Frontostriatal microstructure modulates efficient recruitment of cognitive control

被引:303
作者
Liston, C [1 ]
Watts, R [1 ]
Tottenham, N [1 ]
Davidson, MC [1 ]
Niogi, S [1 ]
Ulug, AM [1 ]
Casey, BJ [1 ]
机构
[1] Cornell Univ, Weill Med Coll, Sackler Inst Dev Psychobiol, New York, NY 10021 USA
关键词
basal ganglia; cognitive control; development; diffusion tensor imaging; prefrontal cortex;
D O I
10.1093/cercor/bhj003
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Many studies have linked activity in a frontostriatal network with the capacity to suppress inappropriate thoughts and actions, but relatively few have examined the role of connectivity between these structures. Here, we use diffusion tensor imaging to assess frontostriatal connectivity in 21 subjects (ages 7-31 years). Fifteen subjects were tested on a go/no-go task, where they responded with a button press to a visual stimulus and inhibited a response to a second infrequent stimulus. An automated fiber tracking algorithm was used to delineate white matter fibers adjacent to ventral prefrontal cortex and the striatum, and the corticospinal tract, which was not expected to contribute to control per se. Diffusion in frontostriatal and corticospinal tracts became more restricted with age. This shift was paralleled by an increase in efficiency of task performance. Frontostriatal radial diffusivities predicted faster reaction times, independent of age and accuracy, and this correlation grew stronger for trials expected to require greater control. This was not observed in the corticospinal tract. On trials matched for speed of task performance, adults were significantly more accurate, and accuracies were correlated with frontostriatal, but not corticospinal, diffusivities. These findings suggest that frontostriatal connectivity may contribute to developmental and individual differences in the efficient recruitment of cognitive control.
引用
收藏
页码:553 / 560
页数:8
相关论文
共 61 条
[1]   Detection of acute pathologic changes following experimental traumatic brain injury using diffusion-weighted magnetic resonance imaging [J].
Alsop, DC ;
Murai, H ;
Detre, JA ;
McIntosh, TK ;
Smith, DH .
JOURNAL OF NEUROTRAUMA, 1996, 13 (09) :515-521
[2]  
[Anonymous], POSTNATAL DEV HUMAN
[3]   MRI study of white matter diffusion anisotropy in schizophrenia [J].
Ardekani, BA ;
Nierenberg, J ;
Hoptman, MJ ;
Javitt, DC ;
Lim, KO .
NEUROREPORT, 2003, 14 (16) :2025-2029
[4]  
Basser PJ, 2000, MAGNET RESON MED, V44, P625, DOI 10.1002/1522-2594(200010)44:4<625::AID-MRM17>3.0.CO
[5]  
2-O
[6]   Prefrontal cortical function and anxiety: controlling attention to threat-related stimuli [J].
Bishop, S ;
Duncan, J ;
Lawrence, AD .
NATURE NEUROSCIENCE, 2004, 7 (02) :184-188
[7]   Conflict monitoring and cognitive control [J].
Botvinick, MM ;
Braver, TS ;
Barch, DM ;
Carter, CS ;
Cohen, JD .
PSYCHOLOGICAL REVIEW, 2001, 108 (03) :624-652
[8]   To go or not to go: Inhibitory control in 'hard to manage' children [J].
Brophy, M ;
Taylor, E ;
Hughes, C .
INFANT AND CHILD DEVELOPMENT, 2002, 11 (02) :125-140
[9]   Immature frontal lobe contributions to cognitive control in children: Evidence from fMRI [J].
Bunge, SA ;
Dudukovic, NM ;
Thomason, ME ;
Vaidya, CJ ;
Gabrieli, JDE .
NEURON, 2002, 33 (02) :301-311
[10]   A developmental functional MRI study of prefrontal activation during performance of a Go-No-Go task [J].
Casey, BJ ;
Trainor, RJ ;
Orendi, JL ;
Schubert, AB ;
Nystrom, LE ;
Giedd, JN ;
Castellanos, FX ;
Haxby, JV ;
Noll, DC ;
Cohen, JD ;
Forman, SD ;
Dahl, RE ;
Rapoport, JL .
JOURNAL OF COGNITIVE NEUROSCIENCE, 1997, 9 (06) :835-847