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Minga, Jamila; Fromm, Davida; Jacks, Adam; Stockbridge, Melissa D.; Nelthropp, Jennifer; MacWhinney, Brian – Journal of Speech, Language, and Hearing Research, 2022
Background: Right hemisphere brain damage (RHD) can cause challenges with information gathering. Cognitive processes aid in implicit and explicit information gathering, yet the relationship between these processes and question-asking, the most explicit avenue of information gathering, has not been explored. The purpose of this exploratory…
Descriptors: Brain Hemisphere Functions, Neurological Impairments, Information Seeking, Cognitive Processes
Alexandrescu, Anamaria; Carew, Thomas J. – Learning & Memory, 2020
The spatial and temporal coordination of growth factor signaling is critical for both presynaptic and postsynaptic plasticity underlying long-term memory formation. We investigated the spatiotemporal dynamics of "Aplysia" cysteine-rich neurotrophic factor (ApCRNF) signaling during the induction of activity-dependent long-term…
Descriptors: Brain Hemisphere Functions, Memory, Spatial Ability, Sensory Integration
Engin, Elif; Sigal, Maksim; Benke, Dietmar; Zeller, Anja; Rudolph, Uwe – Learning & Memory, 2020
Reduction in the expression or function of [alpha]5-subunit-containing GABA[subscript A] receptors ([alpha]5GABA[subscript A]Rs) leads to improvement in several hippocampus-dependent memory domains. However, studies thus far mostly lack anatomical specificity in terms of neuronal circuits and populations. We demonstrate that mice with a selective…
Descriptors: Brain Hemisphere Functions, Memory, Animals, Spatial Ability
Jordan, Jake T.; Tong, Yi; Pytte, Carolyn L. – Learning & Memory, 2022
Plasticity is a neural phenomenon in which experience induces long-lasting changes to neuronal circuits and is at the center of most neurobiological theories of learning and memory. However, too much plasticity is maladaptive and must be balanced with substrate stability. Area CA3 of the hippocampus provides such a balance via hemispheric…
Descriptors: Spatial Ability, Brain Hemisphere Functions, Memory, Learning Processes
Wong, Edwin W.; Glasgow, Stephen D.; Trigiani, Lianne J.; Chitsaz, Daryan; Rymar, Vladimir; Sadikot, Abbas; Ruthazer, Edward S.; Hamel, Edith; Kennedy, Timothy E. – Learning & Memory, 2019
Netrin-1 was initially characterized as an axon guidance molecule that is essential for normal embryonic neural development; however, many types of neurons continue to express netrin-1 in the postnatal and adult mammalian brain. Netrin-1 and the netrin receptor DCC are both enriched at synapses. In the adult hippocampus, activity-dependent…
Descriptors: Spatial Ability, Memory, Adults, Brain
Dolleman-van der Weel, Margriet J.; Griffin, Amy L.; Ito, Hiroshi T.; Shapiro, Matthew L.; Witter, Menno P.; Vertes, Robert P.; Allen, Timothy A. – Learning & Memory, 2019
The nucleus reuniens of the thalamus (RE) is a key component of an extensive network of hippocampal and cortical structures and is a fundamental substrate for cognition. A common misconception is that RE is a simple relay structure. Instead, a better conceptualization is that RE is a critical component of a canonical higher-order…
Descriptors: Brain Hemisphere Functions, Neurological Impairments, Anatomy, Physiology
Mei, Hao; Logothetis, Nikos K.; Eschenko, Oxana – Learning & Memory, 2018
Spatial navigation depends on the hippocampal function, but also requires bidirectional interactions between the hippocampus (HPC) and the prefrontal cortex (PFC). The cross-regional communication is typically regulated by critical nodes of a distributed brain network. The thalamic nucleus reuniens (RE) is reciprocally connected to both HPC and…
Descriptors: Spatial Ability, Brain Hemisphere Functions, Animals, Memory
Baram, Tallie Z.; Donato, Flavio; Holmes, Gregory L. – Learning & Memory, 2019
Spatial memory, the aspect of memory involving encoding and retrieval of information regarding one's environment and spatial orientation, is a complex biological function incorporating multiple neuronal networks. Hippocampus-dependent spatial memory is not innate and emerges during development in both humans and rodents. In children,…
Descriptors: Memory, Spatial Ability, Cognitive Processes, Neurological Organization
Snow, Wanda M.; Cadonic, Chris; Cortes-Perez, Claudia; Chowdhury, Subir K. Roy; Djordjevic, Jelena; Thomson, Ella; Bernstein, Michael J.; Suh, Miyoung; Fernyhough, Paul; Albensi, Benedict C. – Learning & Memory, 2018
The brain has a high demand for energy, of which creatine (Cr) is an important regulator. Studies document neurocognitive benefits of oral Cr in mammals, yet little is known regarding their physiological basis. This study investigated the effects of Cr supplementation (3%, w/w) on hippocampal function in male C57BL/6 mice, including spatial…
Descriptors: Energy, Brain Hemisphere Functions, Animals, Spatial Ability
Nauer, Rachel K.; Schon, Karin; Stern, Chantal E. – Learning & Memory, 2020
With a rising aging population, it is important to develop behavioral tasks that assess and track cognitive decline, and to identify protective factors that promote healthy brain aging. Mnemonic discrimination tasks that rely on pattern separation mechanisms are a promising metric to detect subtle age-related memory impairments. Behavioral…
Descriptors: Mnemonics, Physical Fitness, Cognitive Ability, Aging (Individuals)
Zerbes, Gundula; Schwabe, Lars – Learning & Memory, 2019
Successful episodic memory requires binding of event details across spatial and temporal gaps. The neural processes underlying mnemonic binding, however, are not fully understood. Moreover, although acute stress is known to modulate memory, if and how stress changes mnemonic integration across time and space is unknown. To elucidate these issues,…
Descriptors: Spatial Ability, Stress Variables, Cognitive Processes, Memory
McHail, Daniel G.; Valibeigi, Nazanin; Dumas, Theodore C. – Learning & Memory, 2018
The neural bases of cognition may be greatly informed by relating temporally defined developmental changes in behavior with concurrent alterations in neural function. A robust improvement in performance in spatial learning and memory tasks occurs at 3 wk of age in rodents. We reported that the developmental increase of spontaneous alternation in a…
Descriptors: Spatial Ability, Memory, Animals, Brain Hemisphere Functions
Rungratsameetaweemana, Nuttida; Squire, Larry R. – Learning & Memory, 2018
The hippocampus has long been recognized as important for the formation of long-term memory. Recent work has suggested that the hippocampus might also be important for certain kinds of spatial operations, as in constructing scenes, shifting perspective, or perceiving the geometry of scenes and their boundaries. We explored this proposal using a…
Descriptors: Brain Hemisphere Functions, Neurological Impairments, Visual Stimuli, Comparative Analysis
Forloines, Martha R.; Reid, Meredith A.; Thompkins, Andie M.; Robinson, Jennifer L.; Katz, Jeffrey S. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2019
There are mixed results regarding the differentiation of neurofunctional correlates of spatial abilities. Previous studies employed complex environments or alternate memory tasks which could potentially add to inconsistencies across studies of navigation. To help elucidate the existing mixed findings, we conducted a study in a simplistic…
Descriptors: Computer Simulation, Brain Hemisphere Functions, Task Analysis, Cues
Aumont, Étienne; Blanchette, Caroll-Ann; Bohbot, Veronique D.; West, Greg L. – Learning & Memory, 2019
When people navigate, they use strategies dependent on one of two memory systems. The hippocampus-based spatial strategy consists of using multiple landmarks to create a cognitive map of the environment. In contrast, the caudate nucleus-based response strategy is based on the memorization of a series of turns. Importantly, response learners…
Descriptors: Memory, Brain Hemisphere Functions, Memorization, Navigation