Impact of acquisition and analysis strategies on cortical depth-dependent fMRI

被引:51
|
作者
Kashyap, Sriranga [1 ]
Ivanov, Dimo [1 ]
Havlicek, Martin [1 ]
Poser, Benedikt A. [1 ]
Uludag, Kamil [1 ]
机构
[1] Maastricht Univ, Fac Psychol & Neurosci, Dept Cognit Neurosci, Maastricht, Netherlands
关键词
Ultra-high field; High resolution; Distortion-matched T-1 anatomy; Cortical depth-dependent fMRI; IMAGE DISTORTION CORRECTION; INDUCED SIGNAL CHANGES; CEREBRAL BLOOD-VOLUME; ECHO-PLANAR IMAGES; HIGH-RESOLUTION; HUMAN BRAIN; SPIN-ECHO; FUNCTIONAL MRI; POSTSTIMULUS UNDERSHOOT; LAMINAR SPECIFICITY;
D O I
10.1016/j.neuroimage.2017.05.022
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Functional MRI at ultra-high magnetic fields (>= 7 T) provides the opportunity to probe columnar and laminar processing in the human brain in vivo at sub-millimeter spatial scales. However, fMRI data only indirectly reflects the neuronal laminar profile due to a bias to ascending and pial veins inherent in gradient-and spinecho BOLD fMRI. In addition, accurate delineation of the cortical depths is difficult, due to the relatively large voxel sizes and lack of sufficient tissue contrast in the functional images. In conventional depth-dependent fMRI studies, anatomical and functional data are acquired with different image read-out modules, the fMRI data are distortion-corrected and vascular biases are accounted for by subtracting the depth-dependent activation profiles of different stimulus conditions. In this study, using high-resolution gradient-echo fMRI data (0.7 mm isotropic) of the human visual cortex, we propose instead, that depth-dependent functional information is best preserved if data analysis is performed in the original functional data space. To achieve this, we acquired anatomical images with high tissue contrast and similar distortion to the functional images using multiple inversion-recovery time EPI, thereby eliminating the need to un-distort the fMRI data. We demonstrate higher spatial accuracy for the cortical layer definitions of this approach as compared to the more conventional approach using MP2RAGE anatomy. In addition, we provide theoretical arguments and empirical evidence that vascular biases can be better accounted for using division instead of subtraction of the depth-dependent profiles. Finally, we show that the hemodynamic response of grey matter has relatively stronger post-stimulus undershoot than the pial vein voxels. In summary, we show that the choice of fMRI data acquisition and processing can impact observable differences in the cortical depth profiles and present evidence that cortical depth-dependent modulation of the BOLD signal can be resolved using gradient-echo imaging.
引用
收藏
页码:332 / 344
页数:13
相关论文
共 50 条
  • [31] Depth-dependent temperature effects on thermoluminescence in multilayers
    Kim, Sangho S.
    Armstrong, Philip R.
    Mah, Merlin L.
    Talghader, Joseph J.
    JOURNAL OF APPLIED PHYSICS, 2013, 114 (05)
  • [32] Calibration of Distribution Analysis of the Depth of Membrane Penetration Using Simulations and Depth-Dependent Fluorescence Quenching
    Alexander Kyrychenko
    Mykola V. Rodnin
    Alexey S. Ladokhin
    The Journal of Membrane Biology, 2015, 248 : 583 - 594
  • [33] DEPTH-DEPENDENT SEISMIC ATTENUATION IN WESTERN GREECE
    TSELENTIS, G
    TECTONOPHYSICS, 1993, 225 (04) : 523 - 528
  • [34] Calibration of Distribution Analysis of the Depth of Membrane Penetration Using Simulations and Depth-Dependent Fluorescence Quenching
    Kyrychenko, Alexander
    Rodnin, Mykola V.
    Ladokhin, Alexey S.
    JOURNAL OF MEMBRANE BIOLOGY, 2015, 248 (03): : 583 - 594
  • [35] Depth-dependent warming of the Gulf of Eilat (Aqaba)
    Sengupta, Sounav
    Gildor, Hezi
    Ashkenazy, Yosef
    CLIMATIC CHANGE, 2024, 177 (07)
  • [36] Filtered Backprojection Reconstruction with Depth-Dependent Filtering
    Dennerlein F.
    Kunze H.
    Noo F.
    Tsinghua Science and Technology, 2010, 15 (01) : 17 - 24
  • [37] Depth-dependent angular distribution of sputtered atoms
    Shulga, VI
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1999, 155 (04): : 382 - 394
  • [38] Depth-Dependent High Distortion Lens Calibration
    Ricolfe-Viala, Carlos
    Esparza, Alicia
    SENSORS, 2020, 20 (13) : 1 - 12
  • [39] Depth-dependent contrast gain-control
    Aslin, RN
    Battaglia, PW
    Jacobs, RA
    VISION RESEARCH, 2004, 44 (07) : 685 - 693
  • [40] Depth-dependent angular distribution of sputtered atoms
    Shulga, V.I.
    Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms, 1999, 155 (04): : 382 - 394