研究领域
Synaptic plasticity and its role in learning and memory
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Chamberlain, SEL, Sadowski, JHL, Ruivo, LMT, Atherton, LA & Mellor, JR, 2013, ‘Long-Term Depression of Synaptic Kainate Receptors Reduces Excitability by Relieving Inhibition of the Slow Afterhyperpolarization’. Journal of Neuroscience, vol 33., pp. 9536-9545
Chamberlain, SEL, Gonzalez, MI, Wilkinson, KA, Konopacki, FA, Kantamneni, S, Henley, JM & Mellor, JR, 2012, ‘SUMOylation and phosphorylation of GluK2 regulate kainate receptor trafficking and synaptic plasticity’. Nature Neuroscience, vol 15., pp. 845-852
Buchanan, K, Petrovic, M, Chamberlain, S, Marrion, N & Mellor, J, 2010, ‘Facilitation of Long-Term Potentiation by Muscarinic M1 Receptors is mediated by inhibition of SK channels’. Neuron, vol 68., pp. 948 - 963
Isaac, J, Buchanan, K, Muller, R & Mellor, J, 2009, ‘Hippocampal place cell firing patterns can induce long-term synaptic plasticity in vitro’. The Journal of Neuroscience, vol 29., pp. 6840 - 6850
Martin, S, Nishimune, A, Mellor, J & Henley, J, 2007, ‘SUMOylation regulates kainate-receptor-mediated synaptic transmission’. Nature, vol 447 (7142)., pp. 321 - 325
Griffith, TJO, Tsaneva-Atanasova, K & Mellor, J, 2016, ‘Control of Ca2+ influx and calmodulin activation by SK-channels in dendritic spines’. PLoS Computational Biology, vol 12.
Prince, L, Bacon, TJ, Tigaret, C & Mellor, J, 2016, ‘Neuromodulation of the feedforward dentate gyrus-CA3 microcircuit’. Frontiers in synaptic neuroscience.
Atherton, L, Burnell, E & Mellor, J, 2016, ‘Assessment of methods for the intracellular blockade of 2 GABAA receptors’. PLoS ONE, vol 11.
Sadowski, JHL, Jones, M & Mellor, JR, 2016, ‘Sharp-wave ripples orchestrate the induction of synaptic plasticity during reactivation of place cell firing patterns in the hippocampus’. Cell Reports, vol 14., pp. 1916-1929
Dennis, S, Pasqui, F, Colvin, EM, Sanger, H, Mogg, AJ, Felder, CC, Broad, LM, Fitzjohn, S, Isaac, JTR & Mellor, J, 2015, ‘Activation of Muscarinic M1 Acetylcholine Receptors Induces Long-Term Potentiation in the Hippocampus’. Cerebral Cortex, vol 26., pp. 414-426