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International Journal of Psychology & Behavior Analysis Volume 5 (2019), Article ID 5:IJPBA-163, 7 pages
https://doi.org/10.15344/2455-3867/2019/163
Original Article
Brain Plasticity and Cognitive Reserve in Multiple Sclerosis

Mattioli F1,*, Pinardi C2,3,4, Scarpazza C1,5, Bellomi F1, Ambrosi C2, Stampatori C1, Mascaro L2,3, Besana M2, Gasparotti R2 and Capra R5

1Neuropsychology Unit, Spedali Civili of Brescia, Brescia, Italy
2Neuroimaging Lab, Department of Medical and Surgical Specialties, Radiological Sciences and Public Health, University of Brescia, Italy
3Department of Diagnostic Imaging, Medical Physics Unit, Italy
4School of Medical Physics, University of Milano, Italy
5Multiple Sclerosis Center of the Spedali Civili of Brescia, Montichiari, Italy
Prof. Flavia Mattioli, Spedali Civili of Brescia, Neuropsychology Unit Via Nikolajewka, 1325123 Brescia, Italy, Tel: 00390302027218; E-mail: flaviacaterina.mattioli@gmail.com
07 June 2019; 16 July 2019; 18 July 2019
Mattioli F, Pinardi C, Scarpazza C, Bellomi F, Ambrosi C, et al. (2019) Brain Plasticity and Cognitive Reserve in Multiple Sclerosis. Int J Psychol Behav Anal 5: 163. doi: https://doi.org/10.15344/2455-3867/2019/163

References

  1. Enzinger C, Pinter D, Rocca MA, De Luca J, Sastre-Garriga J, et al. (2016) Longitudinal fMRI studies: Exploring brain plasticity and repair in MS. Mult Scler 22: 269-278. View
  2. Audoin B, Ibarrola D, Ranjeva JP, Confort-Gouny S, Malikova I, et al. (2003) Compensatory cortical activation observed by fMRI during a cognitive task at the earliest stage of MS. Hum Brain Mapp 20: 51-58. View
  3. Forn C, Rocca MA, Valsasina P, Boscá I, Casanova B, et al. (2012) Functional magnetic resonance imaging correlates of cognitive performance in patients with a clinically isolated syndrome suggestive of multiple sclerosis at presentation: an activation and connectivity study. Mult Scler 18: 153- 163. View
  4. Penner IK, Rausch M, Kappos L, Opwis K, Radü EW, et al. (2003) Analysis of impairment related functional architecture in MS patients during performance of different attention tasks. J Neurol 250: 461-472. View
  5. Penner IK, Opwis K, Kappos L (2007) Relation between functional brain imaging, cognitive impairment and cognitive rehabilitation in patients with multiple sclerosis. J Neurol 254: 53-57. View
  6. Forn C, Barros-Loscertales A, Escudero J, Benlloch V, Campos S, et al. (2007) Compensatory activations in patients with multiple sclerosis during preserved performance on the auditory N-back task. Hum Brain Mapp 28: 424-430. View
  7. Chiaravalloti ND, Genova HM, DeLuca J (2015) Cognitive rehabilitation in multiple sclerosis: the role of plasticity. Front Neurol 6: 67. View
  8. Rocca MA, Valsasina P, Absinta M, Riccitelli G, Rodegher ME, et al. (2010) Default-mode network dysfunction and cognitive impairment in progressive MS. Neurology 74: 1252-1259. View
  9. Hawellek DJ, Hipp JF, Lewis CM, Corbetta M, Engel AK, et al. (2011) Increased functional connectivity indicates the severity of cognitive impairment in multiple sclerosis. Proc Natl Acad Sci USA 108: 19066-19071. View
  10. Schoonheim M, Meijer KA, Geurts JJ (2015) Network collapse and cognitive impairment in multiple sclerosis. Front Neurol 6: 1-3. View
  11. Stern Y (2009) Cognitive reserve. Neuropsychologia 47: 2015-2028. View
  12. Scarmeas N, Zarahn E, Anderson KE, Habeck CG, Hilton J, et al. (2003) Association of life activities with cerebral blood flow in Alzheimer disease: implications for the cognitive reserve hypothesis. Arch Neurol 60: 359-365. View
  13. Habeck C, Hilton HJ, Zarahn E, Flynn J, Moeller J, et al. (2003) Relation of cognitive reserve and task performance to expression of regional covariance networks in an event-related fMRI study of nonverbal memory. Neuroimage 20: 1723-1733. View
  14. Crowe M, Andel R, Pedersen NL, Johansson B, Gatz M, et al. (2003) Does participation in leisure activities lead to reduced risk of Alzheimer's disease? A prospective study of Swedish twins. J Gerontol B Psychol Sci Soc Sci 58: 249-255. View
  15. Nucci M, Mapelli D, Mondini S (2012) Cognitive Reserve Index questionnaire (CRIq): a new instrument for measuring cognitive reserve. Aging Clin Exp Res 24: 218-226. View
  16. Ngandu T, Lehtisalo J, Solomon A, Levälahti E, Ahtiluoto S, et al. (2015) A 2 year multidomain intervention of diet, exercise, cognitive training, and vascular risk monitoring versus control to prevent cognitive decline in atrisk elderly people (FINGER): a randomised controlled trial. Lancet 385: 2255-2263. View
  17. Scarpazza C, Braghittoni D, Casale B, Malagú S, Mattioli F, et al. (2013) Education protects against cognitive changes associated with multiple sclerosis. Restor Neurol Neurosci 31 619-631. View
  18. Martins Da Silva A, Cavaco S, Moreira I, Bettencourt A, Santos E, et al. (2015) Cognitive reserve in multiple sclerosis: Protective effects of education. Mult Scler 21: 1312-1321. View
  19. Sumowski JF, Chiaravalloti N, Wylie G, Deluca J (2009) Cognitive reserve moderates the negative effect of brain atrophy on cognitive efficiency in multiple sclerosis. J Int Neuropsychol Soc 15: 606-612. View
  20. Lezak M, Howieson M, Loring D (2004) Neuropsychological Assessment. Fourth Edition. New York Press: Oxford University Press.
  21. Ghaffar O, Fiati M, Feinstein A (2012) Occupational attainment as a marker of cognitive reserve in multiple sclerosis. PLoS One 7: e47206. View
  22. Sumowski JF, Wylie GR, Deluca J, Chiaravalloti N (2010) Intellectual enrichment is linked to cerebral efficiency in multiple sclerosis: functional magnetic resonance imaging evidence for cognitive reserve. Brain 133: 362- 374. View
  23. Sumowski JF, Wylie GR, Gonnella A, Chiaravalloti N, Deluca J, et al. (2010) Premorbid cognitive leisure independently contributes to cognitive reserve in multiple sclerosis. Neurology 75: 1428-1431. View
  24. Polman CH, Reingold SC, Banwell B, Clanet M, Cohen JA, et al. (2011) Diagnostic criteria for multiple sclerosis: 2010 revisions to the McDonald criteria. Ann Neurol 69: 292-302. View
  25. Kurtzke JF (1983) Rating neurologic impairment in multiple sclerosis: an expanded disability status scale (EDSS). Neurology 33: 1444-1452. View
  26. Rao SM, Cognitive Function study group of the national multiple sclerosis (1990). A manual for the brief repeatable battery of neuropsychological tests in multiple sclerosis. Medical College of Wisconsin, Milwaukee. View
  27. Laiacona M, Inzaghi MG, De Tanti A, Capitani E (2000) Wisconsin card sorting test: a new global score, with Italian norms, and its relationship with the Weigl sorting test. Neurol Sci 21: 279-291. View
  28. Camp SJ, Stevenson VL, Thompson AJ, Miller DH, Borras C, et al. (1999) Cognitive function in primary progressive and transitional progressive multiple sclerosis: a controlled study with MRI correlates. Brain 122: 1341- 1348. View
  29. Stern Y, Gurland B, Tatemichi TK, Tang MX, Wilder D, et al. (1994) Influence of education and occupation on the incidence of Alzheimer's disease. JAMA 271: 1004-1010. View
  30. Smith SM (2002) Fast robust automated brain extraction. Hum Brain Mapp 17: 143-155. View
  31. Woo CW, Krishnan A, Wager TD (2014) Cluster-extent based thresholding in fMRI analyses: pitfalls and recommendations. Neuroimage 91: 412-419. View
  32. Owen AM, McMillan KM, Laird AR, Bullmore E (2005) N-back working memory paradigm: a meta-analysis of normative functional neuroimaging studies. Hum Brain Mapp 25: 46-59. View
  33. Mattioli F, Ambrosi C, Mascaro L, Scarpazza C, Pasquali P, et al. (2014) Early aphasia rehabilitation is associated with functional reactivation of the left inferior frontal gyrus: a pilot study. Stroke 45: 545-552. View
  34. Estévez N, Yu N, Brügger M, Villiger M, Hepp-Reymond MC, et al. (2014) A reliability study on brain activation during active and passive arm movements supported by an MRI-compatible robot. Brain Topogr 27: 731- 746. View
  35. Cerasa A, Gioia MC, Valentino P, Nisticò R, Chiriaco C, et al. (2013) Computer-assisted cognitive rehabilitation of attention deficits for multiple sclerosis: a randomized trial with fMRI correlates. Neurorehabil Neural Repair 27: 284-295. View
  36. Leavitt VM, Wylie G, Krch D, Chiaravalloti N, DeLuca J, et al. (2014) Does slowed processing speed account for executive deficits in multiple sclerosis? Evidence from neuropsychological performance and structural neuroimaging. Rehabil Psychol 59: 422-428. View
  37. Filippi M, van den Heuvel MP, Fornito A, He Y, Hulshoff Pol HE, et al. (2013) Assessment of system dysfunction in the brain through MRI-based connectomics. Lancet Neurol 12: 1189-1199. View