Caldendrin Directly Couples Postsynaptic Calcium Signals to Actin Remodeling in Dendritic Spines
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2018
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Abstract
Compartmentalization of calcium-dependent plasticity allows for rapid actin remodeling in dendritic spines. However, molecular mechanisms for the spatio-temporal regulation of filamentous actin (F-actin) dynamics by spinous Ca2+-transients are still poorly defined. We show that the postsynaptic Ca2+ sensor caldendrin orchestrates nano-domain actin dynamics that are essential for actin remodeling in the early phase of long-term potentiation (LTP). Steep elevation in spinous [Ca2+]i disrupts an intramolecular interaction of caldendrin and allows cortactin binding. The fast on and slow off rate of this interaction keeps cortactin in an active conformation, and protects F-actin at the spine base against cofilin-induced severing. Caldendrin gene knockout results in higher synaptic actin turnover, altered nanoscale organization of spinous F-actin, defects in structural spine plasticity, LTP, and hippocampus-dependent learning. Collectively, the data indicate that caldendrin-cortactin directly couple [Ca2+]i to preserve a minimal F-actin pool that is required for actin remodeling in the early phase of LTP.
Keywords
dendritic spines, calcium, F-actin, caldendrin, cortactin, cofilin, synaptic plasticity, STED, Taverne
Citation
Mikhaylova, M, Bär, J, van Bommel, B, Schätzle, P, YuanXiang, P, Raman, R, Hradsky, J, Konietzny, A, Loktionov, E Y, Reddy, P P, Lopez-Rojas, J, Spilker, C, Kobler, O, Raza, S A, Stork, O, Hoogenraad, C C & Kreutz, M R 2018, 'Caldendrin Directly Couples Postsynaptic Calcium Signals to Actin Remodeling in Dendritic Spines', Neuron, vol. 97, no. 5, pp. 1110-1125.e14. https://doi.org/10.1016/j.neuron.2018.01.046