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Biology subjects

Lam, W. K.

Publications and source records attributed to Lam, W. K..

3 recordsLinked to original sources

Presynapses are mitophagy pit stops that prevent axon degeneration

Defects in neuronal mitophagy have been linked to neurodegenerative diseases including Parkinsons disease. However, despite the importance of mitophagy in neuronal homeostasis, the mechanistic basis for neurodegeneration when mitophagy is defective is unclear. Here, using human neurons, we discover that presynapses are mitophagy pit stops for damaged axonal mitochondria. We show that while mitochondrial damage and PINK1/Parkin activation events are distributed throughout axons, mitophagy initiation and autophagosome formation are restricted to presynapses, which we show contain the machineries required for mitophagy. Being the primary sites of axonal mitophagy, presynapses were vulnerable when PINK1/Parkin mitophagy was defective. We observed local cytochrome c release within presynapses from an accumulation of damaged mitochondria. This resulted in downstream degradative caspase activation, defining a mechanism for neurodegeneration. Pharmacological rescue of axon degeneration was achieved through synthetic upregulation of receptor mediated mitophagy with the clinically approved compound Roxadustat, revealing a potential therapeutic avenue for disease.

cell biology↗

Unconventional Initiation of PINK1/Parkin Mitophagy by Optineurin

Cargo sequestration is a fundamental step of selective autophagy in which cells generate a double membrane structure termed an autophagosome on the surface of cargoes. NDP52, TAX1BP1 and p62 bind FIP200 which recruits the ULK1/2 complex to initiate autophagosome formation on cargoes. How OPTN initiates autophagosome formation during selective autophagy remains unknown despite its importance in neurodegeneration. Here, we uncover an unconventional path of PINK1/Parkin mitophagy initiation by OPTN that does not begin with FIP200 binding nor require the ULK1/2 kinases. Using gene-edited cell lines and in vitro reconstitutions, we show that OPTN utilizes the kinase TBK1 which binds directly to the class III phosphatidylinositol 3-kinase complex I to initiate mitophagy. During NDP52 mitophagy initiation, TBK1 is functionally redundant with ULK1/2, classifying TBK1s role as a selective autophagy initiating kinase. Overall, this work reveals that OPTN mitophagy initiation is mechanistically distinct and highlights the mechanistic plasticity of selective autophagy pathways.

cell biology↗

Structural basis for ATG9A recruitment to the ULK1 complex in mitophagy initiation

The assembly of the autophagy initiation machinery nucleates autophagosome biogenesis, including in the PINK1- and Parkin-dependent mitophagy pathway implicated in Parkinsons disease. The structural interaction between the sole transmembrane autophagy protein, ATG9A, and components of the ULK1 complex is one of the major missing links needed to complete a structural map of autophagy initiation. We determined the 2.4 [A] x-ray crystallographic structure of the ternary structure of ATG9A C-terminal tail bound to the ATG13:ATG101 HORMA dimer, which is part of the ULK1 complex. We term the interacting portion of the extreme C-terminal part of the ATG9A tail the "HORMA dimer interacting region" (HDIR). This structure shows that the HDIR binds to the HORMA domain of ATG101 by {beta}-sheet complementation such that the ATG9A tail resides in a deep cleft at the ATG13:ATG101 interface. Disruption of this complex in cells impairs damage induced PINK1/Parkin mitophagy mediated by the cargo receptor NDP52.

cell biology↗