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Maddox, Stephanie A.; Watts, Casey S.; Schafe, Glenn E. – Learning & Memory, 2013
Modifications in chromatin structure have been widely implicated in memory and cognition, most notably using hippocampal-dependent memory paradigms including object recognition, spatial memory, and contextual fear memory. Relatively little is known, however, about the role of chromatin-modifying enzymes in amygdala-dependent memory formation.…
Descriptors: Fear, Memory, Brain, Classical Conditioning
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Felsenberg, Johannes; Dombrowski, Vincent; Eisenhardt, Dorothea – Learning & Memory, 2012
Protein degradation is known to affect memory formation after extinction learning. We demonstrate here that an inhibitor of protein degradation, MG132, interferes with memory formation after extinction learning in a classical appetitive conditioning paradigm. In addition, we find an enhancement of memory formation when the same inhibitor is…
Descriptors: Memory, Learning Processes, Role, Entomology
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Ota, Kristie T.; Pierre, Vicki J.; Ploski, Jonathan E.; Queen, Kaila; Schafe, Glenn E. – Learning & Memory, 2008
Recent studies have shown that nitric oxide (NO) signaling plays a crucial role in memory consolidation of Pavlovian fear conditioning and in synaptic plasticity in the lateral amygdala (LA). In the present experiments, we examined the role of the cGMP-dependent protein kinase (PKG), a downstream effector of NO, in fear memory consolidation and…
Descriptors: Classical Conditioning, Memory, Fear, Brain Hemisphere Functions
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Fister, Mathew; Bickford, Paula C.; Cartford, M. Claire; Samec, Amy – Learning & Memory, 2004
The neurotransmitter norepinephrine (NE) has been shown to modulate cerebellar-dependent learning and memory. Lesions of the nucleus locus coeruleus or systemic blockade of noradrenergic receptors has been shown to delay the acquisition of several cerebellar-dependent learning tasks. To date, no studies have shown a direct involvement of…
Descriptors: Eye Movements, Classical Conditioning, Learning Processes, Biochemistry
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Kandel, Eric R.; Schwartz, James H. – Science, 1982
Describes how a behavioral system in Aplysia (marine snail) can be used to examine mechanisms of several forms of learning at different levels of analysis: behavioral, cell-physiological, ultrastructural, and molecular. Focusing on short-term sensitization, suggests how molecular mechanisms can be extended to explain long-term memory and classical…
Descriptors: Animal Behavior, Associative Learning, Biochemistry, Biology