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Ramirez-Moreno, M.

Publications and source records attributed to Ramirez-Moreno, M..

2 recordsLinked to original sources

Context-dependent toxicity of human Tau isoforms in a Drosophila tauopathy model

Tauopathies are characterised by progressive deterioration of brain regions due to abnormal accumulation of the microtubule-associated protein tau (MAPT). Alternative splicing of MAPT pre-mRNA results in six tau isoforms, which are classified into two groups depending on the number of microtubule-binding domain repeats (3R vs 4R). Although many tauopathies are 3R or 4R-specific, the relative contributions of individual isoforms to neurotoxicity remain incompletely understood. To systematically characterise differences in tau isoform toxicity, we created a novel set of Drosophila lines expressing equivalent amounts of the six human tau isoforms (hTau) at levels sufficient to induce visible phenotypes. Using a variety of assays including survival, negative geotaxis and tissue-level or cell-type-specific degeneration, we found that hTau isoform toxicity is not uniform across different biological contexts. Despite generally higher toxicity of 4R isoforms compared to 3R, the effects of individual hTau isoforms varied with the temporal window of expression, tissue type, and neuronal identity. Restricting hTau expression to small homogeneous neuronal populations enabled detailed analysis of isoform-specific degeneration. Neurons previously observed to be vulnerable or resilient to hTau toxicity exhibited differences in the onset and progression of degeneration, suggesting that resilience may be an early and transitory state, with most or all neurons eventually succumbing to tau toxicity over time. Notably, these differences in toxicity were not readily explained by variations in hTau abundance and phosphorylation. Together, our findings demonstrate that tau toxicity is highly context-dependent, clearly isoform-specific, and shaped by interactions between tau and its cellular environment.

neuroscience↗

E-cadherin endocytosis promotes non-canonical EGFR:STAT signalling to induce cell death and inhibit heterochromatinisation

Signalling molecules often contribute to several signalling pathways that produce distinct transcriptional outputs and cellular phenotypes. One of the major unanswered questions in cell biology is how multiple activities of signalling molecules are coordinated in space and time in vivo. Here, we focus on the Signal Transducer and Activator of Transcription (STAT) protein as a paradigm of signalling molecules involved in several independent signalling pathways. In addition to the canonical pathways, whereby STAT is phosphorylated and activated by Janus Kinases, STAT is involved in at least two non-canonical pathways. In one pathway, STAT is activated by the Epidermal Growth Factor Receptor (EGFR) promoting apoptosis. In another, it binds the Heterochromatin Protein 1 (HP1) to enhance heterochromatin formation. Using Drosophila wing discs as an epithelial system, we demonstrate that all three STAT activities coexist in this tissue. We provide evidence that while the canonical STAT signalling is dominant over non-canonical pathways, EGFR:STAT and HP1:STAT pathways compete for the availability of unphosphorylated STAT. We also describe the role of the cell-cell adhesion protein E-cadherin in EGFR:STAT signalling. Both EGFR and STAT colocalise with E-cadherin at cell-cell junctions and on intracellular vesicles. Elevated intracellular E-cadherin promotes EGFR:STAT pathway leading to apoptosis, whereas blocking E-cadherin endocytosis prevents apoptosis induction. Altogether, we propose that E-cadherin endocytosis controls the balance between two non-canonical STAT activities in a potential tumour-suppressive mechanism - junctional disassembly in dysregulated epithelial-to-mesenchymal transitions would shift this balance towards the EGFR:STAT signalling to promote apoptosis.

cell biology↗