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de la Cruz-Gambra, A.

Publications and source records attributed to de la Cruz-Gambra, A..

2 recordsLinked to original sources

Vesicular Rps6 released by astrocytes regulate local translation and enhance synaptic markers in neurons

In neurons, like in any other cell, their function often relies on the fine tuning of their protein levels, which is achieved by the balance between protein synthesis and turnover. Defects in protein homeostasis frequently leads to neuronal dysfunction and neurological disorders. Given their extreme morphological complexity and high compartmentalization, neurons highly depend on the asymmetrical distribution of their proteome. The common belief is that proteins that sustain axonal, dendritic and synaptic functions are synthesized in the soma and then transported to distal neuronal compartments. However, there is a complementary mechanism by which the mRNAs, and not the proteins, are transported to distal subneuronal domains, and once they reach their destination they are locally translated. Although once considered heretical, local translation (or local protein synthesis) is now widely accepted by the scientific community. Nonetheless there is one question that remains largely unexplored in the field and that is whether local translation in dendrites, axons and synapses is fully regulated by the neuron itself or if non-neuronal cells (e.g. glia) can modulate this mechanism in a non-cell-autonomous manner. Here we show that astroglia regulates local protein synthesis and enhances synaptic markers by releasing extracellular vesicles (EVs) containing ribosomal protein Rps6. To our knowledge this is the first report that directly demonstrates glial control of local translation in neurons through EV-mediated glia-to-neuron communication.

neuroscience↗

The RNA binding protein IMP1/ZBP1 drives mRNA local translation in microglia and mediates polarized migration and phagocytosis in response to inflammation

Polarized cells in the brain, such as neurons and glia, rely on the asymmetric distribution of their proteins compartmentalizing the function of dendrites, axons, glial projections and endfeet. Subcellular proteomes can be assembled either by the transport of proteins synthesized in the cell soma or by the delivery of mRNAs to target compartments where they are locally translated into protein. This latter mechanism is known as local protein synthesis or local translation, and it has been best studied in neurons. Increasing evidence suggest it is also required to maintain local protein homeostasis in glial cells, however, in microglia, local translation remains largely unexplored. Given the scant evidence, we aimed at exploring the existence of local translation in peripheral microglial processes (PeMPs) and unravel its functional significance in response to inflammation, a major hallmark of neurodegenerative diseases. We report that local translation in PeMPs is enhanced by triggering a microglial inflammatory response with bacterial lipopolysaccharides (LPS). We found that Actb mRNA polarizes to PeMPs and is locally translated upon LPS exposure. mRNA localization in eukaryotic cells is driven by RNA binding proteins. Interestingly, downregulation of the Actb binding protein IMP1/ZBP1 impaired Actb mRNA polarization and its localized translation, and led to defects in filopodia distribution, PeMP motility, lamellar directed migration and phagocytosis in microglia. Thus, our work contributes to recent findings that mRNA localization and localized translation occur in microglia and gives a mechanistic insight into the relevance of this molecular mechanism in fundamental microglial functions in response to inflammation.

neuroscience↗