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Balantzategi, U.

Publications and source records attributed to Balantzategi, U..

3 recordsLinked to original sources

PKC-dependent MYRF dysregulation links Aβ pathology to oligodendrocyte, myelin and cognitive alterations in Alzheimer's disease

Alzheimers disease (AD) is characterized not only by neuronal loss and synaptic dysfunction but also by emerging evidence of oligodendrocyte and myelin pathology. Amyloid-{beta} (A{beta}), a hallmark of AD, disrupts oligodendrocyte homeostasis through mechanisms that remain poorly understood. Here, we investigated the role of the myelin regulatory factor (MYRF), a transcription factor essential for oligodendrocyte maturation, in AD-related glial dysfunction. Using the 3xTg-AD mouse model, we observed aberrantly induced maturation dynamics and reduced oligodendrocyte lineage cell density at 12 months in the dentate gyrus, accompanied by increased MYRF expression. Interestingly, sustained MYRF overexpression was found to be toxic for oligodendrocytes in vitro. Moreover, in vitro and in vivo experiments further demonstrated that A{beta} exposure elevates MYRF protein levels and enhances its transcriptional activity, pointing to post-translational regulation. Mechanistically, A{beta} impaired GSK3-dependent phosphorylation and Fbxw7-mediated ubiquitination of MYRF, prolonging N-MYRF stability, an effect prevented by PKC inhibition in vitro. Intracerebroventricular infusion of PKC inhibitor Go6983 normalized MYRF levels, restored oligodendrocyte populations and myelin integrity, and improved hippocampal-dependent spatial learning in 3xTg-AD mice, with locomotor activity and anxiety-like behavior remaining unaffected. Together, these findings identify MYRF dysregulation as a mechanistic link between A{beta}/PKC signaling and oligodendrocyte pathology, and highlight PKC inhibition as a potential strategy to restore oligodendroglial function and cognition in AD.

neuroscience↗

Amyloid beta oligomers dysregulate oligodendrocyte differentiation and myelination via PKC in the zebrafish spinal cord

Amyloid {beta} oligomers (A{beta}o) have been proposed as candidates to induce oligodendrocyte (OL) and myelin dysfunctions in early stages of Alzheimers disease (AD) pathology. Nevertheless, little is known about how A{beta}o affect OL differentiation and myelination in vivo, and the underlying molecular mechanisms. In this study, we explored the effects of a brain intraventricular injection of A{beta}o on OLs and myelin in the developing spinal cord of zebrafish larvae. Using quantitative fluorescent in situ RNA hybridization assays, we demonstrated that A{beta}o altered myrf and mbp mRNA levels and the regional distribution of mbp during larval development, suggesting an early differentiation of OLs. Through live imaging of Tg(myrf:mScarlet) and Tg(mbp:tagRFP) zebrafish lines, both crossed with Tg(olig2:EGFP), we found that A{beta}o increased the number of myrf+ and mbp+ OLs in the dorsal spinal cord at 72 hpf and 5 dpf, respectively, without affecting total cell numbers. Furthermore, A{beta}o also increased the number of myelin sheaths per OL and the number of myelinated axons in the dorsal spinal cord compared to vehicle-injected control animals. Interestingly, the treatment of A{beta}o-injected zebrafish with the pan-PKC inhibitor Go6983 restored the aforementioned alterations in OLs and myelin to control levels. Altogether, not only do we demonstrate that A{beta}o induce a precocious oligodendroglial differentiation leading to dysregulated myelination, but we also identified PKC as a key player in A{beta}o-induced pathology.

neuroscience↗

Amyloid-beta increases MBP and MOBP translation in oligodendrocytes through dysregulation of hnRNP A2 dependent RNA dynamics

Oligodendrocyte dysfunction, myelin degeneration, and white matter structural alterations are critical events in Alzheimers disease (AD) that contribute to cognitive decline. A key hallmark of AD, A{beta} oligomers, disrupt oligodendrocyte and myelin homeostasis, but a comprehensive global analysis of the mechanisms involved is lacking. Here, transcriptomic profiling of A{beta}-exposed oligodendrocytes revealed widespread gene expression changes, particularly affecting pathways related to RNA localisation. Among the genes identified, we focused on Hnrnpa2/b1, the gene encoding the hnRNP A2 protein, which is essential for RNA transport and translation of myelin proteins. We confirmed aberrant upregulation of hnRNP A2 in hippocampal oligodendrocytes from post-mortem human brains of early-stage AD patients, A{beta}-injected mouse hippocampi and A{beta}-treated disrupting cells in vitro. RIP-seq analysis of the hnRNP A2 interactome revealed attenuated interactions with Hnrnpk and Hnrnpa2/b1, while interactions with Mbp and Mobp were enriched, suggesting changes in RNA metabolism of molecules associated with mRNA transport of myelin proteins. A{beta} increased the total number and dynamics of mRNA-containing granules, facilitating local translation of the myelin proteins MBP and MOBP and attenuating Ca2+ signalling. These findings suggest that A{beta} oligomers disrupt RNA metabolism mechanisms crucial for oligodendrocyte myelination through dysregulation of hnRNP A2 and myelin protein levels, potentially affecting oligodendroglia Ca2+ homeostasis. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=126 SRC="FIGDIR/small/590214v1_ufig1.gif" ALT="Figure 1"> View larger version (42K): org.highwire.dtl.DTLVardef@19e046eorg.highwire.dtl.DTLVardef@134f15corg.highwire.dtl.DTLVardef@d1f8aaorg.highwire.dtl.DTLVardef@11c97af_HPS_FORMAT_FIGEXP M_FIG GRAPHICAL ABSTRACT C_FIG

molecular biology↗