331
Views
68
CrossRef citations to date
0
Altmetric
Original Article

Voxel-based Morphometry of the Visual-related Cortex in Primary Open Angle Glaucoma

, , , , , , , , , , & show all
Pages 794-802 | Received 10 Sep 2011, Accepted 03 Apr 2012, Published online: 25 May 2012

REFERENCES

  • Gupta N, Ang LC, Noël de Tilly L et al. Human glaucoma and neural degeneration in intracranial optic nerve, lateral geniculate nucleus, and visual cortex. Br J Ophthalmol 2006;90:674–678.
  • Yücel YH, Zhang Q, Gupta N et al. Loss of neurons in magnocellular and parvocellular layers of the lateral geniculate nucleus in glaucoma. Arch Ophthalmol 2000;118:378–384.
  • Gupta N, Yücel YH. What changes can we expect in the brain of glaucoma patients? Surv Ophthalmol 2007;52 Suppl 2:S122–S126.
  • Boucard CC, Hernowo AT, Maguire RP et al. Changes in cortical grey matter density associated with long-standing retinal visual field defects. Brain 2009;132:1898–1906.
  • Duncan RO, Sample PA, Weinreb RN et al. Retinotopic organization of primary visual cortex in glaucoma: a method for comparing cortical function with damage to the optic disk. Invest Ophthalmol Vis Sci 2007;48:733–744.
  • Duncan RO, Sample PA, Weinreb RN et al. Retinotopic organization of primary visual cortex in glaucoma: Comparing fMRI measurements of cortical function with visual field loss. Prog Retin Eye Res 2007;26:38–56.
  • Gupta N, Yücel YH. Glaucoma as a neurodegenerative disease. Curr Opin Ophthalmol 2007;18:110–114.
  • Gupta N, Greenberg G, de Tilly LN et al. Atrophy of the lateral geniculate nucleus in human glaucoma detected by magnetic resonance imaging. Br J Ophthalmol 2009;93:56–60.
  • Garaci FG, Bolacchi F, Cerulli A et al. Optic nerve and optic radiation neurodegeneration in patients with glaucoma: in vivo analysis with 3-T diffusion-tensor MR imaging. Radiology 2009;252:496–501.
  • Ungerleider LG, Haxby JV. ‘What’ and ‘where’ in the human brain. Curr Opin Neurobiol 1994;4:157–165.
  • Duncan J. Coordination of what and where in visual attention. Perception 1993;22:1261–1270.
  • Kastner S, De Weerd P, Desimone R et al. Mechanisms of directed attention in the human extrastriate cortex as revealed by functional MRI. Science 1998;282:108–111.
  • Roland PE, Gulyas B. Visual imagery and visual representation. Trends Neurosci 1994;17:281–287; discussion 94–97.
  • Roland PE, Friberg L. Localization of cortical areas activated by thinking. J Neurophysiol 1985;53:1219–1243.
  • Zeki S, Watson JD, Lueck CJ et al. A direct demonstration of functional specialization in human visual cortex. J Neurosci 1991;11:641–649.
  • Grosbras MH, Paus T. Transcranial magnetic stimulation of the human frontal eye field facilitates visual awareness. Eur J Neurosci 2003;18:3121–3126.
  • Moore T, Fallah M. Microstimulation of the frontal eye field and its effects on covert spatial attention. J Neurophysiol 2004;91:152–162.
  • Moore T, Armstrong KM. Selective gating of visual signals by microstimulation of frontal cortex. Nature 2003;421:370–373.
  • Ptito M, Schneider FC, Paulson OB et al. Alterations of the visual pathways in congenital blindness. Exp Brain Res 2008;187:41–49.
  • Mendola JD, Conner IP, Roy A et al. Voxel-based analysis of MRI detects abnormal visual cortex in children and adults with amblyopia. Hum Brain Mapp 2005;25:222–236.
  • Xiao JX, Xie S, Ye JT et al. Detection of abnormal visual cortex in children with amblyopia by voxel-based morphometry. Am J Ophthalmol 2007;143:489–493.
  • Kitajima M, Korogi Y, Kido T et al. MRI in occipital lobe infarcts: classification by involvement of the striate cortex. Neuroradiology 1998;40:710–715.
  • Johnson CA, Cioffi GA, Liebmann JR et al. The relationship between structural and functional alterations in glaucoma: a review. Semin Ophthalmol 2000;15:221–233.
  • Baker CI, Peli E, Knouf N et al. Reorganization of visual processing in macular degeneration. J Neurosci 2005;25:614–618.
  • Barnes GR, Li X, Thompson B et al. Decreased gray matter concentration in the lateral geniculate nuclei in human amblyopes. Invest Ophthalmol Vis Sci 2010;51:1432–1438.
  • Ashburner J, Friston KJ. Voxel-based morphometry–the methods. Neuroimage 2000;11:805–821.
  • Sowell ER, Delis D, Stiles J et al. Improved memory functioning and frontal lobe maturation between childhood and adolescence: a structural MRI study. J Int Neuropsychol Soc 2001;7:312–322.
  • Rosas HD, Liu AK, Hersch S et al. Regional and progressive thinning of the cortical ribbon in Huntington’s disease. Neurology 2002;58:695–701.
  • Worsley KJ, Marrett S, Neelin P et al. A unified statistical approach for determining significant signals in images of cerebral activation. Hum Brain Mapp 1996;4:58–73.
  • Jeannerod M, Rossetti Y. Visuomotor coordination as a dissociable visual function: experimental and clinical evidence. Baillieres Clin Neurol 1993;2:439–460.
  • Harwerth RS, Quigley HA. Visual field defects and retinal ganglion cell losses in patients with glaucoma. Arch Ophthalmol 2006;124:853–859.
  • Horton JC, Hoyt WF. The representation of the visual field in human striate cortex. A revision of the classic Holmes map. Arch Ophthalmol 1991;109:816–824.
  • Dougherty RF, Koch VM, Brewer AA, Fischer B, Modersitzki J, Wandell BA. Visual field representations and locations of visual areas V1/2/3 in human visual cortex. J Vis 2003;3:586–598.
  • Rossetti Y, Pisella L, Vighetto A. Optic ataxia revisited: visually guided action versus immediate visuomotor control. Exp Brain Res 2003;153:171–179.
  • Buschman TJ, Miller EK. Top-down versus bottom-up control of attention in the prefrontal and posterior parietal cortices. Science 2007;315:1860–1862.
  • Luders E, Thompson PM, Narr KL et al. A curvature-based approach to estimate local gyrification on the cortical surface. Neuroimage 2006;29:1224–1230.
  • Ranganath C. Working memory for visual objects: complementary roles of inferior temporal, medial temporal, and prefrontal cortex. Neuroscience 2006;139:277–289.
  • Mruczek RE, Sheinberg DL. Activity of inferior temporal cortical neurons predicts recognition choice behavior and recognition time during visual search. J Neurosci 2007;27:2825–2836.
  • Cohen MS, Kosslyn SM, Breiter HC et al. Changes in cortical activity during mental rotation. A mapping study using functional MRI. Brain 1996;119 (Pt 1):89–100.
  • Sakai K, Hikosaka O, Miyauchi S et al. Transition of brain activation from frontal to parietal areas in visuomotor sequence learning. J Neurosci 1998;18:1827–1840.
  • Draganski B, Gaser C, Busch V et al. Neuroplasticity: changes in grey matter induced by training. Nature 2004;427:311–312.
  • Gupta N, Yücel YH. Glaucoma and the brain. J Glaucoma 2001;10:S28–S29.
  • Fjell AM, Walhovd KB, Reinvang I et al. Selective increase of cortical thickness in high-performing elderly–structural indices of optimal cognitive aging. Neuroimage 2006;29:984–994.
  • Weinreb RN, Lindsey JD, Sample P. Lateral geniculate nucleus in glaucoma. Am J Ophthalmol 1994;118:126–129.
  • Noppeney U, Friston KJ, Ashburner J et al. Early visual deprivation induces structural plasticity in gray and white matter. Curr Biol 2005;15:R488–R490.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.