Mechanistic insights into dynamic mutual regulation of USP14 and proteasome
Zhang, S.; Zou, S.; Yin, D.; Finley, D.; Wu, Z.; Mao, Y.
Show abstract
Proteasomal degradation of ubiquitylated proteins is sophisticatedly regulated at multiple levels1-3. A primary regulatory checkpoint is the removal of ubiquitin chains from substrates by the deubiquitylating enzyme USP14 that associates reversibly with the proteasome. How USP14 is activated and regulates the proteasome function remains unknown4-7. Here we report cryo-electron microscopy (cryo-EM) structures of human USP14 in complex with the 26S proteasome in nine conformational states at 3.0-3.6 [A] resolution, captured during polyubiquitylated protein degradation. Time-resolved cryo-EM analysis of the conformational continuum revealed two parallel pathways of proteasome state transitions induced by USP14 and captured transient conversion of substrate-engaged intermediates into substrate-inhibited intermediates. On the substrate-engaged pathway, USP14 activation allosterically reprograms conformational landscape of the AAA-ATPase motor and stimulates opening of the core particle gate8-10, enabling observation of a near-complete cycle of asymmetric ATP hydrolysis around the ATPase ring during processive substrate unfolding. Dynamic USP14-ATPase interactions decouple the ATPase activity from RPN11-catalysed deubiquitylation11-13 and kinetically introduce three regulatory checkpoints on the proteasome, at the steps of ubiquitin recognition, substrate translocation initiation and ubiquitin chain recycling. These findings provide unprecedented insights into the complete functional cycles of USP14-regulated proteasome and of USP14 activation-deubiquitylation-disassembly and establish mechanistic foundations for USP14-targeted therapeutic discovery.
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