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Mantuano, E.

Publications and source records attributed to Mantuano, E..

2 recordsLinked to original sources

LRP1 and p75 Neurotrophin Receptor Collaborate to Trigger Pro-inflammatory Cell-signaling in Response to Extracellular Tau

In Alzheimers Disease (AD) and other neurodegenerative diseases, microtubule-associated protein Tau forms abnormal intracellular aggregates. The mechanisms by which Tau may promote AD progression remain incompletely understood. Injured and dying neurons release Tau into the extracellular spaces in the CNS. The released Tau may be taken up by receptors in the LDL Receptor gene family, including Low Density Lipoprotein Receptor-related Protein-1 (LRP1), which is expressed by microglia, astrocytes, and neurons. This process may be important for clearing Tau from extracellular spaces but may also promote the seeding of Tau aggregates in new cells. Our laboratory has shown that endocytosis of LRP1 ligands is coupled to the activation of cell-signaling and regulation of inflammation. Notably, different LRP1 ligands can induce either pro-inflammatory or anti-inflammatory responses, depending on the co-receptors that function with LRP1. Here, we demonstrate that in cultured macrophages, microglia, and astrocytes, extracellular Tau induces an LRP1-dependent pro-inflammatory response, characterized by NF{kappa}B activation and expression of pro-inflammatory cytokines. Unlike other LRP1 ligands that elicit anti-inflammatory responses, the response to Tau occurs independently of the NMDA receptor. When LRP1 is deleted or silenced, macrophages, microglia, and astrocytes do not respond to Tau, whereas when Grin1 is deleted or the NMDA-R is pharmacologically inhibited, the responses remain unchanged. Because we have evidence that LRP1 in microglia expresses anti-inflammatory activity in response to ligands other than Tau, understanding the role of LRP1 in microglia and astrocytes in vivo in Alzheimers Disease and other neuroinflammatory processes is an important future goal. SIGNIFICANCE STATEMENTIn Alzheimers Disease and other neurodegenerative diseases, microtubule-associated protein Tau forms abnormal intracellular aggregates that contribute to disease progression. When released extracellularly, Tau binds to the transmembrane receptor LRP1, expressed by diverse cells in the CNS. LRP1 has the unique ability to couple ligand uptake with activation of cell-signaling. We demonstrated that Tau binding to LRP1 activates pro-inflammatory responses in macrophages, microglia, and astrocytes, characterized by NF{kappa}B activation and cytokine release. This signaling occurs independently of the NMDA receptor, which distinguishes Tau from other LRP1 ligands. These results define a novel pathway by which extracellular Tau regulates neuroinflammation in Alzheimers Disease, providing new therapeutic opportunities that target LRP1 without interfering with NMDA-R functions.

cell biology↗

Circulating U13 small nucleolar RNA as a candidate biomarker for Huntington's disease

Background and ObjectivesFluid biomarkers are a recent field of interest in Huntington disease (HD). We focused on small circulating RNAs from plasma of subjects with prodromal (pre-HD) and overt disease by a two-stage approach: an unbiased investigation by an array method and a validation study to quantify a significant small nucleolar RNA. MethodsThrough Affymetrix Gene-Chip-miRNA-Array we performed an exploratory study on 9 HD patients, 8 healthy subjects (HS) and 5 psychiatric patients (PP; who share drugs with HD patients, to control for iatrogenic effects). Through real time PCR we validated the results in an independent population of 24 HD patients, 15 pre-HD, 24 PP, 28 Alzheimers disease (AD) patients (added to control the disease-specificity of our finding) and 23 HS. A bioinformatic analysis was also performed to interpret our finding. ResultsThe microarray results showed a significant signal for U13 small nucleolar RNA (SNORD13) that was increased in plasma of HD patients compared to controls (fold change, 1.54, p =0.003 HD vs. HS, and fold change 1.44 p = 0.0026 HD vs. PP). In the validation population the significant increase in HD patients was evident compared to both pre-HD and the three control groups (p<0.00001). The plasma levels of SNORD13 correlated with the status of mutant huntingtin carrier and the disease duration (respectively R=0.69; p<0.000001; R=0.49; p=0.015). Through receiver operating characteristic (ROC) curve analysis, we showed high accuracy of plasmatic SNORD13 in discriminating HD patients from pre-HD and control groups (AUC=0.963), outperforming values reported in another study for intrathecal or plasmatic mutant huntingtin and neurofilament light chain as biomarkers of overt HD. The bioinformatic analysis on SNORD13 interactome and pathway analysis showed enrichments for factors involved in nuclear functions beyond the ribosome biogenesis. DiscussionWe report the unprecedented finding of a potential role of small nucleolar RNAs in HD. Circulating SNORD13 seems a good biomarker for clinical purposes. It seems to be specific for HD and to peripherally report a plausible tipping point in the pathogenic cascade at neuronal level, possibly paving the way for new therapeutic targets.

neuroscience↗