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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/71165
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dc.contributor.advisor張玉玲(Yu-Ling Chang)
dc.contributor.authorHsueh-Wen Shihen
dc.contributor.author施學文zh_TW
dc.date.accessioned2021-06-17T04:56:24Z-
dc.date.available2023-08-01
dc.date.copyright2018-08-01
dc.date.issued2018
dc.date.submitted2018-07-27
dc.identifier.citationAggleton, J. P., O’Mara, S. M., Vann, S. D., Wright, N. F., Tsanov, M., & Erichsen, J. T. (2010). Hippocampal–anterior thalamic pathways for memory: Uncovering a network of direct and indirect actions. European Journal of Neuroscience, 31, 2292-2307.
Andrews-Hanna, J. R., Snyder, A. Z., Vincent, J. L., Lustig, C., Head, D., Raichle, M. E., & Buckner, R. L. (2007). Disruption of large-scale brain systems in advanced aging. Neuron, 56, 924-935.
Aron, A. R., Robbins, T. W., & Poldrack, R. A. (2004). Inhibition and the right inferior frontal cortex. Trends in Cognitive Sciences, 8, 170-177.
Avelar-Pereira, B., Bäckman, L., Wåhlin, A., Nyberg, L., & Salami, A. (2017). Age-related differences in dynamic interactions among default mode, frontoparietal control, and dorsal attention networks during resting-state and interference resolution. Frontiers in aging neuroscience, 9, 152.
Bäckman, L., Jones, S., Berger, A. K., Laukka, E. J., & Small, B. J. (2005). Cognitive impairment in preclinical Alzheimer’s disease: A meta-analysis. Neuropsychology, 19, 520.
Balota, D. A., Dolan, P. O., & Duchek, J. M. (2000). Memory changes in healthy older adults. New York: The Oxford Handbook of Memory.
Beaty, R. E., Benedek, M., Kaufman, S. B., & Silvia, P. J. (2015). Default and executive network coupling supports creative idea production. Scientific Reports, 5.
Biswal, B., Zerrin Yetkin, F., Haughton, V. M., & Hyde, J. S. (1995). Functional
connectivity in the motor cortex of resting human brain using echo‐planar mri. Magnetic Resonance in Medicine, 34, 537-541.
Brown, J. W., & Braver, T. S. (2005). Learned predictions of error likelihood in the anterior cingulate cortex. Science, 307, 1118-1121.
Cabeza, R. (2002). Hemispheric asymmetry reduction in older adults: The HAROLD model. Psychology and Aging, 17, 85.
Cabeza, R., & Dennis, N. A. (2012). Frontal lobes and aging: Deterioration and compensation. In D. T. Stuss & R. T. Knight (Eds.), Frontal Lobes, 2, 628–655.
Cabeza, R., Dolcos, F., Graham, R., & Nyberg, L. (2002). Similarities and differences in the neural correlates of episodic memory retention and working memory. Neuroimage, 16, 317-330.
Cabeza, R., Dolcos, F., Prince, S. E., Rice, H. J., Weissman, D. H., & Nyberg, L. (2003). Attention-related activity during episodic memory retention: A cross-function fMRI study. Neuropsychologia, 41, 390-399.
Cabeza, R., & Nyberg, L. (2000). Imaging cognition II: An empirical review of 275 PET and fMRI studies. Journal of Cognitive Neuroscience, 12, 1-47.
Cabeza, R., & St Jacques, P. (2007). Functional neuroimaging of autobiographical memory. Trends in Cognitive Sciences, 11, 219-227.
Cappell, K. A., Gmeindl, L., & Reuter-Lorenz, P. A. (2010). Age differences in prefrontal recruitment during verbal working memory maintenance depend on memory load. Cortex, 46, 462–473.
Damoiseaux, J. S., Beckmann, C. F., Arigita, E. S., Barkhof, F., Scheltens, P., Stam, C. J., ... & Rombouts, S. A. R. B. (2007). Reduced resting-state brain activity in the “default network” in normal aging. Cerebral Cortex, 18, 1856-1864.
Daum, I., & Mayes, A. R. (2000). Memory and executive function impairments after frontal or posterior cortex lesions. Behavioural Neurology, 12, 161-173.
De Beni, R., & Palladino, P. (2000). Intrusion errors in working memory tasks: Are they related to reading comprehension ability?. Learning and Individual Differences, 12, 131-143.
Delis, D. C., Kramer, J. H., Kaplan, E., & Ober, B. A. (1987). CVLT, California Verbal Learning Test: Adult Version: Manual. Psychological Corporation.
Esposito, F., Aragri, A., Pesaresi, I., Cirillo, S., Tedeschi, G., Marciano, E., ... Di Salle, F. (2008). Independent component model of the default-mode brain function: Combining individual-level and population-level analyses in resting-state fMRI. Magnetic Resonance Imaging, 26, 905-913.
Eyler, L. T., Sherzai, A., Kaup, A. R., & Jeste, D. V. (2011). A review of functional brain imaging correlates of successful cognitive aging. Biological Psychiatry, 70, 115-122.
Fjell, A. M., & Walhovd, K. B. (2010). Structural brain changes in aging: Courses, causes and cognitive consequences. Reviews in the Neurosciences, 21, 187-222.
Fox, M. D., Snyder, A. Z., Vincent, J. L., Corbetta, M., Van Essen, D. C., & Raichle, M. E. (2005). The human brain is intrinsically organized into dynamic, anticorrelated functional networks. Proceedings of the National Academy of Sciences, 102, 9673-9678.
Grady, C. L. (2000). Functional brain imaging and age-related changes in cognition. Biological Psychology, 54, 259-281.
Grady, C. L., & Craik, F. I. (2000). Changes in memory processing with age. Current Opinion in Neurobiology, 10, 224-231.
Grasby, P., Frith, C. D., Friston, K. J., Simpson, J. F. P. C., Fletcher, P. C., Frackowiak, R. S., & Dolan, R. J. (1994). A graded task approach to the functional mapping of brain areas implicated in auditory—verbal memory. Brain, 117, 1271-1282.
Greicius, M. D., Krasnow, B., Reiss, A. L., & Menon, V. (2003). Functional connectivity in the resting brain: A network analysis of the default mode hypothesis. Proceedings of the National Academy of Sciences, 100, 253-258.
Guldenmund, P., Demertzi, A., Boveroux, P., Boly, M., Vanhaudenhuyse, A., Bruno, M. A., ... Laureys, S. (2013). Thalamus, brainstem and salience network connectivity changes during propofol-induced sedation and unconsciousness. Brain Connectivity, 3, 273-285.
Hellige, J. B. (1993). Hemispheric asymmetry: What's right and what's left. Massachusetts: Harvard University Press.
Head, D., Buckner, R. L., Shimony, J. S., Williams, L. E., Akbudak, E., Conturo, T. E., ... Snyder, A. Z. (2004). Differential vulnerability of anterior white matter in nondemented aging with minimal acceleration in dementia of the Alzheimer type: Evidence from diffusion tensor imaging. Cerebral Cortex, 14, 410-423.
Jak, A. J., Bondi, M. W., Delano-Wood, L., Wierenga, C., Corey-Bloom, J., Salmon, D. P., & Delis, D. C. (2009). Quantification of five neuropsychological approaches to defining mild cognitive impairment. The American Journal of Geriatric Psychiatry, 17, 368-375.
Jonkman, S., Mar, A. C., Dickinson, A., Robbins, T. W., & Everitt, B. J. (2009). The rat prelimbic cortex mediates inhibitory response control but not the consolidation of instrumental learning. Behavioral Neuroscience, 123, 875.
Kaup, A. R., Mirzakhanian, H., Jeste, D. V., & Eyler, L. T. (2011). A review of the brain structure correlates of successful cognitive aging. The Journal of Neuropsychiatry and Clinical Neurosciences, 23, 6-15.
Khan, S. A., Keaser, M. L., Meiller, T. F., & Seminowicz, D. A. (2014). Altered structure and function in the hippocampus and medial prefrontal cortex in patients with burning mouth syndrome. PAIN®, 155, 1472-1480.
Kittler, P., Krinsky‐McHale, S. J., & Devenny, D. A. (2006). Verbal intrusions precede memory decline in adults with Down syndrome. Journal of Intellectual Disability Research, 50, 1-10.
Koch, W., Teipel, S., Mueller, S., Buerger, K., Bokde, A. L., Hampel, H., ... Meindl, T. (2010). Effects of aging on default mode network activity in resting state fMRI: Does the method of analysis matter?. Neuroimage, 51, 280-287.
Kumaran, D., & Maguire, E. A. (2005). The human hippocampus: Cognitive maps or relational memory?. Journal of Neuroscience, 25, 7254-7259.
Lamar, M., Resnick, S. M., & Zonderman, A. B. (2003). Longitudinal changes in verbal memory in older adults: Distinguishing the effects of age from repeat testing. Neurology, 60, 82-86.
Li, Z., Moore, A. B., Tyner, C., & Hu, X. (2009). Asymmetric connectivity reduction and its relationship to “HAROLD” in aging brain. Brain Research, 1295, 149-158.
Light, L. L. (1991). Memory and aging: Four hypotheses in search of data. Annual Review of Psychology, 42, 333-376.
Manes, F., Springer, J., Jorge, R., & Robinson, R. G. (1999). Verbal memory impairment after left insular cortex infarction. Journal of Neurology, Neurosurgery & Psychiatry, 67, 532-534.
Menon, V., & Uddin, L. Q. (2010). Saliency, switching, attention and control: A network model of insula function. Brain Structure and Function, 214, 655-667.
Mesulam, M. M., & Mufson, E. J. (1982). Insula of the old world monkey.
Architectonics in the insulo‐orbito‐temporal component of the paralimbic brain. Journal of Comparative Neurology, 212, 1-22.
Nadel, L., & Moscovitch, M. (1997). Memory consolidation, retrograde amnesia and the hippocampal complex. Current Opinion in Neurobiology, 7, 217-227.
O'keefe, J., & Nadel, L. (1978). The hippocampus as a Cognitive map. Oxford, England: Clarendon Press.
Onoda, K., Ishihara, M., & Yamaguchi, S. (2012). Decreased functional connectivity by aging is associated with cognitive decline. Journal of Cognitive Neuroscience, 24, 2186-2198.
Park, D. C., Lautenschlager, G., Hedden, T., Davidson, N. S., Smith, A. D., & Smith, P. K. (2002). Models of visuospatial and verbal memory across the adult life span. Psychology and Aging, 17, 299.
Paulesu, E., Frith, C. D., & Frackowiak, R. S. (1993). The neural correlates of the verbal component of working memory. Nature, 362, 342.
Piekema, C., Kessels, R. P., Mars, R. B., Petersson, K. M., & Fernández, G. (2006).
The right hippocampus participates in short-term memory maintenance of object–location associations. Neuroimage, 33, 374-382.
Postuma, R. B., & Dagher, A. (2005). Basal ganglia functional connectivity based on a meta-analysis of 126 positron emission tomography and functional magnetic resonance imaging publications. Cerebral Cortex, 16, 1508-1521.
Rabin, L. A., Paré, N., Saykin, A. J., Brown, M. J., Wishart, H. A., Flashman, L. A., & Santulli, R. B. (2009). Differential memory test sensitivity for diagnosing amnestic mild cognitive impairment and predicting conversion to Alzheimer's disease. Aging, Neuropsychology, and Cognition, 16, 357-376.
Raichle, M. E., MacLeod, A. M., Snyder, A. Z., Powers, W. J., Gusnard, D. A., & Shulman, G. L. (2001). A default mode of brain function. Proceedings of the National Academy of Sciences, 98, 676-682.
Reuter-Lorenz, P. A., Stanczak, L., & Miller, A. (1999). Neural recruitment and cognitive aging: Two hemispheres are better than one especially as you age. Psychological Science, 10, 494–500.
Reuter-Lorenz, P. A., Jonides, J., Smith, E. E., Hartley, A., Miller, A., Marshuetz, C., & Koeppe, R. A. (2000). Age differences in the frontal lateralization of verbal and spatial working memory revealed by PET. Journal of Cognitive Neuroscience, 12, 174-187.
Reuter-Lorenz, P. A., & Park, D. C. (2014). How does it STAC up? Revisiting the scaffolding theory of aging and cognition. Neuropsychology Review, 24, 355-370.
Salami, A., Pudas, S., & Nyberg, L. (2014). Elevated hippocampal resting-state connectivity underlies deficient neurocognitive function in aging. Proceedings of the National Academy of Sciences, 111, 17654-17659.
Schneider-Garces, N. J., Gordon, B. A., Brumback-Peltz, C. R., Shin, E., Lee, Y., Sutton, B. P., ... Fabiani, M. (2010). Span, CRUNCH, and beyond: Working memory capacity and the aging brain. Journal of Cognitive Neuroscience, 22, 655-669.
Seeley, W. W., Menon, V., Schatzberg, A. F., Keller, J., Glover, G. H., Kenna, H., ...Greicius, M. D. (2007). Dissociable intrinsic connectivity networks for salience processing and executive control. Journal of Neuroscience, 27, 2349-2356.
Sridharan, D., Levitin, D. J., & Menon, V. (2008). A critical role for the right fronto-insular cortex in switching between central-executive and default-mode networks. Proceedings of the National Academy of Sciences, 105, 12569-12574.
Tan, L. H., Laird, A. R., Li, K., & Fox, P. T. (2005). Neuroanatomical correlates of phonological processing of Chinese characters and alphabetic words: A meta‐analysis. Human Brain Mapping, 25, 83-91.
Tomasi, D., & Volkow, N. D. (2012). Aging and functional brain networks. Molecular Psychiatry, 17, 549.
Tromp, D., Dufour, A., Lithfous, S., Pebayle, T., & Després, O. (2015). Episodic memory in normal aging and Alzheimer disease: Insights from imaging and behavioral studies. Ageing Research Reviews, 24, 232-262.
Tronel, S., & Sara, S. J. (2003). Blockade of NMDA receptors in prelimbic cortex induces an enduring amnesia for odor–reward associative learning. Journal of Neuroscience, 23, 5472-5476.
Tsivilis, D., Vann, S. D., Denby, C., Roberts, N., Mayes, A. R., Montaldi, D., & Aggleton, J. P. (2008). The importance of the fornix and mammillary bodies for human memory: A disproportionate role for recall versus recognition. Nature Neuroscience, 11, 834-842.
Uddin, L. Q. (2015). Salience processing and insular cortical function and dysfunction. Nature Reviews Neuroscience, 16, 55.
Vann, S. D., Aggleton, J. P., & Maguire, E. A. (2009). What does the retrosplenial cortex do?. Nature Reviews Neuroscience, 10, 792.
Vann, S. D., Erichsen, J. T., O'mara, S. M., & Aggleton, J. P. (2011). Selective disconnection of the hippocampal formation projections to the mammillary bodies produces only mild deficits on spatial memory tasks: Implications for fornix function. Hippocampus, 21, 945-957.
Verbruggen, F., & Logan, G. D. (2008). Response inhibition in the stop-signal paradigm. Trends in Cognitive Sciences, 12, 418-424.
Vidal-Piñeiro, D., Valls-Pedret, C., Fernández-Cabello, S., Arenaza-Urquijo, E. M., Sala-Llonch, R., Solana, E., ... Bartrés-Faz, D. (2014). Decreased default mode network connectivity correlates with age-associated structural and cognitive changes. Frontiers in Aging Neuroscience, 6, 256.
Voets, N. L., Zamboni, G., Stokes, M. G., Carpenter, K., Stacey, R., & Adcock, J. E. (2014). Aberrant functional connectivity in dissociable hippocampal networks is associated with deficits in memory. Journal of Neuroscience, 34, 4920-4928.
Waiter, G. D., Fox, H. C., Murray, A. D., Starr, J. M., Staff, R. T., Bourne, V. J., ...Deary, I. J. (2008). Is retaining the youthful functional anatomy underlying speed of information processing a signature of successful cognitive ageing? An event-related fMRI study of inspection time performance. Neuroimage, 41, 581-595.
Wang, L., LaViolette, P., O'keefe, K., Putcha, D., Bakkour, A., Van Dijk, K. R., ... Sperling, R. A. (2010). Intrinsic connectivity between the hippocampus and posteromedial cortex predicts memory performance in cognitively intact older individuals. Neuroimage, 51, 910-917.
Wang, X., Wang, J., He, Y., Li, H., Yuan, H., Evans, A., ... Wang, H. (2015).
Apolipoprotein E ε4 modulates cognitive profiles, hippocampal volume, and resting-state functional connectivity in Alzheimer's disease. Journal of Alzheimer's Disease, 45, 781-795.
Wu, C. Y., Ho, M. H. R., & Chen, S. H. A. (2012). A meta-analysis of fMRI studies on Chinese orthographic, phonological, and semantic processing. Neuroimage, 63, 381-391.
Wu, X., Li, R., Fleisher, A. S., Reiman, E. M., Guan, X., Zhang, Y., ... & Yao, L. (2011). Altered default mode network connectivity in Alzheimer's disease—A resting functional MRI and Bayesian network study. Human Brain Mapping, 32, 1868-1881.
Yan, C., & Zang, Y. (2010). DPARSF: A MATLAB toolbox for' pipeline' data analysis of resting-state fMRI. Frontiers in Systems Neuroscience, 4, 13.
Ystad, M., Eichele, T., Lundervold, A. J., & Lundervold, A. (2010). Subcortical functional connectivity and verbal episodic memory in healthy elderly—A resting state fMRI study. Neuroimage, 52, 379-388.
Zhang, D., Snyder, A. Z., Fox, M. D., Sansbury, M. W., Shimony, J. S., & Raichle, M. E. (2008). Intrinsic functional relations between human cerebral cortex and thalamus. Journal of Neurophysiology, 100, 1740-1748.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/71165-
dc.description.abstract過去在靜息態功能性磁振造影的研究指出,預設模式網絡及警覺網絡,此二靜息態網絡特別容易受到老化作用的影響,且預設模式網絡的功能連結強度與老年人在語言情節記憶的表現有關。然而,此二靜息態網絡的功能連結是否存在左右大腦半球的差異,尚未被詳細探討。因此,本研究旨在探討靜息態功能連結在老化上的改變,特別著重在大腦半球的差異及其與語言情節記憶表現的關連性。本研究募集31 位健康年輕人,30 位健康老年人。所有受試者皆接受全套神經心理測驗評估,並使用種子相關分析方法研究靜息狀態的腦影像,最後透過相關分析方法研究靜息態功能連結與語言記憶表現的關聯性。結果顯示,老年人的左側大腦半球內及兩側大腦半球間的功能連結強度皆較年輕人弱,進而展現不對稱性下降的現象。此外,警覺網絡亦存在功能連結與特定記憶表現的關聯性,此關係並不僅存在於預設模式網絡中。本研究對於了解健康老化在靜息態功能連結的改變提供嶄新的發現,強調將大腦半球差異的因素納入未來研究之必要性,本研究亦顯示靜息狀態下大腦網絡的顯微改變與語言情節記憶表現的年齡差異密切相關,此發現為日後制定延緩及預防老化的認知訓練介入策略建構良好基礎。zh_TW
dc.description.abstractBackground and Objective: Previous resting-state fMRI studies have demonstrated that the default mode network (DMN) and salience network (SN) were both vulnerable to aging effects and the DMN associated with changes of verbal episodic memory in older adults. However, the relationship between the hemispheric differences in the functional connectivity (FC) of the brain networks and cognitive performance remains uncharacterized. Thus, the present study investigated age-related resting-state FC alteration, focusing on the hemisphere differences, and its association with verbal episodic memory performance. We hypothesized that the older adults would display hemispheric asymmetry reduction in RSFCs. In addition, FC strengths within and between the DMN and SN would be associated with performance on the verbal episodic memory. Methods: A sample of 61 community-dwelling healthy adults (young, n = 31, M = 22.71, SD = 2.44; old, n = 30, M = 66.97, SD = 4.20) participated in the study. All participants were administered a battery of standardized neuropsychological tests, including a verbal memory test, to assess domains of cognitive functioning as part of a larger study of cognitive aging. A seed-based analysis of the FC and statistical analysis were conducted to investigate the relationship between the FC and verbal memory performance. Results: The results revealed that the elderly demonstrated decreased both intra- and cross-hemisphere FCs compared to the young adults, therefore, resulting in hemispheric asymmetry reductions. Furthermore, not only FCs between regions within the DMN, but also FCs of brain regions in the SN were related to specific verbal episodic memory indices. Conclusion: Collectively, our findings provide valuable new information of resting-state FC in healthy aging, revealing an age-related reduced hemispheric asymmetry pattern of brain connectivity using resting fMRI, which was distinct from the task fMRI. A change in the organization of the neural networks underlying the episodic memory can also be responsible for the differences observed between young and older adults.en
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dc.description.tableofcontentsIntroduction ....................................................................................................................1
Materials and Methods ..................................................................................................8
Participants ...............................................................................................................8
MRI Acquisition ......................................................................................................9
Resting-state Data Analysis .....................................................................................9
Indices of Verbal Episodic Memory Function .......................................................12
Statistical Analysis .................................................................................................13
Results ............................................................................................................................15
Demographic and Cognitive Characteristics between the Groups .........................15
ROI-wise Functional Connectivity Analysis ..........................................................16
Relationship between Functional Connectivity and Verbal Episodic Memory Performance ............................................................................................................17
Discussion ......................................................................................................................20
Age-related Changes in Resting-state Functional Connectivity ............................20
Resting-state Functional Connectivity and Verbal Episodic Learning ..................21
Resting-state Connectivity and Memory Retention ...............................................24
Resting-state Functional Connectivity and Intrusion Errors ..................................26
References ......................................................................................................................29
Tables .............................................................................................................................42
Figures ...........................................................................................................................43
Appendix ........................................................................................................................48
dc.language.isoen
dc.subject警覺網絡zh_TW
dc.subject預設模式網絡zh_TW
dc.subject靜息態功能磁振造影zh_TW
dc.subject老化zh_TW
dc.subject語言情節記憶zh_TW
dc.subject功能連結zh_TW
dc.subjectagingen
dc.subjectresting-state fMRIen
dc.subjectdefault mode networken
dc.subjectsalience networken
dc.subjectfunctional connectivityen
dc.subjectverbal episodic memoryen
dc.title老化相關之靜息態功能連結半球不對稱性降低及語言情節記憶表現zh_TW
dc.titleAge-related Asymmetry Reductions in Resting-State Functional Connectivity and Verbal Episodic Memory Performanceen
dc.typeThesis
dc.date.schoolyear106-2
dc.description.degree碩士
dc.contributor.oralexamcommittee黃植懋(Chih-Mao Huang),吳恩賜(Joshua Goh Oon Soo)
dc.subject.keyword老化,靜息態功能磁振造影,預設模式網絡,警覺網絡,功能連結,語言情節記憶,zh_TW
dc.subject.keywordaging,resting-state fMRI,default mode network,salience network,functional connectivity,verbal episodic memory,en
dc.relation.page51
dc.identifier.doi10.6342/NTU201802069
dc.rights.note有償授權
dc.date.accepted2018-07-27
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept心理學研究所zh_TW
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