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result(s) for
"Becalska, Agata N"
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Assembly of actin filaments and microtubules in Nwk F-BAR-induced membrane deformations
by
Rodal, Avital A
,
Kelley, Charlotte F
,
Becalska, Agata N
in
Actin
,
Cellular biology
,
Cytoskeleton
2015
F-BAR domains form crescent-shaped dimers that bind to and deform lipid bilayers, and play a role in many cellular processes requiring membrane remodeling, including endocytosis and cell morphogenesis. Nervous Wreck (NWK) encodes an F-BAR/SH3 protein that regulates synapse growth in Drosophila. Unlike conventional F-BAR proteins that assemble tip-to-tip into filaments and helical arrays around membrane tubules, the Nwk F-BAR domain instead assembles into zigzags, creating ridges and periodic scallops on membranes in vitro. In cells, this membrane deforming activity generates small buds, which can lengthen into extensive protrusions upon actin cytoskeleton polymerization. Here, we show that Nwk-induced cellular protrusions contain dynamic microtubules, distinguishing them from conventional filopodia, and further do not depend on actin filaments or microtubules for their maintenance. Our results indicate new ways in which close cooperation between the membrane remodeling and cytoskeletal machinery underlies large-scale changes in cellular morphology.
Journal Article
Opposing functions for retromer and Rab11 in extracellular vesicle cargo traffic at presynaptic terminals
by
Yeh, Anna
,
Rodal, Avital A
,
Dresselhaus, Erica C
in
Alzheimer's disease
,
Amyloid precursor protein
,
Cell Biology
2020
ABSTRACT Neuronal extracellular vesicles (EVs) play important roles in intercellular communication and pathogenic protein propagation in neurological disease. However, it remains unclear how cargoes are selectively packaged into neuronal EVs. Here, we show that loss of the endosomal retromer complex leads to accumulation of EV cargoes Amyloid Precursor Protein (APP) and Synaptotagmin-4 (Syt4) at Drosophila motor neuron presynaptic terminals, resulting in increased release of these cargoes in EVs. By systematically exploring known retromer-dependent trafficking mechanisms, we show that EV regulation is separable from several previously identified roles of neuronal retromer, and depends on the ESCPE-1 complex. Conversely, loss of the recycling endosome regulator rab11 leads to reduced EV cargo levels, and suppresses cargo accumulation in retromer mutants. Thus, EV traffic reflects a balance between Rab11-mediated loading and retromer-dependent removal from EV precursor compartments. Our data shed light on previous studies implicating Rab11 and retromer in competing pathways in Alzheimer’s Disease, and suggest that misregulated EV traffic may be an underlying defect. Competing Interest Statement The authors have declared no competing interest. Footnotes * Revised manuscript includes new experiments (Figs 5 and 7) and text.