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Christova, T.

Publications and source records attributed to Christova, T..

2 recordsLinked to original sources

Exosomes promote axon outgrowth and a polarized neuronal morphology by engaging the Wnt-Planar Cell Polarity pathway

In neurons, the acquisition of a polarized morphology is achieved upon the outgrowth of a single axon from one of several neurites. Exosomes or small extracellular vesicles (sEVs) from diverse sources are known to promote the neurite outgrowth and thus may have therapeutic potential. However, the effect of fibroblast-derived exosomes on axon elongation in neurons of the central nervous system under growth permissive conditions remains unclear. Here, we show that fibroblast-derived sEVs promote axon outgrowth and a polarized neuronal morphology in mouse primary embryonic cortical neurons. Mechanistically, we demonstrate that the sEV-induced increase in axon outgrowth requires endogenous Wnts and core PCP components including Prickle, Vangl, Frizzled and Dishevelled. We demonstrate that sEVs are internalized by neurons, colocalize with Wnt7b and induce relocalization of Vangl2 to the distal axon during axon outgrowth. In contrast, sEVs derived from neurons or astrocytes do not promote axon outgrowth, while sEVs from activated astrocytes inhibit elongation. Thus, our data reveals that fibroblast-derived sEVs promote axon elongation through the Wnt-PCP pathway in a manner that is dependent on endogenous Wnts.

neuroscience↗

LTK and ALK regulate neuronal polarity and cortical migration by modulating IGF1R activity

The establishment of axon-dendrite polarity is fundamental for radial migration of neurons, cortical patterning and formation of neuronal circuitry. Here, we demonstrate that the receptor tyrosine kinases, Ltk and Alk, are required for proper neuronal polarization. In isolated primary mouse embryonic neurons, loss of Ltk and/or Alk yields a striking multiple axon phenotype. In mouse embryos and newborn pups, the absence of Ltk and Alk results in a delay in neuronal migration and subsequent cortical patterning. In adult cortices, neurons with aberrant neuronal projections are evident and there is a disruption of the axon tracts in the corpus callosum. Mechanistically, we show that loss of Alk and Ltk increases cell surface expression and activity of the insulin-like growth factor 1 receptor (Igf-1r), which acts to activate downstream PI3 kinase signalling to drive the excess axon phenotype. Thus, our data reveal Ltk and Alk as new regulators of neuronal polarity and migration whose disruption results in behavioural abnormalities.

neuroscience↗