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Updated: Sep 13, 2025

Using Caenorhabditis elegans as a Model System to Study Protein Homeostasis in a Multicellular Organism
Published on: December 18, 2013
LARGE protein drives activity-induced homeostatic resetting
Bo Am Seo1,2,3,4,5, Han-Byeol Kim4, Chau Cat Tuong1,3,4
1Department of Convergence Medicine, Yonsei University Wonju College of Medicine, Wonju 26426, Republic of Korea.
None:
In the brain, memory can be coded as relative differences in synaptic strength produced by Hebbian plasticity [e.g., long-term potentiation (LTP)]. However, changes in neuronal activity, including the saturation of synaptic strength by the positive-feedback nature of Hebbian plasticity, could deteriorate the encoded memory. Homeostatic plasticity is thought to contribute to the stability of the encoded memory by maintaining the relative differences in synaptic strength against persistent destabilizing changes in neuronal activity. However, it remains unclear how and when these two types of plasticity work together in the context of memory. Here, we have demonstrated that LARGE, a protein associated with intellectual disability, drives homeostatic resetting several hours after LTP by down-regulating AMPA-receptor trafficking via the Golgi apparatus. LARGE deficiency impairs long-term memory formation in mice. Our study reveals a potential molecular mechanism underlying the stability of memory mediated by cross-talk between Hebbian and homeostatic plasticity.
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