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Cason, S. E.

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

2 recordsLinked to original sources

Spatiotemporal analysis of axonal autophagosome-lysosome dynamics reveals limited fusion events trigger two-step maturation

Macroautophagy is a homeostatic process required to clear cellular waste including aggregated proteins and dysfunctional organelles. Neuronal autophagosomes form constitutively in the distal tip of the axon and are actively transported toward the soma, with cargo degradation initiated en route. Cargo turnover requires autophagosomes to fuse with lysosomes to acquire degradative enzymes; however, the timing and number of these fusion events in the axon have proven difficult to detect using microscopy alone. Here we use a quantitative model, parameterized and validated using data from live and fixed imaging of primary hippocampal neurons, to explore the autophagosome maturation process on a cellular scale. We demonstrate that retrograde autophagosome motility is independent from lysosomal fusion, and that most autophagosomes fuse with only a few lysosomes by the time they reach the soma. Furthermore, our imaging and model results highlight the two-step maturation of the autophagosome: fusion with a lysosome or late endosome is followed by the slow degradation of the autophagosomal inner membrane before actual cargo degradation can occur. Together, rigorous quantitative measurements and mathematical modeling elucidate the dynamics of autophagosome-lysosome interaction and autophagosomal maturation in the axon.

cell biology↗

Sequential dynein effectors regulate axonal autophagosome motility in a maturation-dependent pathway

Autophagy is a degradative pathway required to maintain neuronal homeostasis. Neuronal autophagosomes form constitutively at the axon terminal and mature via lysosomal fusion during dynein-mediated transport to the soma. How the dynein-autophagosome interaction is regulated during maturation is unknown. Here, we identify a series of handoffs between dynein effectors as autophagosomes transit along the axons of primary neurons. In the distal axon, JIP1 initiates autophagosomal transport, while autophagosomes in the mid-axon require HAP1 and Huntingtin for motility. We demonstrate that HAP1 is a bonafide dynein activator, binding the dynein-dynactin complex via canonical and noncanonical interactions. JIP3 is found on most axonal autophagosomes but specifically regulates the transport of acidified autolysosomes. Inhibiting autophagosomal transport disrupts maturation, while inhibiting autophagosomal maturation perturbs the association and function of dynein effectors. Thus maturation and transport are tightly linked. These results describe a novel maturation-based dynein effector handoff on neuronal autophagosomes that is key to autophagosomal motility, cargo degradation, and the maintenance of axonal health. SummaryNeuronal autophagosomes form in the distal axon and mature via fusion with lysosomes during their dynein-driven transport to the soma. Dynein is regulated on autophagosomes by distinct effector proteins--JIP1, HAP1, and JIP3--depending on location and autophagosomal maturity. In this sequential pathway, transport and maturation state are tightly linked to maintain neuronal health.

cell biology↗