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Meda, C.

Publications and source records attributed to Meda, C..

6 recordsLinked to original sources

Hepatic estrogen receptor α is required for stage-specific coupling of liver metabolism and proliferation during pregnancy

Background and AimsPregnancy requires dynamic, stage-specific adaptations in maternal liver metabolism and growth to sustain fetal development while preserving systemic homeostasis. Estrogen signaling, which significantly increases during pregnancy, is primarily mediated in hepatocytes by estrogen receptor (ER). Although hepatic ER regulates female liver metabolism under non-pregnant conditions, its role in pregnancy-induced hepatic remodeling remains unclear. MethodsWe studied non-pregnant and pregnant control and liver-specific ER knockout (LERKO) mice across gestational stages using longitudinal physiological measurements, liver transcriptomics, targeted metabolomics, histological assessment of cell proliferation, and metabolic phenotyping. ResultsIn control mice, pregnancy elicited sequential hepatic remodeling characterized by early induction of cell-cycle programs, a mid-gestational peak in hepatocyte proliferation with transient suppression of selected metabolic pathways, and late reactivation of specific metabolic programs. Chronic hepatic ER deficiency alters this temporal pattern. LERKO livers showed premature activation of proliferative and anabolic transcriptional programs, changes in amino acid- and fatty acid-related metabolic pathways, and altered temporal regulation of AKT-mTORC1-related signaling. At mid-gestation, LERKO mice displayed reduced hepatocyte proliferation, altered expression of metabolic and insulin-related genes, blunted gestational glucose adaptation without overt evidence of systemic insulin resistance, and changes in the light/dark-phase metabolic patterns. ConclusionsThese findings suggest that hepatic ER is required for the appropriate stage-specific coupling of liver growth, metabolic remodeling, and insulin-responsive signaling during pregnancy. Its loss is associated with gestational hepatic maladaptation and systemic metabolic phenotypes, providing a framework for investigating estrogen-dependent mechanisms underlying pregnancy-associated metabolic and liver disorders. HighlightsHepatic ER is required for stage-specific liver remodeling during pregnancy. Loss of hepatic ER alters temporal coupling of liver growth and metabolism. LERKO mice show early changes in amino acid- and fatty acid-related pathways. Hepatic ER loss reduces proliferation and alters gestational glucose adaptation. Hepatic ER loss is associated with altered light/dark-phase metabolic organization. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=80 SRC="FIGDIR/small/743939v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@53d7a5org.highwire.dtl.DTLVardef@7294e1org.highwire.dtl.DTLVardef@8c7660org.highwire.dtl.DTLVardef@1af9d02_HPS_FORMAT_FIGEXP M_FIG C_FIG

pharmacology and toxicology↗

Do nanoplastics reshape microglial support of neuronal resilience? A study of microglial bioenergetics and microglia to neuron communication in vitro

Nanoplastics (NPs) are emerging environmental contaminants able to cross biological barriers, disrupt cellular and organelle homeostasis, and alter the brain microenvironment. This study investigated whether NPs affect microglia-neuron communication, a key mechanism underlying neuronal resilience, via the nuclear factor erythroid 2-like 2 (NFE2L2) pathway. Using an in vitro model, we evaluated the effects of polystyrene nanoplastics on microglial metabolic fitness and microglia-mediated neuronal stress responses. Increasing NP concentrations induced a dose-dependent biphasic effect. Low to intermediate concentrations increased intracellular adenosine triphosphate (ATP) levels in microglia and enhanced microglia-mediated activation of neuronal NFE2L2. In contrast, high NP concentration impaired microglial metabolism, reduced ATP availability, and decreased microglia-neuron communication. These findings indicate that NPs alter microglial energetic status and modulate neuroprotective signalling, potentially contributing to impaired neuron-microglia interactions and increased susceptibility to neurotoxicity. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=129 SRC="FIGDIR/small/732827v1_ufig1.gif" ALT="Figure 1"> View larger version (69K): org.highwire.dtl.DTLVardef@d33f79org.highwire.dtl.DTLVardef@ec4542org.highwire.dtl.DTLVardef@1b71ca3org.highwire.dtl.DTLVardef@b92ad4_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LINanoplastics alter microglial metabolic fitness in vitro. C_LIO_LINanoplastics biphasically modulate microglial support of neurons. C_LIO_LIHigh nanoplastic concentration reduces microglial support to neurons. C_LIO_LIMicroglial bioenergetics may link nanoplastics to neuronal vulnerability. C_LI

pharmacology and toxicology↗

Spatiotemporal atlas of pro-inflammatory (NF-kB) and anti-inflammatory (STAT6) signalling using reporter mice during mRNA vaccination

The immunization process unfolds through a precisely orchestrated sequence of innate and adaptive events across distinct anatomical sites. Although many mechanisms underlying vaccination are well described, most vaccines have been developed empirically, partly due to the lack of tools enabling rapid, organ-specific analysis of immune activation. To address this gap, we developed and validated a novel STAT6 reporter mouse enabling dynamic in vivo whole-body imaging and ex vivo analysis of STAT6-mediated anti-inflammatory signalling, and combined it with an established NF-{kappa}B reporter model to dissect immune activation induced by two LNP-encapsulated mRNA vaccines encoding the same antigen but differing in RNA chemistry (unmodified versus N{superscript 1}-methyl-pseudouridine (m{superscript 1}{Psi})-modified). This dual-reporter system enabled the creation of a spatiotemporal atlas of vaccine-induced signalling, revealing chemistry-dependent immune dynamics and identifying the liver as a predominant early hub for both NF-{kappa}B and STAT6 activity following systemic administration. Integration with antibody measurements demonstrated that early STAT6 activation followed by rapid signal resolution--rather than prolonged NF-{kappa}B-mediated inflammation--correlated with robust humoral responses, suggesting that monitoring NF-{kappa}B and STAT6 dynamics could provide predictive insight into vaccine immunogenicity. Together, these findings establish NF-{kappa}B and STAT6 reporter mice as rapid in vivo screening tools for the early assessment of vaccine immunogenicity and performance. By enabling dynamic, organ-resolved immune profiling, this approach paves the way for more rational, mechanism-driven design of mRNA vaccines and underscores the importance of further investigating the effects of vaccines on the liver, both as a primary LNP target and as an immunologically tolerogenic organ.

immunology↗

A Rapid Multiplex LAMP Assay for Point-of-Care Detection of CT, NG, TV, and Fluoroquinolone Resistance in NG

Rapid point-of-care (POC) diagnostics are essential tools for improving timely treatment and reducing the transmission of sexually transmitted infections (STIs). The STI NG Plus Assay is a rapid multiplex LAMP (loop-mediated isothermal amplification) NAAT (nucleic acid amplification test) capable of simultaneously detecting Chlamydia trachomatis (CT), Neisseria gonorrhoeae (NG), Trichomonas vaginalis (TV), and fluoroquinolone resistance-associated mutations in NG (gyrA S91F). In this study, we assessed the STI NG Plus assay primer design and analytical sensitivity. Using a bioinformatically optimized primer design pipeline and empirical screening, the assay demonstrated high inclusivity and specificity, with no cross-reactivity to 48 urogenital organisms or the human genome. Analytical sensitivity testing showed reliable detection of all targets in both lysis buffer and clinical matrix. Limits of detection were lower than those of an existing FDA-cleared test. The assays robustness, speed, and sensitivity support its potential for decentralized STI testing with integrated antimicrobial resistance profiling.

molecular biology↗

Metabolic reprogramming and altered ATP content impair neuroprotective functions of microglia in β-glucocerebrosidase deficiency models

Mutations in the GBA gene, which reduce {beta}-glucocerebrosidase (GCase) activity, represent the most significant genetic risk factor for Parkinsons disease (PD). Decreased GCase activity has also been observed in sporadic PD cases, supporting a broader role for GCase in the poorly understood mechanisms underlying PD etiopathogenesis. While most studies on the relationship between GBA mutations and PD have focused on neurons, evidence suggests that PD pathology promoted by GCase deficiency involves other cell types and, in particular, interactions between neuronal and glial cells. Here, we identify microglia as primary players undergoing significant alterations at early stages of the pathological processes triggered by a GCase impairment. Using both pharmacological and genetic mouse models of GCase deficiency, we observed microglial morphological, transcriptional and metabolic changes. Interestingly, these changes were associated with a cell-specific, significant reduction of microglial ATP levels. When microglial ATP depletion was reproduced in an in vitro system of co-cultured microglial and neuronal cells, the neuroprotective properties of microglia were compromised and neuronal susceptibility to oxidative stress was enhanced. These findings underscore the role of microglia in PD pathogenesis and point to a pathogenetic mechanism by which microglial metabolic disturbances leading to ATP depletion enhance neuronal vulnerability to injury and neurodegeneration. This mechanism could be targeted for therapeutic intervention aimed at mitigating PD risk and counteracting the development of PD pathology. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=112 SRC="FIGDIR/small/656111v2_ufig1.gif" ALT="Figure 1"> View larger version (26K): org.highwire.dtl.DTLVardef@dfd3d7org.highwire.dtl.DTLVardef@ccf2c2org.highwire.dtl.DTLVardef@155d241org.highwire.dtl.DTLVardef@15ed00a_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Sex-specific microglial responses to glucocerebrosidase inhibition: relevance to GBA1-linked Parkinson disease

Microglia are heterogenous cells characterized by distinct populations each contributing to specific biological processes in the nervous system, including neuroprotection. To elucidate the impact of sex-specific microglia heterogenicity to the susceptibility of neuronal stress, we analysed the dynamic changes in shape and motility occurring in primary mouse microglia following pro-inflammatory or neurotoxic insults, thus finding sex-specific responses of microglial subpopulations. Male microglia exhibited a pro-inflammatory phenotype, whereas female microglia showed enhanced neuroprotective capabilities associated with the activation of Nrf2 detoxification pathway in neurons. The sex difference in neuroprotective functions is lost by inhibition of glucocerebrosidase, the product of the GBA1 gene, mutations of which are the major risk factor for Parkinsons disease (PD). This finding is consistent with the increased risk of PD observed in female carriers of GBA1 mutation, when compared with wild type population, suggesting a role for microglial functionality in the etiopathogenesis of PD-GBA1.

neuroscience↗