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Gautam Dantas

Publications and source records attributed to Gautam Dantas.

7 recordsLinked to original sources

Divergent microbial preludes to necrotising enterocolitis defined by gut phages and bacterial resistomes.

BACKGROUND: Translating microbiome correlations into robust predictive features for complex gut disorders remains elusive, partly due to oversimplified models of pathogenesis and neglect of the virome, a key player in microbial ecosystems. Necrotising enterocolitis (NEC), a devastating disease of preterm infants with no reliable clinical predictors, exemplifies this challenge. OBJECTIVE: To determine the predictive potential of the gut prophageome and polymicrobial aetiologies for NEC. DESIGN: We applied integrated metagenomic and metatranscriptomic analyses and machine learning to 1825 longitudinal stool samples from 43 preterm infants who later developed NEC and 86 gestational age-matched and birthweight-matched controls across three US hospitals. We characterised gut prophageome acquisitions and their association with clinical exposures, including antibiotics, diet and pharmacotherapies. To predict NEC risk, we integrated pre-onset prophageome, antibacterial resistome and bacteriome profiles with neonatal pathology, stratifying the cohort by disease onset timing (early: ≤40 days; late: >40 days) for separate analysis. RESULTS: NEC cases exhibited distinct viral diversity trajectories before disease onset. Early-onset NEC was best predicted by phage-bacterial interaction signatures (75% accuracy, 81% sensitivity). Metatranscriptomics revealed increased phage DNA abundance with low gene expression, suggesting a lysogenic lifestyle that may stabilise pathobionts. These phages encode metabolic genes potentially enhancing pathobiont resilience. Late-onset NEC was best predicted by antibacterial resistome profiles (83% accuracy). CONCLUSION: The gut prophageome serves as both a source of pre-symptomatic predictive signals and an active modulator of NEC pathogenesis, with distinct microbial mechanisms driving early-onset and late-onset disease. These polymicrobial etiologies inform strategies for early detection, risk stratification and the development of microbiome-targeted preventive and therapeutic interventions.

BIOMARKERS

A combinatorial construct library enables an expanded expression range of secreted therapeutic proteins by probiotic yeast.

Orally administered engineered probiotics, including Saccharomyces cerevisiae var. boulardii (Sb), are of emerging interest as protein therapeutic delivery platforms to treat gastrointestinal diseases. Tools to readily optimize protein output are required to optimize the therapeutic index of Sb-produced therapies. In this study, a 125-plex Sb secretion construct library was developed consisting of all possible combinations of five promoters, five secretion signals, and five terminators, which enabled a greater than 1800-fold range in Sb expression of a Gaussia luciferase (GLuc) reporter. Secretion signal and promoter identities had significant effects on secretion output. This library further enabled a 28-fold improvement of binding activity of Sb-secreted haPD-1, an established anti-tumor immunotherapeutic, and improved haPD-1 detection in mouse stool samples following oral gavage of Sb_haPD-1. Sb secretion trends of both GLuc and haPD-1 in vitro mirrored payload expression in vivo. This protein secretion library toolkit will serve as a valuable resource to rapidly optimize protein therapeutic output from engineered Sb.

Saccharomyces boulardii

From colonization to infection: Genomic evolution of Clostridioides difficile pathogenesis.

Clostridioides difficile is a spore-forming, toxin-producing anaerobe that is a leading cause of healthcare-associated infections. Its success as a pathogen reflects a complex interplay between bacterial evolution, virulence regulation, ecological adaptation, environmental selection, and host susceptibility. Comparative genomics has revealed deep C. difficile lineage diversification, driven by mobile genetic elements and selective pressures from antibiotics and host environments. These events affect strain-specific virulence by shaping the organization and regulation of the pathogenicity toxin loci, metabolic adaptations for nutrient utilization, and enhanced spore resilience. This review integrates evolutionary and genomic perspectives to illustrate how adaptive diversification has sculpted C. difficile pathogenesis and epidemic success.

CP: microbiology

Evolution, Mechanisms, and Therapeutic Implications of Mobile Tetracycline Destructases.

Tetracycline destructases (TDases) pose an emerging global threat by enzymatically inactivating all generations of tetracycline (Tet) antibiotics, including last-resort agents such as tigecycline. Despite their recent identification, TDases have rapidly disseminated worldwide, largely driven by mobile genetic elements and environmental reservoirs. This review synthesizes current knowledge on TDase genomics, structural and catalytic mechanisms, ecological niches, and clinical impacts. We detail the mechanistic distinctions between type 1 and type 2 TDases, emphasizing their divergent structural configurations and substrate specificity profiles. Additionally, we examine strategies for therapeutic intervention, highlighting progress in structure-guided inhibitor development. Key gaps remain in understanding ancestral reservoirs, evolutionary trajectories, and effective surveillance strategies. Addressing these areas through integrative evolutionary, biochemical, and ecological studies is critical for mitigating the clinical spread and therapeutic impact of TDases globally.

Humans

A randomized controlled trial to unveil the influence of an exercise intervention on brain integrity and gut microbiome structure in individuals with HIV.

OBJECTIVE: Exercise intervention programs enhance physical fitness, cognition, neuroimaging measures, and alter the structure of the gut microbiome in individuals without HIV. However, interventional studies exploring the effects of exercise in persons with HIV (PWH) have not included neuroimaging or gut microbiome analyses. DESIGN: A randomized controlled trial conducted at Washington University in St. Louis, MO, USA. METHODS: 65 PWH (aged ≥40 years, self-reported sedentary lifestyle) were randomly assigned to a 6-month cardiorespiratory and resistance training (EXS) or stretching control (SIS) intervention in a 2 : 1 ratio. Longitudinal change in cognition, cerebral blood flow (CBF), physical and cardiorespiratory fitness, and gut microbiome diversity and composition were examined among participants ( n  = 62) who completed any portion of the intervention (ClinicalTrials.gov: NCT02663934). RESULTS: Better fitness and better cognitive performance were associated with greater phylogenetic diversity in gut microbiome composition at baseline. Longitudinal findings indicated slight but significant improvements in psychomotor speed and executive function, reductions in body mass index, improvements in physical fitness, and increased gut microbiome diversity. These changes were observed regardless of assigned intervention group. There were no observed changes in CBF for either group. CONCLUSIONS: These findings highlight physical fitness as a modifiable factor in PWH that may improve cognitive performance and change gut microbiome composition. Both interventions were beneficial, suggesting light stretching exercise or study participation alone could have been sufficient to introduce positive cognitive shifts in previously sedentary PWH. Longer interventions with more participants are needed to identify changes in neuroimaging metrics related to brain integrity.

Humans

C10-Benzoate Esters of Anhydrotetracycline Inhibit Tetracycline Destructases and Recover Tetracycline Antibacterial Activity.

Tetracyclines (TCs) are an important class of antibiotics threatened by enzymatic inactivation. These tetracycline-inactivating enzymes, also known as tetracycline destructases (TDases), are a subfamily of class A flavin monooxygenases (FMOs) that catalyze hydroxyl group transfer and oxygen insertion (Baeyer-Villiger type) reactions on TC substrate scaffolds. Semisynthetic modification of TCs (e.g., tigecycline, omadacycline, eravacycline, and sarecycline) has proven effective in evading certain resistance mechanisms, such as ribosomal protection and efflux, but does not protect against TDase-mediated resistance. Here, we report the design, synthesis, and evaluation of a new series of 22 semisynthetic TDase inhibitors that explore D-ring substitution of anhydrotetracycline (aTC) including 14 C10-benzoate ester and eight C9-benzamides. Overall, the C10-benzoate esters displayed enhanced bioactivity and water solubility compared to the corresponding C9-benzamides featuring the same heterocyclic aryl side chains. The C10-benzoate ester derivatives of aTC were prepared in a high-yield one-step synthesis without the need for protecting groups. The C10-esters are water-soluble, stable toward hydrolysis, and display dose-dependent rescue of tetracycline antibiotic activity in E. coli expressing two types of tetracycline destructases, represented by TetX7 (Type 1) and Tet50 (Type 2). The best inhibitors recovered tetracycline antibiotic activity at concentrations as low as 2 &#x3bc;M, producing synergistic scores <0.5 in the fractional inhibitory concentration index (FICI) against TDase-expressing strains of E. coli and clinical P. aeruginosa. The C10-benzoate ester derivatives of aTC reported here are promising new leads for the development of tetracycline drug combination therapies to overcome TDase-mediated antibiotic resistance.

Anti-Bacterial Agents

Clinical sequelae of gut microbiome development and disruption in hospitalized preterm infants.

Aberrant preterm infant gut microbiota assembly predisposes to early-life disorders and persistent health problems. Here, we characterize gut microbiome dynamics over the first 3&#xa0;months of life in 236 preterm infants hospitalized in three neonatal intensive care units using shotgun metagenomics of 2,512 stools and metatranscriptomics of 1,381 stools. Strain tracking, taxonomic and functional profiling, and comprehensive clinical metadata identify Enterobacteriaceae, enterococci, and staphylococci as primarily exploiting available niches to populate the gut microbiome. Clostridioides difficile lineages persist between individuals in single centers, and Staphylococcus epidermidis lineages persist within and, unexpectedly, between centers. Collectively, antibiotic and non-antibiotic medications influence gut microbiome composition to greater extents than maternal or baseline variables. Finally, we identify a persistent low-diversity gut microbiome in neonates who develop necrotizing enterocolitis after day of life 40. Overall, we comprehensively describe gut microbiome dynamics in response to medical interventions in preterm, hospitalized neonates.

Humans