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Rapid enhancement of two-step wiring plasticity by estrogen and NMDA receptor activity
Author(s) -
Deepak P. Srivastava,
Kevin M. Woolfrey,
Kelly A. Jones,
Cassandra Y. Shum,
L. Leanne Lash,
Geoffrey T. Swanson,
Peter Penzes
Publication year - 2008
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.0801581105
Subject(s) - dendritic spine , ampa receptor , nmda receptor , neuroplasticity , neuroscience , synaptic plasticity , neuropil , biology , spine (molecular biology) , microbiology and biotechnology , receptor , central nervous system , biochemistry , hippocampal formation
Cortical information storage requires combined changes in connectivity and synaptic strength between neurons, but the signaling mechanisms underlying this two-step wiring plasticity are unknown. Because acute 17beta-estradiol (E2) modulates cortical memory, we examined its effects on spine morphogenesis, AMPA receptor trafficking, and GTPase signaling in cortical neurons. Acute E2 application resulted in a rapid, transient increase in spine density, accompanied by temporary formation of silent synapses through reduced surface GluR1. These rapid effects of E2 were dependent on a Rap/AF-6/ERK1/2 pathway. Intriguingly, NMDA receptor (NMDAR) activation after E2 treatment potentiated silent synapses and elevated spine density for as long as 24 h. Hence, we show that E2 transiently increases neuronal connectivity by inducing dynamic nascent spines that "sample" the surrounding neuropil and that subsequent NMDAR activity is sufficient to stabilize or "hold" E2-mediated effects. This work describes a form of two-step wiring plasticity relevant for cortical memory and identifies targets that may facilitate recovery from brain injuries.

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