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Eckenberger, J.

Publications and source records attributed to Eckenberger, J..

3 recordsLinked to original sources

Microbiota-sensitive glial and metabolic programs define a critical window in early postnatal brainstem development

Paediatric brain tumours are increasingly recognised as diseases of disrupted development, arising when lineage progression programs, that normally govern neural and glial maturation, become stalled or dysregulated. Diffuse midline glioma (DMG), a highly aggressive paediatric brainstem tumour, emerges during early childhood in the pons, a region undergoing rapid postnatal growth characterized by oligodendrocyte precursor cell (OPC) proliferation and differentiation. However, the environmental factors that shape these developmental trajectories remain poorly defined. Here, using germ-free and conventionally colonized mice, we investigated whether early-life microbiota influences transcriptional and metabolic programs in the developing brainstem during this critical developmental window. Bulk RNA sequencing revealed pronounced microbiota-associated transcriptional differences at postnatal day 2 (P2), but not at P8, identifying a temporally restricted period during which microbial colonization is associated with pathways linked to oligodendrocyte lineage progression, myelination, and neuroimmune signalling. Transcriptional analyses further identified altered expression of genes associated with CD11c microglia, a developmental microglial subtype implicated in regulating oligodendrocyte maturation. Untargeted metabolomic profiling revealed parallel microbiota-associated differences in pathways related to mitochondrial function, redox balance, and methyl-donor metabolism. Integrated multi-omics analyses identified coordinated networks linking glial lineage programs with metabolites involved in cellular metabolism and epigenetic regulation. Notably, several of these transcriptional and metabolic programs overlap with gene signatures reported in diffuse midline glioma, suggesting that microbiota-sensitive developmental pathways intersect with cellular states relevant to paediatric brainstem tumour biology.

neuroscience↗

Targeted isolation of bacteria with potential to competitively exclude Staphylococcus aureus in the upper respiratory tract of pigs

Considering global antimicrobial resistance (AMR) prevalence, alternative or complementary strategies to antimicrobial use, are of interest. Livestock-associated methicillin-resistant Staphylococcus aureus (LA-MRSA) is of particular interest as despite significant AMU reduction, LA-MRSA prevalence in pig husbandry has not decreased. We performed targeted isolation of bacterial species with potential antagonism against LA-MRSA in pig farms. Duplicate piglet nasal swabs from three European countries (Germany, Ireland and The Netherlands) were taken longitudinally from birth up to 10 weeks, one for amplicon sequencing and qPCR, and the other was cryopreserved for culturing. We identified potential probiotic species by anticorrelation analysis of bacterial abundance from amplicon sequencing data with quantitative S. aureus estimates from qPCR data from the samples. A literature-screen was performed on the species identified, to determine their probiotic potential. Following this, 1302 isolates were grown from selected cryopreserved swabs and identified using MALDI-TOF and additional 16S rRNA gene sequencing to isolate the anticorrelating species. Ninety-five isolates of interest were screened for absence of tetracycline resistance and hemolytic activity and whole genome sequencing was conducted to verify their taxonomy and to assess their AMR and virulence gene profile. Additional phenotypic antimicrobial resistance testing selected three different Lactococcus lactis strains. During an in vitro challenge using spent medium, all three strains demonstrated inhibition against two S. aureus strains. These L. lactis strains may have the ability to be used safely to reduce LA-MRSA carriage in the nasal passages of pigs but further in vivo testing is necessary to confirm this potential. ImportanceAn approach to tackle antimicrobial resistance in livestock is to use competitive exclusion agents. We employed a sequencing guided isolation approach to identify bacterial species with in silico antagonism to livestock-associated Staphylococcus aureus (LA-MRSA) in the nasal microbiome of piglets. Based on this, three Lactococcus lactis isolates were found to be suitable for further probiotic testing. This strategy can be used to effectively identify, isolate, and screen bacteria that live in antagonism with opportunistic pathogens such as LA-MRSA in a complex microbiome.

microbiology↗

The developing pig respiratory microbiome harbours strains antagonistic to common respiratory pathogens

In the global efforts to combat antimicrobial resistance and reduce antimicrobial use in pig production, there is a continuous search for methods to prevent and/or treat infections. Within this scope, we explored the relationship between the developing piglet nasal microbiome and (zoonotic) bacterial pathogens from birth until ten weeks of life. The nasal microbiome of 54 pigs was longitudinally studied over 16 time-points on nine farms in three European countries (Germany, Ireland, and the Netherlands) using amplicon sequencing targeting the V3-V4 16S rRNA region as well as the tuf gene for its Staphylococcal discrimination power. The piglets age, the farm, and the litter affected the nasal microbiome, with piglets age explaining 19% of the variation in microbial composition between samples. Stabilization of the microbiome occurred around two weeks post-weaning. Notably, while opportunistic pathogens were ubiquitously present, they did not cause disease. The piglet nasal microbiome often carried species associated with gut, skin, or vagina, which suggests that contact with the vaginal and faecal microbiomes shape the piglet nasal microbiome. We identified bacterial Co-Abundance Groups (CAGs) of species that were present in the nasal microbiomes in all three countries over time. Anticorrelation between these species and known bacterial pathogens identified strains that might be exploited for pathogen reduction. Further experimental evidence is required to confirm these findings. Overall, this study advances our understanding of the longitudinal development and factors influencing the piglet nasal microbiome, providing insights into its role in health and disease. ImportanceOur study on longitudinal analysis of the developing nasal microbiota of piglets in farms in three European countries showed consistent microbiome compositions and that colonization of porcine pathogens occurred in relation with anticorrelating species. These findings enhance our knowledge of co-colonizing species in the nasal cavity, and the identified microbial interactions can be explored for the development of interventions to control pathogens in porcine husbandry.

microbiology↗