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Cook, A. S. I.

Publications and source records attributed to Cook, A. S. I..

2 recordsLinked to original sources

Structural pathway for class III PI 3-kinase activation by the myristoylated GTP-binding pseudokinase VPS15

The class III phosphatidylinositol (PI) 3-kinase complexes I and II (PI3KC3-C1 and -C2) are central to the initiation of macroautophagy and endosomal maturation, respectively. Through three-dimensional classification of a large cryo-EM dataset of human PI3KC3-C1 bound to the small GTPase RAB1A, we were able to map the structural pathway of enzyme activation. The inactive conformation is stabilized by an N-myristoyl modification of the pseudokinase (PK) subunit VPS15. The N-myristate is sequestered in the N-lobe of the VPS15 PK domain, which stabilizes a series of interactions whereby VPS15 sequesters and blocks the catalytic and membrane binding units of the VPS34 lipid kinase. In the activated conformation, the N-myristate and the VPS34 lipid kinase domain are liberated to interact with membranes and catalyze PI3P formation. The VPS15 PK domain contains a unique Arg at the gatekeeper position and binds tightly to GTP. GTP binding structurally stabilizes the N-myristate "in" conformation, which promotes the inactive conformation. This pathway provides a general mechanism for PI3KC3 activation in autophagy and endosome biogenesis and a roadmap for their pharmacological upregulation.

biochemistry↗

Structure and activation of the human autophagy-initiating ULK1C:PI3KC3-C1 supercomplex

The unc-51-like kinase protein kinase complex (ULK1C) is the most upstream and central player in the initiation of macroautophagy in mammals. Here, the cryo-EM structure of the human ULK1C core was determined at amino acid residue-level resolution. A moderate resolution structure of the ULK1C core in complex with another autophagy core complex, the class III phosphatidylinositol 3-kinase complex I (PI3KC3-C1) was also determined. The two complexes co-assemble through extensive contacts between the FIP200 scaffold subunit of ULK1C and the VPS15, ATG14, and BECN1 subunits of PI3KC3-C1. The FIP200:ATG13:ULK1 core of ULK1C undergoes a rearrangement from 2:1:1 to 2:2:2 stoichiometry in the presence of PI3KC3-C1. This suggests a structural mechanism for the initiation of autophagy through formation of a ULK1C:PI3KC3-C1 supercomplex and dimerization of ULK1 on the FIP200 scaffold.

biochemistry↗