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Alberio, T.

Publications and source records attributed to Alberio, T..

2 recordsLinked to original sources

A multilayered in silico analysis links UHRF1, DNA methylation and developmental chromatin memory to lineage-dependent prognosis in gastric, renal and adrenal cancers

Aberrant DNA methylation is a hallmark of cancer, but its clinical interpretation remains debated. UHRF1, a key epigenetic adaptor for DNA methylation maintenance and chromatin bivalency regulation in embryonic stem cells, is frequently overexpressed yet shows context-dependent prognostic behaviour. By integrating bulk and single-cell transcriptomics, CpG-resolution methylation, developmental chromatin states, immune profiling and clinical outcomes across gastric (STAD), clear-cell renal (KIRC) and adrenal (ACC) carcinomas, we identified a four-class UHRF1-embryonic morphogenesis (UHRF1-EM) framework resolving this paradox. This axis revealed an inverse prognostic pattern: whilst across all three tumours EM-low and EM-high states mark better or worse prognosis, respectively, UHRF1-high levels associate with favourable outcome in STAD (UH-EML), and unfavourable in KIRC and ACC (UH-EMH). The classification proved reproducible and independently prognostic after adjustment for stage and molecular subtypes, outperforming existing classifiers and exceeding pathological stage in KIRC and ACC. Multivariable models incorporating UHRF1-EM yielded uniformly positive {Delta}C-indices. Hypermethylation associated with the UHRF1-EM axis was enriched at ESC bivalent developmental loci (EM and oncofoetal genes), but not at housekeeping cell-cycle sites. In STAD, this pattern was related to oncofoetal gene downregulation and best prognosis, whereas in KIRC and ACC it matched with gene-body/enhancer methylation, higher EM expression, immunosuppressive microenvironments and worst prognosis. Together, these findings establish the UHRF1-EM axis as a clinically robust molecular classifier and support a mechanistic model in which tumour-specific epigenetic engagement of developmental loci may contribute to the prognostic inversion, providing a foundation for further mechanistic experimental validation.

cancer biology↗

LRRK2 G2019S disrupts GABAergic signaling and shifts excitatory/inhibitory balance in the striatum

The excitatory/inhibitory (E/I) balance within neural circuits is essential for proper brain function, and its disruption is a hallmark of several neurodegenerative diseases. In Parkinsons disease (PD), widespread alterations in the basal ganglia circuitry lead to an E/I imbalance in the striatum, contributing to excitotoxicity. Leucine-rich repeat kinase 2 (LRRK2) has recently emerged as a key contributor to both familial and sporadic forms of PD, with the pathogenic Gly2019Ser (G2019S) mutation representing one of the most frequently observed variants. This mutation is known to exacerbate excitotoxicity by impairing glutamate reuptake mechanisms, particularly through dysregulation of EAAT2 activity and its membrane localization. In contrast, the role of LRRK2 in GABAergic transmission remains poorly understood. Here, we reveal a clear modulation of inhibitory signaling by LRRK2 through a comprehensive approach combining mouse striatal slices and Xenopus laevis oocytes. Our results demonstrate, for the first time, that LRRK2 G2019S induces a significant reduction in GABA-evoked current amplitudes. Moreover, we identified an altered distribution of receptor isoforms in pathological tissue, affecting both tonic and phasic GABA currents. Specifically, synaptic GABAA receptors containing the {gamma}2 subunit were functionally modulated by LRRK2 G2019S. The reduced availability of gephyrin in the presence of the G2019S variant may impair the gephyrin-GABAA receptor complex, leading to decreased receptor surface expression and further shifting the glutamate/GABA current ratio toward excitatory dominance. This is supported by the increased activity of AMPA and NMDA receptors observed in the pathological striatum. Overall, our findings highlight a previously underappreciated role of LRRK2 G2019S in impairing GABAergic transmission and disrupting the E/I balance. These insights point to novel circuit-level mechanisms underlying LRRK2-linked PD and suggest new avenues for the development of disease-modifying therapies targeting inhibitory dysfunction. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=76 SRC="FIGDIR/small/684189v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@1b685b3org.highwire.dtl.DTLVardef@3ea39org.highwire.dtl.DTLVardef@1064a58org.highwire.dtl.DTLVardef@1fb0304_HPS_FORMAT_FIGEXP M_FIG C_FIG The LRRK2 G2019S mutation contributes to excitatory/inhibitory imbalance by reducing GABA-evoked currents. Specifically, it is associated with diminished phasic GABAergic transmission and enhanced tonic inhibition, suggesting an altered subcellular distribution of GABAA receptor subtypes.

neuroscience↗