Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published June 28, 2006 | Supplemental Material
Journal Article Open

Activity-dependent dynamics and sequestration of proteasomes in dendritic spines

Abstract

The regulated degradation of proteins by the ubiquitin proteasome pathway is emerging as an important modulator of synaptic function and plasticity. The proteasome is a large, multi-subunit cellular machine that recognizes, unfolds and degrades target polyubiquitinated proteins. Here we report NMDA (N-methyl-D-aspartate) receptor-dependent redistribution of proteasomes from dendritic shafts to synaptic spines upon synaptic stimulation, providing a mechanism for local protein degradation. Using a proteasome-activity reporter and local perfusion, we show that synaptic stimulation regulates proteasome activity locally in the dendrites. We used restricted photobleaching of individual spines and dendritic shafts to reveal the dynamics that underlie proteasome sequestration, and show that activity modestly enhances the entry rate of proteasomes into spines while dramatically reducing their exit rate. Proteasome sequestration is persistent, reflecting an association with the actin-based cytoskeleton. Together, our data indicate that synaptic activity can promote the recruitment and sequestration of proteasomes to locally remodel the protein composition of synapses.

Additional Information

© 2006 Nature Publishing Group. Received 28 December 2005; Accepted 30 March 2006. We thank the Kloetzel, Masucci and Kennedy laboratories for providing the Rpt1(CIM5)–GFP, Ub^(G76V)–GFP and mRFP clones, respectively. We also thank members of the Schuman laboratory, especially C.-Y. Tai and S. Kim, and former member G. Patrick for discussions. E.M.S. is an Investigator of the Howard Hughes Medical Institute.

Attached Files

Supplemental Material - nature04769-s1.pdf

Files

nature04769-s1.pdf
Files (7.5 MB)
Name Size Download all
md5:781e39fbc21d64c391d41174a3f98fce
7.5 MB Preview Download

Additional details

Created:
August 19, 2023
Modified:
October 20, 2023