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Laukens, D.

Publications and source records attributed to Laukens, D..

2 recordsLinked to original sources

Lemonite: identification of regulatory metabolites through data-driven, interpretable integration of transcriptomics and metabolomics data

Current transcriptomics-metabolomics integration approaches are either limited by poor interpretability or constrained by incomplete prior knowledge, preventing the systematic identification of regulatory metabolites. Here, we present Lemonite, a data-driven and interpretable framework for integrating bulk transcriptomics and metabolomics data to uncover regulatory metabolites acting on gene modules. Lemonite extends module network inference to jointly associate transcription factors and metabolites with gene programs, without requiring prior differential analysis or complete metabolome annotation. To contextualize predictions, we constructed a comprehensive gene/protein-metabolite knowledge graph integrating over 370 000 metabolite-gene/protein and 2.1 million protein-protein interactions. Applied to glioblastoma (n=99) and inflammatory bowel disease (n=75) cohorts, Lemonite identified over 50 functionally coherent gene modules per disease, revealing established and previously uncharacterized metabolite-gene regulatory relationships. In glioblastoma, myo-inositol and phosphatidylcholines, together with IRF6, regulate mesenchymal-like immune programs, which upon integration with single-cell transcriptomics are primarily expressed in tumor-associated macrophages and monocytes. In inflammatory bowel disease, regulatory metabolites were prioritized that change the expression of their predicted target genes in colonic epithelial cells in vitro. Overall, Lemonite provides a principled framework to explore the genome-wide regulatory potential of the metabolome and to generate biologically interpretable, experimentally testable hypotheses from multi-omics data.

bioinformatics↗

The quorum sensing peptide EntF* promotes colorectal cancer metastasis in mice: a new factor in the microbiome-host interaction.

BackgroundColorectal cancer, one of the most common malignancies worldwide, is associated with a high mortality rate, mainly caused by metastasis. Comparative metagenome-wide analyses between healthy individuals and cancer patients suggest a role for the human intestinal microbiota. Nevertheless, which microbial molecules are involved in this communication is largely unknown, with current studies mainly focusing on short chain fatty acids and amino acid metabolites as potential mediators. However, quorum sensing peptides are not yet considered in this microbiome-host interaction: their in vivo presence nor any in vivo host-effect have been reported. ResultsFor the first time, we showed that a quorum sensing peptide metabolite, EntF* produced by intestinal microbiota (E. faecium), is present in the blood circulation of mice. Moreover, it significantly promotes colorectal cancer metastasis in vivo, with metastatic lesions found in both liver and lung tissues, using an orthotopic mice model evaluating bioluminescence as well as macroscopic and microscopic presence of metastatic tumour nodules. In vitro tests on E-cadherin expression levels thereby indicated that the first, second, sixth and tenth amino acid of EntF* were critical for the epithelial-mesenchymal transition (EMT) effect, responsible for tumour metastasis. ConclusionThis paper adds a new group of molecules, the quorum sensing peptides, as an additional causative factor explaining the microbiome-host interaction. The presence of a selected quorum sensing peptide (metabolite) in the mouse was proven for the first time and its in vivo effect on colorectal metastasis was demonstrated. We anticipate our in vivo results to be a starting point for broader microbiome-health investigations, not only limited to colorectal cancer metastasis, but also for developing novel bio-therapeutics in other disease areas, giving due attention to the QSP produced by the microbiome.

molecular biology↗