scholarly journals Flexible Use of Spatial Frames of Reference for Object–Location Memory in Older Adults

2021 ◽  
Vol 11 (11) ◽  
pp. 1542
Author(s):  
Natalia Ladyka-Wojcik ◽  
Rosanna K. Olsen ◽  
Jennifer D. Ryan ◽  
Morgan D. Barense

In memory, representations of spatial features are stored in different reference frames; features relative to our position are stored egocentrically and features relative to each other are stored allocentrically. Accessing these representations engages many cognitive and neural resources, and so is susceptible to age-related breakdown. Yet, recent findings on the heterogeneity of cognitive function and spatial ability in healthy older adults suggest that aging may not uniformly impact the flexible use of spatial representations. These factors have yet to be explored in a precisely controlled task that explicitly manipulates spatial frames of reference across learning and retrieval. We used a lab-based virtual reality task to investigate the relationship between object–location memory across frames of reference, cognitive status, and self-reported spatial ability. Memory error was measured using Euclidean distance from studied object locations to participants’ responses at testing. Older adults recalled object locations less accurately when they switched between frames of reference from learning to testing, compared with when they remained in the same frame of reference. They also showed an allocentric learning advantage, producing less error when switching from an allocentric to an egocentric frame of reference, compared with the reverse direction of switching. Higher MoCA scores and better self-assessed spatial ability predicted less memory error, especially when learning occurred egocentrically. We suggest that egocentric learning deficits are driven by difficulty in binding multiple viewpoints into a coherent representation. Finally, we highlight the heterogeneity of spatial memory performance in healthy older adults as a potential cognitive marker for neurodegeneration, beyond normal aging.

2018 ◽  
Vol 11 ◽  
Author(s):  
Nadine Külzow ◽  
Angelica Vieira Cavalcanti de Sousa ◽  
Magda Cesarz ◽  
Julie-Marie Hanke ◽  
Alida Günsberg ◽  
...  

2016 ◽  
Vol 31 (7) ◽  
pp. 798-814 ◽  
Author(s):  
Kathrin Zimmermann ◽  
Claudia C. von Bastian ◽  
Christina Röcke ◽  
Mike Martin ◽  
Anne Eschen

2021 ◽  
Vol 15 ◽  
Author(s):  
Ania Mikos ◽  
Brigitta Malagurski ◽  
Franziskus Liem ◽  
Susan Mérillat ◽  
Lutz Jäncke

Substantial evidence indicates that cognitive training can be efficacious for older adults, but findings regarding training-related brain plasticity have been mixed and vary depending on the imaging modality. Recent years have seen a growth in recognition of the importance of large-scale brain networks on cognition. In particular, task-induced deactivation within the default mode network (DMN) is thought to facilitate externally directed cognition, while aging-related decrements in this neural process are related to reduced cognitive performance. It is not yet clear whether task-induced deactivation within the DMN can be enhanced by cognitive training in the elderly. We previously reported durable cognitive improvements in a sample of healthy older adults (age range = 60–75) who completed 6 weeks of process-based object-location memory training (N = 36) compared to an active control training group (N = 31). The primary aim of the current study is to evaluate whether these cognitive gains are accompanied by training-related changes in task-related DMN deactivation. Given the evidence for heterogeneity of the DMN, we examine task-related activation/deactivation within two separate DMN branches, a ventral branch related to episodic memory and a dorsal branch more closely resembling the canonical DMN. Participants underwent functional magnetic resonance imaging (fMRI) while performing an untrained object-location memory task at four time points before, during, and after the training period. Task-induced (de)activation values were extracted for the ventral and dorsal DMN branches at each time point. Relative to visual fixation baseline: (i) the dorsal DMN was deactivated during the scanner task, while the ventral DMN was activated; (ii) the object-location memory training group exhibited an increase in dorsal DMN deactivation relative to the active control group over the course of training and follow-up; (iii) changes in dorsal DMN deactivation did not correlate with task improvement. These results indicate a training-related enhancement of task-induced deactivation of the dorsal DMN, although the specificity of this improvement to the cognitive task performed in the scanner is not clear.


2014 ◽  
Vol 237 ◽  
pp. 16-25 ◽  
Author(s):  
Nadine Külzow ◽  
Lucia Kerti ◽  
Veronica A. Witte ◽  
Ute Kopp ◽  
Caterina Breitenstein ◽  
...  

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