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Frontiers in Cellular Neuroscience|November 30, 2020
DAPK1 Promotes Extrasynaptic GluN2B Phosphorylation and Striatal Spine Instability in the YAC128 Mouse Model of Huntington DiseaseMandi E Schmidt, Nicholas S Caron, Amirah E Aly, et al.
Frontiers in Aging Neuroscience|April 9, 2013
Refining the diagnosis of Huntington disease: the PREDICT-HD studyKevin M Biglan, Ying Zhang, Jeffrey D Long, et al.
Neurobiology of Disease|November 9, 2011
Synaptic dysfunction in progranulin-deficient miceTerri L Petkau, Scott J Neal, Austen Milnerwood, et al.
Neurobiology of Disease|June 7, 2012
Mitigation of augmented extrasynaptic NMDAR signaling and apoptosis in cortico-striatal co-cultures from Huntington's disease miceAusten J Milnerwood, Alexandra M Kaufman, Marja D Sepers, et al.
The Journal of Cell Biology|March 4, 2017
Inhibition of the mitochondrial pyruvate carrier protects from excitotoxic neuronal deathAjit S Divakaruni, Martina Wallace, Caodu Buren, et al.
The Journal of Neuroscience : the Official Journal of the Society for Neuroscience|November 12, 2010
Cleavage at the 586 amino acid caspase-6 site in mutant huntingtin influences caspase-6 activation in vivoRona K Graham, Yu Deng, Jeffery Carroll, et al.
Neuron|February 16, 2010
Early increase in extrasynaptic NMDA receptor signaling and expression contributes to phenotype onset in Huntington's disease miceAusten J Milnerwood, Clare M Gladding, Mahmoud A Pouladi, et al.
Scientific Reports|January 12, 2021
The Aβ(1-38) peptide is a negative regulator of the Aβ(1-42) peptide implicated in Alzheimer disease progressionMaa O Quartey, Jennifer N K Nyarko, Jason M Maley, et al.
Nature Neuroscience|May 16, 2006
Palmitoylation of huntingtin by HIP14 is essential for its trafficking and functionAnat Yanai, Kun Huang, Rujun Kang, et al.
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