Cerebral small vessel disease and cognitive impairment

Journal of Neurorestoratology - Tập 7 - Trang 184-195 - 2019
Lifang Meng1,2,3, Jianhua Zhao1,2,3, Junli Liu1,2,3, Shaomin Li4
1First Affiliated Hospital of Xinxiang Medical University, Xinxiang 453100, Henan, China
2Henan Key Laboratory of Neurorestoratology, Xinxiang 453100, Henan, China
3Henan Joint International Research Laboratory of Neurorestoratology for Senile Dementia, Xinxiang 453100, Henan, China
4Center for Neurologic Diseases, Brigham and Women’s Hospital, Harvard Medical School, Boston 02115, Massachusetts, United States

Tài liệu tham khảo

Low, 2019, Inflammation and cerebral small vessel disease: A systematic review, Ageing Res Rev, 53, 10.1016/j.arr.2019.100916 Wortmann, 2012, Dementia: a global health priority- highlights from an ADI and world health organization report, Alzheimers Res Ther, 4, 40, 10.1186/alzrt143 Jokinen, 2011, Incident lacunes influence cognitive decline: the LADIS study, Neurology, 76, 1872, 10.1212/WNL.0b013e31821d752f van Norden, 2013, Cerebral microbleeds are related to subjective cognitive failures: the RUN DMC study, Neurobiol Aging, 34, 2225, 10.1016/j.neurobiolaging.2013.03.021 Dong, 2018, Cerebral small vascular disease and cognitive dysfunction (in Chinese), Chin J Behav Med Brain Sci, 27, 684 Hilal, 2014, Microvascular network alterations in retina of subjects with cerebral small vessel disease, Neurosci Lett, 577, 95, 10.1016/j.neulet.2014.06.024 Han, 2018, Progress in diagnosis and treatment of cerebral small vascular disease (in Chinese), Med Inf, 31, 52 Neurology Branch of Chinese Medical Association, 2015, Consensus on diagnosis and treatment of cerebral small vascular disease in China (in Chinese), Chin J Neurology, 48, 838 Gyanwali, 2019, Risk factors for and clinical relevance of incident and progression of cerebral small vessel disease markers in an Asian memory clinic population, J Alzheimers Dis, 67, 1209, 10.3233/JAD-180911 Pantoni, 2010, Cerebral small vessel disease: from pathogenesis and clinical characteristics to therapeutic challenges, Lancet Neurol, 9, 689, 10.1016/S1474-4422(10)70104-6 Wei, 2017, Cerebral small vessel disease and cognitive impairment (in Chinese), J Chongqing Med Univ, 42, 643 Arvanitakis, 2011, Cerebral amyloid angiopathy pathology and cognitive domains in older persons, Ann Neurol, 69, 320, 10.1002/ana.22112 Wardlaw, 2003, Is breakdown of the blood-brain barrier responsible for lacunar stroke, leukoaraiosis, and dementia?, Stroke, 34, 806, 10.1161/01.STR.0000058480.77236.B3 Poggesi, 2016, Circulating biologic markers of endothelial dysfunction in cerebral small vessel disease: A review, J Cereb Blood Flow Metab, 36, 72, 10.1038/jcbfm.2015.116 Grueter, 2012, Age-related cerebral white matter disease (leukoaraiosis): a review, Postgrad Med J, 88, 79, 10.1136/postgradmedj-2011-130307 Keith, 2017, Collagenosis of the deep medullary veins: an underrecognized pathologic correlate of white matter hyperintensities and periventricular infarction?, J Neuropathol Exp Neurol, 76, 299, 10.1093/jnen/nlx009 Wardlaw, 2010, Blood-brain barrier and cerebral small vessel disease, J Neurol Sci, 299, 66, 10.1016/j.jns.2010.08.042 Giorgio, 2019, Relevance of brain lesion location for cognition in vascular mild cognitive impairment, Neuroimage Clin, 22, 10.1016/j.nicl.2019.101789 Petersen, 2018, Fibrinogen in neurological diseases: mechanisms, imaging and therapeutics, Nat Rev Neurosci, 19, 283, 10.1038/nrn.2018.13 Jiang, 2018, Blood-brain barrier dysfunction and recovery after ischemic stroke, Prog Neurobiol, 163/164, 144, 10.1016/j.pneurobio.2017.10.001 Topakian, 2010, Blood-brain barrier permeability is increased in normal-appearing white matter in patients with lacunar stroke and leucoaraiosis, J Neurol Neurosurg Psychiatry, 81, 192, 10.1136/jnnp.2009.172072 Schmidt, 2011, Genetic variants of the NOTCH3 gene in the elderly and magnetic resonance imaging correlates of age-related cerebral small vessel disease, Brain, 134, 3384, 10.1093/brain/awr252 Ihara, 2016, Emerging evidence for pathogenesis of sporadic cerebral small vessel disease, Stroke, 47, 554, 10.1161/STROKEAHA.115.009627 Dey, 2016, Pathoconnectomics of cognitive impairment in small vessel disease: A systematic review, Alzheimer’s Dement, 12, 831, 10.1016/j.jalz.2016.01.007 Yan, 2017, Research progress of cognitive impairment in patients with cerebral small vessel disease (in Chinese), Chin Community Doctors, 33, 19 Yan, 2017, Neuroimaging markers of cerebral small vessel disease (in Chinese), Chin J Pract Int Med, 37, 961 Mi, 2016, The interventional effect of remote ischemic preconditioning on cerebral small vessel disease: A pilot randomized clinical trial, Eur Neurol, 76, 28, 10.1159/000447536 Wang, 2019, MRI findings and vascular cognitive dysfunction in small vascular diseases (in Chinese), Chin J Clinicians, 47, 814 Jack, 2012, Alzheimer disease: new concepts on its neurobiology and the clinical role imaging will play, Radiology, 263, 344, 10.1148/radiol.12110433 Yao, 2019, Progress in treatment of vascular cognitive impairment (in Chinese), Medical Recapitulate, 2617 Bowler, 1995, Vascular cognitive impairment: a new approach to vascular dementia, Baillieres Clin Neurol, 4, 357 Overton, 2019, Prevalence and incidence of mild cognitive impairment across subtypes, age, and sex, Dement Geriatr Cogn Disord, 47, 219, 10.1159/000499763 Niu, 2018, Research progress in pathomechanism of cerebral small vessel disease (in Chinese), Chin J Clinical Rational Drug Use, 11, 174 Wang, 2017, Imaging research of cerebral small vessel disease (in Chinese), J Mol Imaging, 40, 478 Zhang, 2018, Association between imaging features of cerebral small vessel disease and vascular cognitive impairment (in Chinese), Mod J Integr Tradit Chin West Med, 27, 1393 Edwards, 2013, A quantitative systematic review of domain-specific cognitive impairment in lacunar stroke, Neurology, 80, 315, 10.1212/WNL.0b013e31827deb85 Smith, 2015, Early cerebral small vessel disease and brain volume, cognition, and gait, Ann Neurol, 77, 251, 10.1002/ana.24320 Chen, 2014, Aberrant functional networks connectivity and structural atrophy in silent lacunar infarcts: relationship with cognitive impairments, J Alzheimers Dis, 42, 841, 10.3233/JAD-140948 Jokinen, 2011, Incident lacunes influence cognitive decline: the LADIS study, Neurology, 76, 1872, 10.1212/WNL.0b013e31821d752f Thong, 2013, Association of silent lacunar infarct with brain atrophy and cognitive impairment, J Neurol Neurosurg Psychiatry, 84, 1219, 10.1136/jnnp-2013-305310 Benjamin, 2014, Strategic lacunes and their relationship to cognitive impairment in cerebral small vessel disease, Neuroimage Clin, 4, 828, 10.1016/j.nicl.2014.05.009 Makin, 2013, Cognitive impairment after lacunar stroke: systematic review and meta-analysis of incidence, prevalence and comparison with other stroke subtypes, J Neurol Neurosurg Psychiatry, 84, 893, 10.1136/jnnp-2012-303645 Portegies, 2016, Prestroke vascular pathology and the risk of recurrent stroke and poststroke dementia, Stroke, 47, 2119, 10.1161/STROKEAHA.116.014094 Wardlaw, 2013, Mechanisms of sporadic cerebral small vessel disease: insights from neuroimaging, Lancet Neurol, 12, 483, 10.1016/S1474-4422(13)70060-7 Tian, 2019, Research on white matter hyperintensities and dementia (in Chinese), J Int Psychiatry, 46, 208 Mortamais, 2013, Cerebral white matter hyperintensities in the prediction of cognitive decline and incident dementia, Int Rev Psychiatry, 25, 686, 10.3109/09540261.2013.838151 Fu, 2005, Extent of white matter lesions is related to acute subcortical infarcts and predicts further stroke risk in patients with first ever ischaemic stroke, J Neurol Neurosurg Psychiatry, 76, 793, 10.1136/jnnp.2003.032771 Fu, 2009, Neuroimaging predictors for depressive symptoms in cerebral small vessel disease, Int J Geriat Psychiatry, 25, 1039, 10.1002/gps.2436 Weinstein, 2013, Brain imaging and cognitive predictors of stroke and alzheimer disease in the Framingham heart study, Stroke, 44, 2787, 10.1161/STROKEAHA.113.000947 Bos, 2018, Cerebral small vessel disease and the risk of dementia: A systematic review and meta-analysis of population- based evidence, Alzheimers Dement, 14, 1482, 10.1016/j.jalz.2018.04.007 Greenberg, 2009, Cerebral microbleeds: a guide to detection and interpretation, Lancet Neurol, 8, 165, 10.1016/S1474-4422(09)70013-4 Poels, 2012, Cerebral microbleeds are associated with worse cognitive function: the Rotterdam scan study, Neurology, 78, 326, 10.1212/WNL.0b013e3182452928 Gormley, 2007, Polymorphisms in genes of the renin-angiotensin system and cerebral small vessel disease, Cerebrovasc Dis, 23, 148, 10.1159/000097052 Arvanitakis, 2016, Relation of cerebral vessel disease to Alzheimer's disease dementia and cognitive function in elderly people: a cross-sectional study, Lancet Neurol, 15, 934, 10.1016/S1474-4422(16)30029-1 Li, 2017, The significant effects of cerebral microbleeds on cognitive dysfunction: An updated meta-analysis, PLoS One, 12, 10.1371/journal.pone.0185145 Akoudad, 2016, Association of cerebral microbleeds with cognitive decline and dementia, JAMA Neurol, 73, 934, 10.1001/jamaneurol.2016.1017 Kwee, 2007, Virchow-robin spaces at MR imaging, Radiographics, 27, 1071, 10.1148/rg.274065722 Ding, 2017, Large perivascular spaces visible on magnetic resonance imaging, cerebral small vessel disease progression, and risk of dementia: the age, gene/environment susceptibility-Reykjavik study, JAMA Neurol, 74, 1105, 10.1001/jamaneurol.2017.1397 Maclullich, 2004, Enlarged perivascular spaces are associated with cognitive function in healthy elderly men, J Neurol Neurosurg Psychiatry, 75, 1519, 10.1136/jnnp.2003.030858 Banerjee, 2017, MRI-visible perivascular space location is associated with Alzheimer’s disease independently of amyloid burden, Brain, 140, 1107, 10.1093/brain/awx003 Aljondi, 2019, A decade of changes in brain volume and cognition, Brain Imaging Behav, 13, 554, 10.1007/s11682-018-9887-z Fletcher, 2018, Brain volume change and cognitive trajectories in aging, Neuropsychology, 32, 436, 10.1037/neu0000447 Tong, 2016, Assessment of the risk of Alzheimer’s disease in individuals with encephalatrophy and normal learning ability by MRI (in Chinese), J Med Imaging, 26, 584 Cao, 2017, Relationship between cognitive condition and neuroimaging features in patients with cerebral small vessel disease (in Chinese), J Neurol Neurorehabilitation, 13, 17 Tang, 2017, Coexisting cortical atrophy plays a crucial role in cognitive impairment in moderate to severe cerebral small vessel disease patients, Discov Med, 23, 175 Nitkunan, 2011, Brain atrophy and cerebral small vessel disease: a prospective follow-up study, Stroke, 42, 133, 10.1161/STROKEAHA.110.594267 Chen, 2019, Cerebral small vessel disease: neuroimaging markers and clinical implication, J Neurol, 266, 2347, 10.1007/s00415-018-9077-3 Fazekas, 1987, MR signal abnormalities at 1.5 T in Alzheimer’s dementia and normal aging, AJR Am J Roentgenol, 149, 351, 10.2214/ajr.149.2.351