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Madera Enriquez, C.

Publications and source records attributed to Madera Enriquez, C..

2 recordsLinked to original sources

Dietary Microplastics Engage Gut Mechanosensory-Endocrine Signaling to Disrupt Bone Homeostasis

Background and AimsMicroplastics are pervasive environmental contaminants increasingly detected in food and water supplies; however, their effects on gastrointestinal physiology and systemic health remain poorly understood. We investigated whether chronic dietary microplastic exposure alters colonic neuroendocrine signaling and skeletal health. MethodsFemale and male C57BL/6J mice were fed purified basal, high-fat/high-cholesterol, or high-fiber diets with or without a physiological relevant polystyrene microplastic mixture ([~]1.7 mg/kg; particle sizes 0.49 - 5.0 {micro}m) for 12 weeks. Colonic cellular responses were evaluated using ELISA, histology, immunofluorescence, and single-nuclei RNA sequencing. Fecal microbiota transplantation was performed to assess microbial contributions to microplastic-induced phenotypes. Bone microarchitecture was assessed by micro-computed tomography. Human bone specimens were analyzed for microplastic content, and primary osteoblast mineralization assays were performed. ResultsDietary microplastic exposure increased chromogranin A-positive enteroendocrine cells and enhanced serotonergic signaling in the colon without evidence of intestinal inflammation or lineage reprogramming. Single-nuclei transcriptomic analysis identified compartment-specific serotonergic and mechanosensory adaptations in epithelial and enteric neuronal populations. Transfer of microbiota from microplastic-exposed donors to control recipients recapitulated increased enteroendocrine cell abundance. Chronic microplastic ingestion induced sex- and diet-dependent reductions in trabecular bone loss and architecture without systemic inflammatory activation. Microplastics were detected in human mineralized bone, and microplastic exposure impaired osteoblast mineralization in a donor-dependent manner. ConclusionsChronic ingestion of microplastics remodels gut neuroendocrine signaling through microbiota-dependent mechanisms and impairs skeletal homeostasis in the absence of overt inflammation. These findings identify a previously unrecognized gut-bone pathway through which dietary microplastic exposure may influence host physiology.

physiology↗

Colonic metabolomic and transcriptomic alterations in a mouse model of metabolic syndrome

Metabolic syndrome (MetS), characterized by abdominal obesity, insulin resistance, dyslipidemia, and hypertension, affects a substantial proportion of the global population and increases the risk for cardiovascular disease, diabetes, and metabolic dysfunction-associated steatotic liver disease (MASLD). Despite its prevalence, there are currently no effective pharmacological therapies targeting MetS, highlighting the need to identify novel etiological mechanisms, particularly within the gastrointestinal (GI) tract. Using a mouse model of MetS and healthy lean controls, we assessed the colonic microenvironment through metabolomic, transcriptomic, and microbiome analyses. Colonic organoids were cultured to further explore epithelial alterations. Additionally, human MetS fecal metabolomics data were cross-compared with the mouse model to validate translational relevance. MetS mice exhibited upregulation of colonic anabolic pathways, including glycolysis, the pentose phosphate pathway, and the tryptophan/kynurenine pathway, without evidence of intestinal inflammation. Microbiome analysis revealed an increased abundance of the genus Lactobacillus in MS NASH mice. Colonic organoids from MetS mice showed altered goblet cell differentiation. Comparative analysis with human MetS fecal metabolomics demonstrated similar dysregulated pathways, underscoring the translational relevance of these findings. Our study reveals significant metabolic and microbial alterations in the colon of MS NASH mice, implicating a dysfunctional GI tract as a potential etiological factor in MetS. These findings highlight specific metabolic pathways and microbial signatures that could serve as future therapeutic targets for MetS. NEW & NOTEWORTHYThis study identifies the colon as a metabolically active tissue affected in metabolic syndrome. Despite the absence of intestinal inflammation, MS NASH mice displayed altered colonic metabolism and microbiota composition, with conserved metabolite changes matching those seen in humans with metabolic syndrome. These findings highlight colonic metabolic dysfunction as a potential driver of gut dysbiosis and disease progression in metabolic syndrome and MASLD. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=134 SRC="FIGDIR/small/716131v1_ufig1.gif" ALT="Figure 1"> View larger version (77K): org.highwire.dtl.DTLVardef@1fcabf4org.highwire.dtl.DTLVardef@17d285forg.highwire.dtl.DTLVardef@1e57ffeorg.highwire.dtl.DTLVardef@36239f_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗