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Altered function of ventral striatum during reward-based decision making in old age (2009)
Mell, Thomas ; Wartenburger, Isabell ; Marschner, Alexander ; Villringer, Arno ; Reischies, Friedel M. ; Heekeren, Hauke R.
Normal aging is associated with a decline in different cognitive domains and local structural atrophy as well as decreases in dopamine concentration and receptor density. To date, it is largely unknown how these reductions in dopaminergic neurotransmission affect human brain regions responsible for reward-based decision making in older adults. Using a learning criterion in a probabilistic object reversal task, we found a learning stage by age interaction in the dorsolateral prefrontal cortex (dIPFC) during decision making. While young adults recruited the dlPFC in an early stage of learning reward associations, older adults recruited the dlPFC when reward associations had already been learned. Furthermore, we found a reduced change in ventral striatal BOLD signal in older as compared to younger adults in response to high probability rewards. Our data are in line with behavioral evidence that older adults show altered stimulus-reward learning and support the view of an altered fronto-striatal interaction during reward-based decision making in old age, which contributes to prolonged learning of reward associations.
Gehirn und Sprache : wie wir Sprache(n) erlernen und verarbeiten (2010)
Wartenburger, Isabell
Early setting of grammatical processing in the bilingual brain (2003)
Wartenburger, Isabell ; Heekeren, Hauke R. ; Abutalebi, Jubin ; Cappa, Stefano F. ; Villringer, Arno ; Perani, Daniela
An fMRI study of simple ethical decision-making (2003)
Heekeren, Hauke R. ; Wartenburger, Isabell ; Schmidt, Helge ; Schwintowski, Hans-Peter ; Villringer, Arno
Role of ventral striatum in reward-based decision making (2007)
Heekeren, Hauke R. ; Wartenburger, Isabell ; Marschner, Alexander ; Mell, Thomas ; Villringer, Arno ; Reischies, Friedel M.
The processing of prosody : evidence of interhemispheric specialization at the age of four (2007)
Wartenburger, Isabell ; Steinbrink, Jens ; Telkemeyer, Silke ; Friedrich, Manuela ; Friederici, Angela D. ; Obrig, Hellmuth
A neural network reflecting individual differences in cognitive processing of emotions during perceptual decision making (2006)
Mériau, Katja ; Wartenburger, Isabell ; Kazzer, Philipp ; Prehn, Kristin ; Lammers, Claas-Hinrich ; van der Meer, Elke ; Villringer, Arno ; Heekeren, Hauke R.
Reward-based decision-making and aging (2005)
Marschner, Alexander ; Mell, Thomas ; Wartenburger, Isabell ; Villringer, Arno ; Reischies, Friedel M. ; Heekeren, Hauke R.
Functional assessment of Broca's area using near infrared spectroscopy in humans (2003)
Cannestra, Andrew F. ; Wartenburger, Isabell ; Obrig, Hellmuth ; Villringer, Arno ; Toga, Arthur W.
Cerebral correlates of analogical processing and their modulation by training (2009)
Wartenburger, Isabell ; Heekeren, Hauke R. ; Preusse, Franziska ; Kramer, Jürg ; van der Meer, Elke
There is increasing interest ill understanding the neural systems that mediate analogical thinking, which is essential for learning and fluid intelligence. The aim of the present study was to shed light on the cerebral correlates of geometric analogical processing and on training-induced changes at the behavioral and brain level. In healthy participants a bilateral fronto-parietal network was engaged in processing geometric analogies and showed greater blood oxygenation dependent (BOLD) signals as resource demands increased. This network, as well as fusiform and subcortical brain regions, additionally showed training-induced decreases in the BOLD signal over time. The general finding that brain regions were modulated by the amount of resources demanded by the task, and/or by the reduction of allocated resources due to short term training, reflects increased efficiency - in terms of more focal and more specialized brain activation - to more economically process the geometric analogies. Our data indicate a rapid adaptation of the cognitive system which is efficiently modulated by short term training based on a positive correlation of resource demands and brain activation.
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