Multimodal connectivity mapping of the human left anterior and posterior lateral prefrontal cortex

被引:18
|
作者
Reid, Andrew T. [1 ]
Bzdok, Danilo [1 ,2 ,7 ]
Langner, Robert [1 ,2 ]
Fox, Peter T. [4 ,8 ]
Laird, Angela R. [5 ]
Amunts, Katrin [1 ,6 ]
Eickhoff, Simon B. [1 ,2 ]
Eickhoff, Claudia R. [1 ,3 ]
机构
[1] Res Ctr Julich, Inst Neurosci & Med INM 1, Julich, Germany
[2] Univ Dusseldorf, Inst Clin Neurosci & Med Psychol, Dusseldorf, Germany
[3] Univ Hosp Aachen, Dept Psychiat Psychotherapy & Psychosomat, Aachen, Germany
[4] Univ Texas Hlth Sci Ctr San Antonio, San Antonio, TX 78229 USA
[5] Florida Int Univ, Miami, FL 33199 USA
[6] Univ Dusseldorf, C&O Vogt Inst Brain Res, Dusseldorf, Germany
[7] CEA Saclay, Parietal Team, INRIA, Neurospin,Bat 145, F-91191 Gif Sur Yvette, France
[8] South Texas Vet Hlth Care Syst, San Antonio, TX USA
来源
BRAIN STRUCTURE & FUNCTION | 2016年 / 221卷 / 05期
关键词
Meta-analytic connectivity modeling; Functional connectivity; Structural covariance; Working memory; Anterior lateral prefrontal cortex; Posterior lateral prefrontal cortex; CENTRAL EXECUTIVE FUNCTIONS; WORKING-MEMORY; FUNCTIONAL CONNECTIVITY; DEFAULT-MODE; HUMAN BRAIN; COGNITIVE CONTROL; GLOBAL SIGNAL; CYTOARCHITECTONIC AREAS; NOISE CORRECTION; FRONTAL LOBES;
D O I
10.1007/s00429-015-1060-5
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
Working memory is essential for many of our distinctly human abilities, including reasoning, problem solving, and planning. Research spanning many decades has helped to refine our understanding of this high-level function as comprising several hierarchically organized components, some which maintain information in the conscious mind, and others which manipulate and reorganize this information in useful ways. In the neocortex, these processes are likely implemented by a distributed frontoparietal network, with more posterior regions serving to maintain volatile information, and more anterior regions subserving the manipulation of this information. Recent meta-analytic findings have identified the anterior lateral prefrontal cortex, in particular, as being generally engaged by working memory tasks, while the posterior lateral prefrontal cortex was more strongly associated with the cognitive load required by these tasks. These findings suggest specific roles for these regions in the cognitive control processes underlying working memory. To further characterize these regions, we applied three distinct seed-based methods for determining cortical connectivity. Specifically, we employed meta-analytic connectivity mapping across task-based fMRI experiments, resting-state BOLD correlations, and VBM-based structural covariance. We found a frontoparietal pattern of convergence which strongly resembled the working memory networks identified in previous research. A contrast between anterior and posterior parts of the lateral prefrontal cortex revealed distinct connectivity patterns consistent with the idea of a hierarchical organization of frontoparietal networks. Moreover, we found a distributed network that was anticorrelated with the anterior seed region, which included most of the default mode network and a subcomponent related to social and emotional processing. These findings fit well with the internal attention model of working memory, in which representation of information is processed according to an anteroposterior gradient of abstract-to-concrete representations.
引用
收藏
页码:2589 / 2605
页数:17
相关论文
共 50 条
  • [11] Asymmetric effective connectivity between primate anterior cingulate and lateral prefrontal cortex revealed by electrical microstimulation
    Nacher, Veronica
    Hassani, Seyed Alireza
    Womelsdorf, Thilo
    BRAIN STRUCTURE & FUNCTION, 2019, 224 (02): : 779 - 793
  • [12] Anterior-posterior gradient of plasticity in primate prefrontal cortex
    Mitchell R. Riley
    Xue-Lian Qi
    Xin Zhou
    Christos Constantinidis
    Nature Communications, 9
  • [13] Converging Structural and Functional Connectivity of Orbitofrontal, Dorsolateral Prefrontal, and Posterior Parietal Cortex in the Human Striatum
    Jarbo, Kevin
    Verstynen, Timothy D.
    JOURNAL OF NEUROSCIENCE, 2015, 35 (09): : 3865 - 3878
  • [14] Distinct Value Signals in Anterior and Posterior Ventromedial Prefrontal Cortex
    Smith, David V.
    Hayden, Benjamin Y.
    Truong, Trong-Kha
    Song, Allen W.
    Platt, Michael L.
    Huettel, Scott A.
    JOURNAL OF NEUROSCIENCE, 2010, 30 (07): : 2490 - 2495
  • [15] Anterior-posterior gradient of plasticity in primate prefrontal cortex
    Riley, Mitchell R.
    Qi, Xue-Lian
    Zhou, Xin
    Constantinidis, Christos
    NATURE COMMUNICATIONS, 2018, 9
  • [16] Working Memory Retrieval: Contributions of the Left Prefrontal Cortex, the Left Posterior Parietal Cortex, and the Hippocampus
    Oeztekin, Ilke
    McElree, Brian
    Staresina, Bernhard P.
    Davachi, Lila
    JOURNAL OF COGNITIVE NEUROSCIENCE, 2009, 21 (03) : 581 - 593
  • [17] The role of the anterior prefrontal cortex in human cognition
    Koechlin, E
    Basso, G
    Pietrini, P
    Panzer, S
    Grafman, J
    NATURE, 1999, 399 (6732) : 148 - 151
  • [18] The role of the anterior prefrontal cortex in human cognition
    Etienne Koechlin
    Gianpaolo Basso
    Pietro Pietrini
    Seth Panzer
    Jordan Grafman
    Nature, 1999, 399 : 148 - 151
  • [19] Dissociating the functional properties of the medial and lateral anterior prefrontal cortex
    Koechlin, E
    Corrado, G
    Pietrini, P
    Grafman, J
    BRAIN AND COGNITION, 2001, 47 (1-2) : 93 - 97
  • [20] Faces and eyes in human lateral prefrontal cortex
    Chan, Annie W. -Y.
    Downing, Paul E.
    FRONTIERS IN HUMAN NEUROSCIENCE, 2011, 5