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David A. Prince

Affiliations: 
Stanford University, Palo Alto, CA 
Area:
Epilepsy
Website:
http://med.stanford.edu/profiles/David_Prince/
Google:
"David Prince"
Mean distance: 11.62 (cluster 6)
 
Cross-listing: Neuropathology Tree

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Publications

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Gu F, Parada I, Yang T, et al. (2020) Partial Activation of TrkB Receptors Corrects Interneuronal Calcium Channel Dysfunction and Reduces Epileptogenic Activity in Neocortex following Injury. Cerebral Cortex (New York, N.Y. : 1991)
Perez-Ramirez MB, Gu F, Prince DA. (2020) Prolonged prophylactic effects of gabapentin on status epilepticus-induced neocortical injury. Neurobiology of Disease. 104949
Gu F, Parada I, Yang T, et al. (2018) Partial TrkB receptor activation suppresses cortical epileptogenesis through actions on parvalbumin interneurons. Neurobiology of Disease
Gu F, Parada I, Shen F, et al. (2017) Structural alterations in fast-spiking GABAergic interneurons in a model of posttraumatic neocortical epileptogenesis. Neurobiology of Disease
Kim SY, Senatorov VV, Morrissey CS, et al. (2017) TGFβ signaling is associated with changes in inflammatory gene expression and perineuronal net degradation around inhibitory neurons following various neurological insults. Scientific Reports. 7: 7711
Faria LC, Gu F, Parada I, et al. (2017) Epileptiform activity and behavioral arrests in mice overexpressing the calcium channel subunit α2δ-1. Neurobiology of Disease
Prince DA, Gu F, Parada I. (2016) Antiepileptogenic repair of excitatory and inhibitory synaptic connectivity after neocortical trauma. Progress in Brain Research. 226: 209-27
Takahashi DK, Gu F, Parada I, et al. (2016) Aberrant excitatory rewiring of layer V pyramidal neurons early after neocortical trauma. Neurobiology of Disease
Prince DA. (2014) How do we make models that are useful in understanding partial epilepsies? Advances in Experimental Medicine and Biology. 813: 233-41
Jin X, Jiang K, Prince DA. (2014) Excitatory and inhibitory synaptic connectivity to layer V fast-spiking interneurons in the freeze lesion model of cortical microgyria. Journal of Neurophysiology. 112: 1703-13
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