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- 2016
垂体腺瘤致视力障碍患者视觉皮层及相关功能网络静息状态局部一致性的改变
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Abstract:
[1] | Collignon O, Vandewalle G, Voss P, et al. Functional specialization for auditory-spatial processing in the occipital cortex of congenitally blind humans[J]. Proc Natl Acad Sci USA, 2011, 108(11): 4435-4440. |
[2] | Manoliu A, Meng C, Brandl F, et al. Insular dysfunction within the salience network is associated with severity of symptoms and aberrant inter-network connectivity in major depressive disorder[J]. Front Hum Neurosci, 2014, 7: 930. doi: 10.3389/fnhum.2013.00930. |
[3] | Andrews-Hanna JR, Reidler JS, Sepulcre J, et a. Functional-anatomic fractionation of the brains default network[J]. Neuron, 2010, 65(4): 550-562. |
[4] | Leech R, Sharp DJ. The role of the posterior cingulate cortex in cognition and disease[J]. Brain, 2014, 137(Pt 1): 12-32. doi: 10.1093/brain/awt162. |
[5] | Rudebeck SR, Filippini N, Lee AC. Can complex visual discrimination deficits in amnesia be attributed to the medial temporal lobe? An investigation into the effects of medial temporal lobe damage on brain connectivity[J]. Hippocampus, 2013, 23(1): 7-13. |
[6] | Mayhew SD, Ostwald D, Porcaro C, et al. Spontaneous EEG alpha oscillation interacts with positive and negative BOLD responses in the visual-auditory cortices and default-mode network[J]. Neuroimage, 2013, 76(8): 362-372. |
[7] | Mo J, Liu Y, Huang H, et al. Coupling between visual alpha oscillations and default mode activity[J]. Neuroimage, 2013, 68(3): 112-118. |
[8] | Menon V, Uddin LQ. Saliency, switching, attention and control: a network model of insula function Brain[J]. Struct Funct, 2012, 214(5-6): 655-667. |
[9] | Uddin LQ, Supekar K, Amin H. Dissociable connectivity within human angular gyrus and intraparietal sulcus: evidence from functional and structural connectivity[J]. Cereb Cortex, 2010, 20(11): 2636-2646. |
[10] | Bonnelle V, Ham TE, Leech R, et al. Salience network integrity predicts default mode network function after traumatic brain injury[J]. Proc Natl Acad Sci USA, 2012, 109(12): 4690-4695. |
[11] | Bressler SL, Menon V. Large-scale brain networks in cognition: emerging methods and principles[J]. Trends Cogn Sci, 2010, 14(6): 277-290. |
[12] | Vuilleumier P, Driver J. Modulation of visual processing by attention and emotion: windows on causal interactions between human brain regions[J]. Philos Trans R Soc Lond B Biol Sci, 2007, 362(1481): 837-855. |
[13] | Wen X, Liu Y, Yao L, et al. Top-down regulation of default mode activity in spatial visual attention[J]. J Neurosci, 2013, 33(15): 6444-6453. |
[14] | Kovács I. Human development of perceptual organization[J]. Vision Res, 2000, 40(10): 1301-1310. |
[15] | Dormal G, Lepore F, Collignon O. Plasticity of the dorsal “spatial” stream in visually deprived individuals[J]. Neural Plast, 2012, 687659.doi:10.1155/2012/687659. |
[16] | Jenkins TM, Toosy AT, Ciccarelli O, et al. Neuroplasticity predicts outcome of optic neuritis independent of tissue damage[J]. Ann Neurol, 2010, 67(1): 99-113. |
[17] | Gallo A, Esposito F, Sacco R, et al. Visual resting-state network in relapsing-remitting MS with and without previous optic neuritis[J]. Neurology, 2012, 79(14): 1458-1465. |
[18] | Chao-Gan Y, Yu-Feng Z. DPARSF: A MATLAB toolbox for “pipeline” data analysis of resting-state fMRI[J]. Front Syst Neurosci, 2010, 4: 13. doi: 10.3389/fnsys.2010.00013. |
[19] | Chen J, Yamahachi H, Gilbert CD. Experience-dependent gene expression in adult visual cortex[J]. Cereb Cortex, 2010, 20(3): 650-660. |
[20] | Mayer JS, Roebroeck A, Maurer K, et al. Specialization in the default mode: Task-induced brain deactivations dissociate between visual working memory and attention[J]. Hum Brain Mapp, 2010, 31(1): 126-139. |
[21] | Mayhew SD, Ostwald D, Porcaro C, et al. Spontaneous EEG alpha oscillation interacts with positive and negative BOLD responses in the visual-auditory cortices and default-mode network[J]. Neuroimage, 2013, 76(8): 362-372. |
[22] | Sheng K, Fang W, Su M, et al. Altered spontaneous brain activity in patients with Parkinsons disease accompanied by depressive symptoms, as revealed by regional homogeneity and functional connectivity in the prefrontal-limbic system[J]. PLoS One, 2014, 9(1): e84705. doi:10.1371/journal.pone.0084705. |
[23] | Smith SM, Fox PT, Miller KL, et al. Correspondence of the brains functional architecture during activation and rest[J]. Proc Natl Acad Sci USA, 2009, 106(31): 13040-13045. |
[24] | Zang Y, Jiang T, Lu Y, et al. Regional homogeneity approach to fMRI data analysis[J]. NeuroImage, 2004, 22(1): 394-400. |
[25] | Wen X, Liu Y, Yao L, et al. Top-down regulation of default mode activity in spatial visual attention[J]. J Neurosci, 2013, 33(15): 6444-6453. |
[26] | Northoff G, Qin P, Nakao T. Rest-stimulus interaction in the brain: a review[J]. Trends Neurosci, 2010, 33(6): 277-284. |