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1.
Dev Biol ; 486: 56-70, 2022 06.
Article in English | MEDLINE | ID: mdl-35341730

ABSTRACT

Many neurons in bilaterian animals are polarized with functionally distinct axons and dendrites. Microtubule polarity, microtubule stability, and the axon initial segment (AIS) have all been shown to influence polarized transport in neurons. Each of these cytoskeletal cues could act independently to control axon and dendrite identity, or there could be a hierarchy in which one acts upstream of the others. Here we test the hypothesis that microtubule polarity acts as a master regulator of neuronal polarity by using a Drosophila genetic background in which some dendrites have normal minus-end-out microtubule polarity and others have the axonal plus-end-out polarity. In these mosaic dendrite arbors, we found that ribosomes, which are more abundant in dendrites than axons, were reduced in plus-end-out dendrites, while an axonal cargo was increased. In addition, we determined that microtubule stability was different in plus-end-out and minus-end-out dendrites, with plus-end-out ones having more stable microtubules like axons. Similarly, we found that ectopic diffusion barriers, like those at the AIS, formed at the base of dendrites with plus-end-out regions. Thus, changes in microtubule polarity were sufficient to rearrange other cytoskeletal features associated with neuronal polarization. However, overall neuron shape was maintained with only subtle changes in branching in mosaic arbors. We conclude that microtubule polarity can act upstream of many aspects of intracellular neuronal polarization, but shape is relatively resilient to changes in microtubule polarity in vivo.


Subject(s)
Cell Polarity , Dendrites , Animals , Axons/physiology , Cell Polarity/physiology , Dendrites/physiology , Drosophila , Microtubules/physiology , Neurons/physiology
2.
Neurosci Lett ; 751: 135806, 2021 04 23.
Article in English | MEDLINE | ID: mdl-33705928

ABSTRACT

Microtubules are the structural center of neurons, stretching in overlapping arrays from the cell body to the far reaches of axons and dendrites. They also act as the tracks for long-range transport mediated by dynein and kinesin motors. Transcription and most translation take place in the cell body, and newly made cargoes must be shipped from this site of synthesis to sites of function in axons and dendrites. This constant demand for transport means that the microtubule array must be present without gaps throughout the cell over the lifetime of the animal. This task is made slightly easier in many animals by the relatively long, stable microtubules present in neurons. However, even stable neuronal microtubules have ends that are dynamic, and individual microtubules typically last on the order of hours, while the neurons around them last a lifetime. "Birth" of new microtubules is therefore required to maintain the neuronal microtubule array. In this review we discuss the nucleation of new microtubules in axons and dendrites, including how and where they are nucleated. In addition, it is becoming clear that neuronal microtubule nucleation is highly regulated, with unexpected machinery impinging on the decision of whether nucleation sites are active or inactive through space and time.


Subject(s)
Microtubules/metabolism , Neurons/metabolism , Animals , Humans , Neurons/ultrastructure
3.
Dev Neurobiol ; 81(3): 321-332, 2021 04.
Article in English | MEDLINE | ID: mdl-32291942

ABSTRACT

Most neurons must last a lifetime and their microtubule cytoskeleton is an important contributor to their longevity. Neurons have some of the most stable microtubules of all cells, but the tip of every microtubule remains dynamic and, although requiring constant GTP consumption, microtubules are always being rebuilt. While some ongoing level of rebuilding always occurs, overall microtubule stability can be modulated in response to injury and stress as well as the normal developmental process of pruning. Specific microtubule severing proteins act in different contexts to increase microtubule dynamicity and promote degeneration and pruning. After axon injury, complex changes in dynamics occur and these are important for both neuroprotection induced by injury and subsequent outgrowth of a new axon. Understanding how microtubule dynamics is modulated in different scenarios, as well as the impact of the changes in stability, is an important avenue to explore for development of strategies to promote neuroprotection and regeneration.


Subject(s)
Axons , Neurons , Axons/metabolism , Cytoskeleton , Microtubules/metabolism , Neurons/metabolism
4.
PLoS Biol ; 18(3): e3000647, 2020 03.
Article in English | MEDLINE | ID: mdl-32163403

ABSTRACT

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.


Subject(s)
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
5.
J Cell Biol ; 218(7): 2309-2328, 2019 07 01.
Article in English | MEDLINE | ID: mdl-31076454

ABSTRACT

Microtubule minus ends are thought to be stable in cells. Surprisingly, in Drosophila and zebrafish neurons, we observed persistent minus end growth, with runs lasting over 10 min. In Drosophila, extended minus end growth depended on Patronin, and Patronin reduction disrupted dendritic minus-end-out polarity. In fly dendrites, microtubule nucleation sites localize at dendrite branch points. Therefore, we hypothesized minus end growth might be particularly important beyond branch points. Distal dendrites have mixed polarity, and reduction of Patronin lowered the number of minus-end-out microtubules. More strikingly, extra Patronin made terminal dendrites almost completely minus-end-out, indicating low Patronin normally limits minus-end-out microtubules. To determine whether minus end growth populated new dendrites with microtubules, we analyzed dendrite development and regeneration. Minus ends extended into growing dendrites in the presence of Patronin. In sum, our data suggest that Patronin facilitates sustained microtubule minus end growth, which is critical for populating dendrites with minus-end-out microtubules.


Subject(s)
Dendrites/genetics , Drosophila Proteins/genetics , Drosophila melanogaster/growth & development , Microtubule-Associated Proteins/genetics , Neurons/metabolism , Animals , Cell Polarity/genetics , Drosophila melanogaster/genetics , Embryo, Nonmammalian , Embryonic Development/genetics , Kinesins/genetics , Microtubules/genetics
6.
Proc Natl Acad Sci U S A ; 114(47): E10206-E10215, 2017 11 21.
Article in English | MEDLINE | ID: mdl-29109254

ABSTRACT

Neuronal injury often leads to devastating consequences such as loss of senses or locomotion. Restoration of function after injury relies on whether the injured axons can find their target cells. Although fusion between injured proximal axon and distal fragment has been observed in many organisms, its functional significance is not clear. Here, using Caenorhabditis elegans mechanosensory neurons, we address this question. Using two femtosecond lasers simultaneously, we could scan and sever posterior lateral microtubule neurons [posterior lateral microtubules (PLMs)] on both sides of the worm. We showed that axotomy of both PLMs leads to a dramatic loss of posterior touch sensation. During the regenerative phase, only axons that fuse to their distal counterparts contribute to functional recovery. Loss of let-7 miRNA promotes functional restoration in both larval and adult stages. In the L4 stage, loss of let-7 increases fusion events by increasing the mRNA level of one of the cell-recognition molecules, CED-7. The ability to establish cytoplasmic continuity between the proximal and distal ends declines with age. Loss of let-7 overcomes this barrier by promoting axonal transport and enrichment of the EFF-1 fusogen at the growing tip of cut processes. Our data reveal the functional property of a regenerating neuron.


Subject(s)
ATP-Binding Cassette Transporters/metabolism , Axons/physiology , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/physiology , Caenorhabditis elegans/physiology , Membrane Glycoproteins/physiology , MicroRNAs/metabolism , Nerve Regeneration/genetics , Sensory Receptor Cells/physiology , Animals , Axonal Transport/physiology , Axotomy , Cytoplasm/physiology , Microtubules/physiology , Touch
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