mutant to CLR and restored permeability to EtBr. Thus, deletion of these genes not only mitigates the effects of an acquired resistance mechanism but also remarkably overrides it. Complementation of these deletion mutations restored CLR resistance and decreased permeability to EtBr. Our results indicate that the subset of genes with dual roles in intrinsic resistance and host lung survival may provide potential novel combination antimicrobial therapeutic targets.

Animals

Quantitative essentiality in a reduced genome: a functional, regulatory and structural fitness map.

Essentiality studies have traditionally focused on coding regions, often overlooking other small genetic regulatory elements. To address this, we combined transposon libraries containing promoter or terminator sequences to obtain a high-resolution essentiality map of a genome-reduced bacterium, at near-single-nucleotide precision when considering non-essential genes. By integrating temporal transposon-sequencing data by k-means unsupervised clustering, we present a novel essentiality assessment approach, providing dynamic and quantitative information on the fitness contribution of different genomic regions. We compared the insertion tolerance and persistence of the two engineered libraries, assessing the local impact of transcription and termination on cell fitness. Essentiality assessment at the local base-level revealed essential protein domains and small genomic regions that are either essential or inaccessible to transposon insertion. We also identified structural regions within essential genes that tolerate transposon disruptions, resulting in functionally split proteins. Overall, this study presents a nuanced view of gene essentiality, shifting from static and binary models to a more accurate perspective. Additionally, it provides valuable insights for genome engineering and enhances our understanding of the biology of genome-reduced cells.

DNA Transposable Elements

Gene Contribution of Streptococcus dysgalactiae Subspecies equisimilis, an Emerging Pathogen, to Experimental Primate Necrotizing Myositis.

Streptococcus dysgalactiae subspecies equisimilis (SDSE) is an emerging human pathogen closely related to group A Streptococcus. However, its genetic requirements for survival and growth in different conditions and for causing invasive infections remain poorly understood. To address this gap, transposon-directed insertion-site sequencing was used to identify genes contributing to fitness in experimental necrotizing myositis in nonhuman primates. Using two SDSE stG62647 human clinical isolates, MGCS36044 and MGCS36089, highly saturated transposon mutant libraries were generated and analyzed following in vitro growth and in vivo infection in eight nonhuman primates. A total of 398 essential genes were identified to be shared by both strains during growth in vitro and in vivo, and 17 and 7 conditionally essential genes required only in vitro or only in vivo, respectively. Additionally, 117 and 110 genes in MGCS36044 and MGCS36089, respectively, were found to be associated with fitness during necrotizing myositis. Transposon insertions in 34 MGCS36044 genes conferred increased fitness, whereas mutation of 83 genes conferred decreased fitness. Similarly, in MGCS36089, mutations in 38 and 72 genes conferred increased or decreased fitness, respectively. Importantly, both strains shared 46 fitness-associated genes, including an enrichment of transporter genes, highlighting nutrient acquisition as a dominant requirement during infection. The results provide critical information for guiding future translational efforts to develop preventive and therapeutic strategies against human SDSE infections.

Animals

Genome-wide identification of conditionally essential genes for growth in the presence of sulfamethoxazole and trimethoprim in sulfamethoxazole- and trimethoprim-resistant Escherichia coli.

UNLABELLED: Resistance to sulfonamides (SULs) and trimethoprim (TMP) in Escherichia coli threatens their clinical relevance. Beyond known resistance mechanisms, little is understood about the cellular responses that enable resistant E. coli to grow under these antibiotic stresses. This study aimed to identify genes that support bacterial growth under SUL and TMP stress. Two saturated transposon mutant libraries were constructed in resistant E. coli MG1655 harboring either dfrA1 or sul2. They were grown with and without 1/2 and 1/4 minimum inhibitory concentration (MIC) of sulfamethoxazole (SMX) or TMP, and mutant depletion was assessed via transposon-directed insertion-site sequencing. At 1/2 MIC, 36 and 89 genes were identified as conditionally essential during SMX and TMP exposure, while 5 and 2 genes were classified as conditionally essential at 1/4 MIC. Genes identified as conditionally essential at 1/4 MIC were also important at 1/2 MIC. Conditionally essential genes belonged to lipopolysaccharide biosynthesis, peptidoglycan metabolism, energy production, membrane integrity, phosphate metabolism, and stress responses, highlighting the role of these factors in maintaining cell stability under SMX and TMP stress. Validation with 10 conditionally essential genes (apaH, mtn, surA, waaO, nlpI, prc, wzxE, fadR, degP, and tpiA) showed that deletion mutants indeed exhibited growth defects and two- to eightfold reductions in MIC under antibiotic stresses compared to their parent strains. This study highlights cellular responses to SMX and TMP under antibiotic stress, and it has identified a list of genes whose products may serve as potential helper drug targets to resensitize resistant E. coli to SMX and TMP treatments. IMPORTANCE: Sulfonamides (SULs) and trimethoprim (TMP) are broad-spectrum antimicrobials. They are commonly used to treat infections in both humans and animals. Resistance against SUL and TMP is widespread in pathogenic bacteria, and there is a need to overcome this problem. One possibility is to target the cellular mechanism by which the resistant bacteria adapt to growth in the presence of the antimicrobials. In this study, we identify the genes, besides the resistance genes, which enable resistant Escherichia coli to grow in the presence of SUL and TMP. We further show that knocking out many of these genes attenuates the resistant E. coli for growth during SUL and/or TMP stress, irrespective of which SUL- or TMP-resistant gene the bacteria carry. The gene products of these genes may serve as potential helper drug targets to resensitize resistant E. coli to sulfamethoxazole and TMP treatments.

Escherichia coli