A novel integrative method for analyzing eye and hand behaviour during reaching and grasping in an MRI environment
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  • 作者:Jane M. Lawrence (1)
    Kamyar Abhari (1)
    Steven L. Prime (1)
    Benjamin P. Meek (1)
    Loni Desanghere (1)
    Lee A. Baugh (1)
    Jonathan J. Marotta (1)
  • 关键词:Software analysis package ; Visuomotor processes ; Eye鈥揾and integration ; Functional magnetic resonance imaging ; Hand kinematics ; Eye kinematics ; Motion monitoring
  • 刊名:Behavior Research Methods
  • 出版年:2011
  • 出版时间:June 2011
  • 年:2011
  • 卷:43
  • 期:2
  • 页码:399-408
  • 全文大小:629KB
  • 参考文献:1. Abramoff, M. D., Magelhaes, P. J., & Ram, S. J. (2004). Image processing with ImageJ. / Biophotonics International, 11, 36鈥?2.
    2. Brainard, D. H. (1997). The psychophysics toolbox. / Spatial Vision, 10, 433鈥?36. CrossRef
    3. Carey, D. P., Della Sala, S., & Ietswaart, M. (2002). Neuropsychological perspectives on eye鈥揾and coordination in visually-guided reaching. / Progress in Brain Research, 140, 311鈥?27. CrossRef
    4. Culham, J. C., Cavina-Pratesi, C., & Singhal, A. (2006). The role of parietal cortex in visuomotor control: What have we learned from neuroimaging? / Neuropsychologia, 44, 2668鈥?684. CrossRef
    5. Culham, J. C., Danckert, S. L., DeSouza, J. F., Gati, J. S., Menon, R. S., & Goodale, M. A. (2003). Visually guided grasping produces fMRI activation in dorsal but not ventral stream brain areas. / Experimental Brain Research, 153, 180鈥?89. CrossRef
    6. Desanghere, L., & Marotta, J. J. (2008). Gaze strategies while grasping: What are you looking at?! [Abstract]. / Journal of Vision, 8(6), 495a.
    7. Diedrichsen, J., Hashambhoy, Y., Rane, T., & Shadmehr, R. (2005). Neural correlates of reach errors. / The Journal of Neuroscience, 25, 9919鈥?931. CrossRef
    8. Gentilucci, M., Castiello, U., Corradini, M. L., Scarpa, M., Umilt脿, C., & Rizzolatti, G. (1991). Influence of different types of grasping on the transport component of prehension movements. / Neuropsychologia, 29, 361鈥?78. CrossRef
    9. Glover, S. (2004). Separate visual representations in the planning and control of action. / The Behavioral and Brain Sciences, 27, 3鈥?4.
    10. Grefkes, C., Ritzl, A., Zilles, K., & Fink, G. R. (2004). Human medial intraparietal cortex subserves visuomotor coordinate transformation. / Neuroimage, 23, 1494鈥?506. CrossRef
    11. Jakobson, L. S., & Goodale, M. A. (1991). Factors affecting higher-order movement planning: A kinematic analysis of human prehension. / Experimental Brain Research, 86, 199鈥?08. CrossRef
    12. Jeannerod, M. (1986). The formation of finger grip during prehension: A cortically mediated visuomotor pattern. / Behavioural Brain Research, 19, 99鈥?16. CrossRef
    13. Levy, I., Schluppeck, D., Heeger, D. J., & Glimcher, P. W. (2007). Specificity of human cortical areas for reaches and saccades. / The Journal of Neuroscience, 27, 4687鈥?696. CrossRef
    14. Marotta, J. J., Mraz, R., Black, S. E., & Graham, S. J. (2007). An fMRI investigation of grasping in the elderly and in stroke. / Neuroimage, 36, S51.
    15. Ogawa, K., Inui, T., & Sugio, T. (2006). Separating brain regions involved in internally guided and visual feedback control of moving effectors: An event-related fMRI study. / Neuroimage, 32, 1760鈥?770. CrossRef
    16. Paulignan, Y., Jeannerod, M., MacKenzie, C., & Marteniuk, R. (1991). Selective perturbation of visual input during prehension movements: 2. The effects of changing object size. / Experimental Brain Researc, 87, 407鈥?20.
    17. Pelli, D. G. (1997). The VideoToolbox software for visual psychophysics: Transforming numbers into movies. / Spatial Vision, 10, 437鈥?42. CrossRef
    18. Rocca, M. A., Gatti, R., Agosta, F., Tortorella, P., Riboldi, E., Broglia, P., et al. (2007). Influence of body segment position during in-phase and antiphase hand and foot movements: A kinematic and functional MRI study. / Human Brain Mapping, 28, 218鈥?27. CrossRef
    19. Salvucci, D. D., & Goldberg, J. H. (2000). / Identifying fixations and saccades in eye-tracking protocols. In Proceedings of the 2000 symposium on eye tracking research and applications symposium (pp. 71鈥?8). New York: ACM Press.
    20. Schaechter, J. D., Stokes, C., Connell, B. D., Perdue, K., & Bonmassar, G. (2006). Finger motion sensors for fMRI motor studies. / Neuroimage, 31, 1549鈥?559. CrossRef
  • 作者单位:Jane M. Lawrence (1)
    Kamyar Abhari (1)
    Steven L. Prime (1)
    Benjamin P. Meek (1)
    Loni Desanghere (1)
    Lee A. Baugh (1)
    Jonathan J. Marotta (1)

    1. Department of Psychology, University of Manitoba, 190 Dysart Road, Winnipeg, Manitoba, R3T 2N2, Canada
文摘
The development of noninvasive neuroimaging techniques, such as fMRI, has rapidly advanced our understanding of the neural systems underlying the integration of visual and motor information. However, the fMRI experimental design is restricted by several environmental elements, such as the presence of the magnetic field and the restricted view of the participant, making it difficult to monitor and measure behaviour. The present article describes a novel, specialized software package developed in our laboratory called Biometric Integration Recording and Analysis (BIRA). BIRA integrates video with kinematic data derived from the hand and eye, acquired using MRI-compatible equipment. The present article demonstrates the acquisition and analysis of eye and hand data using BIRA in a mock (0 Tesla) scanner. A method for collecting and integrating gaze and kinematic data in fMRI studies on visuomotor behaviour has several advantages: Specifically, it will allow for more sophisticated, behaviourally driven analyses and eliminate potential confounds of gaze or kinematic data.

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