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Hill, S. E.

Publications and source records attributed to Hill, S. E..

2 recordsLinked to original sources

Retrograde Transport and ATG-4.2-Mediated Maturation Cooperate to Remove Autophagosomes from the Synapse

Autophagy is spatially compartmentalized in neurons, with autophagosome biogenesis occurring in the axon and degradation in the cell body. The mechanisms that coordinate autophagosome formation, trafficking and degradation across the polarized structure of the neuron are not well understood. Here we use genetic screens and in vivo imaging in single neurons of C. elegans to demonstrate that specific steps of autophagy are differentially required in distinct subcellular compartments of the neuron. We demonstrate that completion of autophagosome biogenesis and closure at the synapse are necessary for dynein-mediated retrograde transport. We uncover a role for UNC-16/JIP3/Sunday Driver in facilitating autophagosome retrograde transport. Through forward genetic screens we then determine that autophagosome maturation and degradation in the cell body depend on removal of LGG-1/Atg8/GABARAP from autophagosomes by the protease ATG-4.2. Our studies reveal that regulation of distinct ATG4 proteases contributes to the coordination of autophagy across subcellular regions of the neuron.\n\nHIGHLIGHTS and eTOC BlurbO_LIAutophagosome closure, but not maturation, occurs locally at presynaptic sites\nC_LIO_LIRetrograde transport of autophagosomes requires the motor adaptor UNC-16/JIP3\nC_LIO_LIThe autophagy protease ATG-4.2, but not the related ATG-4.1, is required for autophagosome maturation and degradation\nC_LIO_LIDefects in retrograde transport and maturation genetically interact and enhance accumulation of autophagosomes in presynaptic regions\nC_LI

cell biology

Structure and misfolding of the flexible tripartite coiled coil domain of glaucoma-associated myocilin

Glaucoma-associated myocilin is a member of the olfactomedins, a protein family broadly involved in neuronal development and human disease. Molecular studies of the myocilin N-terminal coiled coil demonstrate a unique tripartite architecture: a disulfide-linked, parallel dimer-of-dimers Y-shaped molecule, with distinct tetramer and dimer regions. The structure of the C-terminal 7-heptad dimer elucidates an unexpected repeat pattern involving electrostatic inter-strand stabilization. Molecular dynamics simulations reveal an alternate conformation in which the terminal inter-strand disulfide bond limits the extent of unfolding and results in a kinked configuration. Taken together, full-length myocilin is also branched, with two pairs of C-terminal olfactomedin domains. Selected variants within the N-terminal region alter the apparent quaternary structure of myocilin but do so without compromising stability or causing aggregation. In addition to increasing our structural knowledge of extracellular coiled coils for protein design and biomedically important olfactomedins, this work broadens the scope of protein misfolding in the pathogenesis of myocilin-associated glaucoma.\n\nHighlightsO_LIGlaucoma-causing extracellular protein associated with amyloid forming propensity\nC_LIO_LIStructural studies confirm tripartite parallel dimer-of-dimers coiled coil\nC_LIO_LILeucine zipper exhibits non-canonical heptad repeat pattern with disulfide cap\nC_LIO_LIGlaucoma-associated variants in tetramer alter structure but not stability\nC_LI\n\neTOC blurbHill et al describe the structure of the coiled-coil region of myocilin, the extracellular olfactomedin family member closely associated with the ocular disorder glaucoma. Myocilins coiled coil adopts a unique Y-shaped parallel dimer-of-timers employing an unusual heptad repeat pattern. Selected disease variants alter quaternary structure.

biochemistry