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1.
Dev Biol ; 492: 1-13, 2022 12.
Article En | MEDLINE | ID: mdl-36162553

The exocyst complex is an important regulator of intracellular trafficking and tethers secretory vesicles to the plasma membrane. Understanding of its role in neuron outgrowth remains incomplete, and previous studies have come to different conclusions about its importance for axon and dendrite growth, particularly in vivo. To investigate exocyst function in vivo we used Drosophila sensory neurons as a model system. To bypass early developmental requirements in other cell types, we used neuron-specific RNAi to target seven exocyst subunits. Initial neuronal development proceeded normally in these backgrounds, however, we considered this could be due to residual exocyst function. To probe neuronal growth capacity at later times after RNAi initiation, we used laser microsurgery to remove axons or dendrites and prompt regrowth. Exocyst subunit RNAi reduced axon regeneration, although new axons could be specified. In control neurons, a vesicle trafficking marker often concentrated in the new axon, but this pattern was disrupted in Sec6 RNAi neurons. Dendrite regeneration was also severely reduced by exocyst RNAi, even though the trafficking marker did not accumulate in a strongly polarized manner during normal dendrite regeneration. The requirement for the exocyst was not limited to injury contexts as exocyst subunit RNAi eliminated dendrite regrowth after developmental pruning. We conclude that the exocyst is required for injury-induced and developmental neurite outgrowth, but that residual protein function can easily mask this requirement.


Axons , Exocytosis , Exocytosis/physiology , Neurites , Nerve Regeneration , Cell Membrane/metabolism
2.
PLoS Biol ; 18(3): e3000647, 2020 03.
Article En | MEDLINE | ID: mdl-32163403

Dendrite microtubules are polarized with minus-end-out orientation in Drosophila neurons. Nucleation sites concentrate at dendrite branch points, but how they localize is not known. Using Drosophila, we found that canonical Wnt signaling proteins regulate localization of the core nucleation protein γTubulin (γTub). Reduction of frizzleds (fz), arrow (low-density lipoprotein receptor-related protein [LRP] 5/6), dishevelled (dsh), casein kinase Iγ, G proteins, and Axin reduced γTub-green fluorescent protein (GFP) at branch points, and two functional readouts of dendritic nucleation confirmed a role for Wnt signaling proteins. Both dsh and Axin localized to branch points, with dsh upstream of Axin. Moreover, tethering Axin to mitochondria was sufficient to recruit ectopic γTub-GFP and increase microtubule dynamics in dendrites. At dendrite branch points, Axin and dsh colocalized with early endosomal marker Rab5, and new microtubule growth initiated at puncta marked with fz, dsh, Axin, and Rab5. We propose that in dendrites, canonical Wnt signaling proteins are housed on early endosomes and recruit nucleation sites to branch points.


Dendrites/metabolism , Drosophila Proteins/metabolism , Endosomes/metabolism , Microtubules/metabolism , Wnt Proteins/metabolism , Animals , Axin Signaling Complex/genetics , Axin Signaling Complex/metabolism , Axons/metabolism , Cell Polarity , Dendrites/genetics , Drosophila , Drosophila Proteins/genetics , Endosomes/genetics , Microtubules/genetics , Mutation , Receptors, Wnt/genetics , Receptors, Wnt/metabolism , Tubulin/genetics , Tubulin/metabolism , Wnt Proteins/genetics , Wnt Signaling Pathway/genetics , rab5 GTP-Binding Proteins/genetics , rab5 GTP-Binding Proteins/metabolism
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