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Wilmes, L.

Publications and source records attributed to Wilmes, L..

2 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↗

Faecal transplantation from exuberant toddlers increases exploratory behaviour in rats

BackgroundBehavioural phenotypes have previously been transferred via faecal microbiota transplantation (FMT) from patients with psychiatric disorders to rodents. Studies indicate that the gut microbiota composition may be linked to certain temperament traits, defined as biologically-based differences in emotional reactivity and self-regulation. Here, we aimed to determine if the gut microbiota plays a role in temperament using an FMT approach. We focused on the temperament traits of exuberance, defined as positive reactivity, decreased behavioural inhibition, and high behavioural approach tendencies. MethodsFaeces from 2.5-year-old toddlers from FinnBrain Birth Cohort Study with high exuberance/approach or high behavioural inhibition in the LabTAB bubbles-episode was transferred to juvenile male Sprague Dawley rats (age 22/23 days). Behaviour of the rat recipients (n=53) was assessed using the novel non-social arena, novel social arena, hole board test for exploratory behaviour, social approach-avoidance test, and forced swim test. The faecal pellets collected from the rodents were analyzed with 16s rRNA sequencing and faecal samples from the sample of toddlers (which included the donors, n=176) were analysed using short-read metagenomic sequencing. The striatum and prefrontal cortex from the rodents brains were analysed post-mortem using RNAseq. ResultsMicrobiome from toddlers with high exuberance traits induced increased exploratory behaviour compared to vehicle-controls and rats receiving faeces from inhibited toddlers. Locomotor activity, social, and depressive-like behaviour remained unaffected. We noted a downregulation of the dopamine synapse pathway within the striatum of the rats that received faeces from the inhibited trait donors compared with vehicle-controls. Faecal microbiota of rats receiving faeces from the same donor resembled more each other than rats from a different cage. Clostridium species AM29 11AC in toddler microbiome was positively related to exuberance, but there were no cross-sectional associations between faecal metabolites in the human sample. ConclusionsFMT from exuberant toddlers lead to altered exploratory-related behaviour in rats.

microbiology↗