Rapid modulation of spine morphology by the 5-HT 2A serotonin receptor through kalirin-7 signaling
Kelly A. Jones, Deepak P. Srivastava, John Allen, Ryan T. Strachan, Bryan L. Roth, Peter Penzes
Proceedings of the National Academy of Sciences November 4, 2009 DOI: 10.1073/pnas.0905884106 via OpenAlex
Summary
AI-generated from the abstractThe 5-HT(2A) serotonin receptor, abundant in cortical pyramidal neurons and targeted by hallucinogens and psychiatric medications, is present in a subset of dendritic spines and colocalizes with PSD-95 and MUPP1. Activation by the agonist DOI transiently increases spine size and phosphorylates PAK, a downstream target of kalirin-7. Peptide interference preventing kalirin-7 localization to the postsynaptic density disrupts DOI-induced PAK phosphorylation and spine morphogenesis. These findings suggest serotonin signaling may modulate dendritic spine morphology through kalirin-7 at cortical synapses.
Study at a glance
| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Rat cortical pyramidal neurons |
| Intervention | peptide interference |
| Topics | Serotonin |
| Keywords | Dendritic spine Cell biology Postsynaptic potential 5-HT Receptor Postsynaptic density |
| Citations | 215 |
| Key finding | Activation of the 5-HT(2A) receptor by DOI induces a transient increase in dendritic spine size and PAK phosphorylation, dependent on kalirin-7 localization to the postsynaptic density. |
Abstract
The 5-HT(2A) serotonin receptor is the most abundant serotonin receptor subtype in the cortex and is predominantly expressed in pyramidal neurons. The 5-HT(2A) receptor is a target of several hallucinogens, antipsychotics, anxiolytics, and antidepressants, and it has been associated with several psychiatric disorders, conditions that are also associated with aberrations in dendritic spine morphogenesis. However, the role of 5-HT(2A) receptors in regulating dendritic spine morphogenesis in cortical neurons is unknown. Here we show that the 5-HT(2A) receptor is present in a subset of spines, in addition to dendritic shafts. It colocalizes with PSD-95 and with multiple PDZ protein-1 (MUPP1) in a subset of dendritic spines of rat cortical pyramidal neurons. MUPP1 is enriched in postsynaptic density (PSD) fractions, is targeted to spines in pyramidal neurons, and enhances the localization of 5-HT(2A) receptors to the cell periphery. 5-HT(2A) receptor activation by the 5-HT(2) receptor agonist DOI induced a transient increase in dendritic spine size, as well as phosphorylation of p21-activated kinase (PAK) in cultured cortical neurons. PAK is a downstream target of the neuronal Rac guanine nucleotide exchange factor (RacGEF) kalirin-7 that is important for spine remodeling. Kalirin-7 regulates dendritic spine morphogenesis in neurons but its role in neuromodulator signaling has not been investigated. We show that peptide interference that prevents the localization of kalirin-7 to the postsynaptic density disrupts DOI-induced PAK phosphorylation and spine morphogenesis. These results suggest a potential role for serotonin signaling in modulating spine morphology and kalirin-7's function at cortical synapses.