1 |
田金洲, 解恒革, 秦 斌, 等. 中国血管性轻度认知损害诊断指南[J]. 中华内科杂志, 2016, 55(3): 249-256.
|
2 |
周凯歌. 血管性认知障碍患者认知功能、神经影像学及代谢组学相关研究[D]. 上海: 第二军医大学,2014.
|
3 |
GHAFAR M Z A A, MIPTAH H N, O’CAOIMH R. Cognitive screening instruments to identify vascular cognitive impairment: a systematic review[J]. Int J Geriatr Psychiatry, 2019, 34(8): 1114-1127.
|
4 |
SMITH E E, SCHNEIDER J A, WARDLAW J M,et al.Cerebral microinfarcts: the invisible lesions[J]. Lancet Neurol, 2012, 11(3): 272-282.
|
5 |
韩晓蕾, 王晓杰, 杜怡峰. 脑小血管病与认知障碍[J]. 中国实用内科杂志, 2021, 41(7): 575-578.
|
6 |
CHARLTON R A, BARRICK T R, MCINTYRE D J, et al. White matter damage on diffusion tensor imaging correlates with age-related cognitive decline[J]. Neurology, 2006, 66(2): 217-222.
|
7 |
TOZER D J, ZEESTRATEN E, LAWRENCE A J, et al. Texture analysis of T1-weighted and fluid-attenuated inversion recovery images detects abnormalities that correlate with cognitive decline in small vessel disease[J]. Stroke,2018,49(7):1656-1661.
|
8 |
BETROUNI N, YASMINA M, BOMBOIS S, et al. Texture features of magnetic resonance images: an early marker of post-stroke cognitive impairment[J]. Transl Stroke Res, 2020, 11(4): 643-652.
|
9 |
DE JONG F J, SCHRIJVERS E M, IKRAM M K,et al.Retinal vascular caliber and risk of dementia: the Rotterdam study[J]. Neurology, 2011, 76(9): 816-821.
|
10 |
QIU C, COTCH M F, SIGURDSSON S, et al. Cerebral microbleeds, retinopathy, and dementia: the AGES-Reykjavik study[J]. Neurology, 2010, 75(24): 2221-2228.
|
11 |
YUAN M, BI X. Therapeutic and diagnostic potential of microRNAs in vascular cognitive impairment[J]. J Mol Neurosci, 2020, 70(10): 1619-1628.
|
12 |
CIPOLLINI V, TROILI F, GIUBILEI F. Emerging biomarkers in vascular cognitive impairment and dementia: from pathophysiological pathways to clinical application[J]. Int J Mol Sci, 2019, 20(11): 2812.
|
13 |
HUANG S E, ZHAO J P, HUANG D X, et al. Serum miR-132 is a risk marker of post-stroke cognitive impairment[J]. Neurosci Lett, 2016, 615: 102-106.
|
14 |
YANG F W, WANG H, WANG C, et al. Upregulation of acetylcholinesterase caused by downregulation of microRNA-132 is responsible for the development of dementia after ischemic stroke[J]. J Cell Biochem, 2020, 121(1): 135-141.
|
15 |
PRABHAKAR P, CHANDRA S R, CHRISTOPHER R.Circulating microRNAs as potential biomarkers for the identification of vascular dementia due to cerebral small vessel disease[J]. Age Ageing, 2017, 46(5): 861-864.
|
16 |
BARBAGALLO C, MOSTILE G, BAGLIERI G,et al. Specific signatures of serum miRNAs as potential biomarkers to discriminate clinically similar neurodegenerative and vascular-related diseases[J]. Cell Mol Neurobiol, 2020, 40(4): 531-546.
|
17 |
SONNTAG W E, DEAK F, ASHPOLE N, et al. Insulin-like growth factor-1 in CNS and cerebrovascular aging[J]. Front Aging Neurosci, 2013, 5: 27.
|
18 |
GEYTER D D, STOOP W, SARRE S, et al. Neuroprotective efficacy of subcutaneous insulin-like growth factor-Ⅰ administration in normotensive and hypertensive rats with an ischemic stroke[J]. Neuroscience, 2013, 250: 253-262.
|
19 |
DIK M G, PLUIJM S M, JONKER C, et al. Insulin-like growth factor Ⅰ (IGF-Ⅰ) and cognitive decline in older persons[J].Neurobiol Aging,2003,24(4):573-581.
|
20 |
CALVO D, GUNSTAD J, MILLER L A, et al. Higher serum insulin-like growth factor-1 is associated with better cognitive performance in persons with mild cognitive impairment[J]. Psychogeriatrics,2013,13(3): 170-174.
|
21 |
ONG L K, CHOW W Z, TEBAY C, et al. Growth hormone improves cognitive function after experimental stroke[J]. Stroke, 2018, 49(5): 1257-1266.
|
22 |
TSAI C L, HUANG T H, TSAI M C. Neurocognitive performances of visuospatial attention and the correlations with metabolic and inflammatory biomarkers in adults with obesity[J]. Exp Physiol, 2017, 102(12): 1683-1699.
|
23 |
ZHANG F, WANG S P, SIGNORE A P, et al. Neuroprotective effects of leptin against ischemic injury induced by oxygen-glucose deprivation and transient cerebral ischemia[J]. Stroke, 2007, 38(8): 2329-2336.
|
24 |
MATOCHIK J A, LONDON E D, YILDIZ B O,et al. Effect of leptin replacement on brain structure in genetically leptin-deficient adults[J]. J Clin Endocrinol Metab, 2005, 90(5): 2851-2854.
|
25 |
PANNACCIULLI N, LE D S, CHEN K W, et al. Relationships between plasma leptin concentrations and human brain structure: a voxel-based morphometric study[J]. Neurosci Lett, 2007, 412(3): 248-253.
|
26 |
OOMURA Y, HORI N, SHIRAISHI T, et al. Leptin facilitates learning and memory performance and enhances hippocampal CA1 long-term potentiation and CaMK Ⅱ phosphorylation in rats[J]. Peptides, 2006, 27(11): 2738-2749.
|
27 |
FANTUZZI G, FAGGIONI R. Leptin in the regulation of immunity, inflammation, and hematopoiesis[J]. J Leukoc Biol, 2000, 68(4): 437-446.
|
28 |
TANG C H, LU D Y, YANG R S, et al. Leptin-induced IL-6 production is mediated by leptin receptor, insulin receptor substrate-1,phosphatidylinositol 3- kinase, Akt, NF-kappaB, and p300 pathway in microglia[J]. J Immunol, 2007, 179(2): 1292-1302.
|
29 |
DU Y, SONG Y F, ZHANG X J, et al. Leptin receptor deficiency protects mice against chronic cerebral hypoperfusion-induced neuroinflammation and white matter lesions[J]. Mediators Inflamm, 2020, 2020: 7974537.
|
30 |
LI X L, AOU S, OOMURA Y, et al. Impairment of long-term potentiation and spatial memory in leptin receptor-deficient rodents[J]. Neuroscience, 2002, 113(3): 607-615.
|
31 |
ZEKI AL HAZZOURI A, STONE K L, HAAN M N, et al. Leptin, mild cognitive impairment, and dementia among elderly women[J]. J Gerontol A Biol Sci Med Sci, 2013, 68(2): 175-180.
|
32 |
BEDNARSKA-MAKARUK M, GRABAN A, WIŚNIEWSKA A, et al. Association of adiponectin, leptin and resistin with inflammatory markers and obesity in dementia[J]. Biogerontology, 2017, 18(4): 561-580.
|
33 |
赵建华, 田小军, 刘艳霞, 等. 非痴呆型血管性认知功能障碍患者血清瘦素水平与执行功能的关系[J]. 中国老年学杂志, 2012, 32(15)3156-3158
|
34 |
邓玉燕. 血清瘦素与脑梗死后认知障碍的研究[D]. 长春: 吉林大学,2019.
|
35 |
LIU M, ZHOU K G, LI H L, et al. Potential of serum metabolites for diagnosing post-stroke cognitive impairment[J]. Mol Biosyst, 2015, 11(12): 3287-3296.
|
36 |
COGO A, MANGIN G, MAÏER B, et al. Increased serum QUIN/KYNA is a reliable biomarker of post-stroke cognitive decline[J]. Mol Neurodegener, 2021, 16(1): 7.
|
37 |
陈 爽. 血浆代谢物与血管性认知功能障碍的相关性研究[D]. 大连: 大连医科大学,2020.
|
38 |
LIU Y, CHAN D K Y, THALAMUTHU A, et al. Plasma lipidomic biomarker analysis reveals distinct lipid changes in vascular dementia[J]. Comput Struct Biotechnol J, 2020, 18: 1613-1624.
|
39 |
黄晓芸, 刘 军, 黄凯帆, 等. 血管性认知障碍患者血清脂蛋白相关磷脂酶A2水平变化及其对认知障碍的预测价值[J]. 新乡医学院学报, 2021, 38(1): 31-35,40.
|
40 |
OGBONNAYA E S, CLARKE G, SHANAHAN F, et al. Adult hippocampal neurogenesis is regulated by the microbiome[J]. Biol Psychiatry, 2015, 78(4): e7-e9.
|
41 |
CHEN R Z, XU Y, WU P, et al. Transplantation of fecal microbiota rich in short chain fatty acids and butyric acid treat cerebral ischemic stroke by regulating gut microbiota[J]. Pharmacol Res, 2019, 148: 104403.
|
42 |
LING Y, GONG T Y, ZHANG J M, et al. Gut microbiome signatures are biomarkers for cognitive impairment in patients with ischemic stroke[J]. Front Aging Neurosci, 2020, 12: 511562.
|
43 |
MATTSSON N, ANDREASSON U, ZETTERBERG H, et al. Association of plasma neurofilament light with neurodegeneration in patients with alzheimer disease[J]. JAMA Neurol, 2017,74(5): 557-566.
|
44 |
DUERING M, KONIECZNY M J, TIEDT S, et al. Serum neurofilament light chain levels are related to small vessel disease burden[J]. J Stroke, 2018, 20(2): 228-238.
|
45 |
PETERS N, VAN LEIJSEN E, TULADHAR A M, et al. Serum neurofilament light chain is associated with incident lacunes in progressive cerebral small vessel disease[J]. J Stroke, 2020, 22(3): 369-376.
|
46 |
MA W B, ZHANG J J, XU J L, et al. Elevated levels of serum neurofilament light chain associated with cognitive impairment in vascular dementia[J]. Dis Markers, 2020, 2020: 6612871.
|
47 |
HOYER-KIMURA C, KONHILAS J P, MANSOUR H M, et al. Neurofilament light: a possible prognostic biomarker for treatment of vascular contributions to cognitive impairment and dementia[J]. J Neuroinflammation, 2021, 18(1): 236.
|
48 |
PAN P, MA Z N, ZHANG Z, et al. Acupuncture can regulate the peripheral immune cell spectrum and inflammatory environment of the vascular dementia rat, and improve the cognitive dysfunction of the rats[J]. Front Aging Neurosci, 2021, 13: 706834.
|
49 |
ZHI H, WANG Y, CHANG S C, et al. Acupuncture can regulate the distribution of lymphocyte subsets and the levels of inflammatory cytokines in patients with mild to moderate vascular dementia[J]. Front Aging Neurosci, 2021, 13: 747673.
|
50 |
HILAL S, IKRAM M A, VERBEEK M M, et al. C-reactive protein, plasma amyloid-β levels, and their interaction with magnetic resonance imaging markers[J]. Stroke, 2018, 49(11): 2692-2698.
|
51 |
RAVAGLIA G, FORTI P, MAIOLI F, et al. Blood inflammatory markers and risk of dementia: the Conselice Study of Brain Aging[J]. Neurobiol Aging, 2007, 28(12): 1810-1820.
|
52 |
SINGH-MANOUX A, DUGRAVOT A, BRUNNER E,et al. Interleukin-6 and C-reactive protein as predictors of cognitive decline in late midlife[J]. Neurology, 2014, 83(6): 486-493.
|
53 |
BJERKE M, JONSSON M, NORDLUND A, et al. Cerebrovascular biomarker profile is related to white matter disease and ventricular dilation in a LADIS substudy[J].Dement Geriatr Cogn Dis Extra, 2014, 4(3): 385-394.
|
54 |
CANDELARIO-JALIL E, THOMPSON J, TAHERI S,et al. Matrix metalloproteinases are associated with increased blood-brain barrier opening in vascular cognitive impairment[J]. Stroke, 2011, 42(5):1345-1350.
|
55 |
DUITS F H, HERNANDEZ-GUILLAMON M, MONTANER J, et al. Matrix metalloproteinases in Alzheimer’s disease and concurrent cerebral microbleeds[J].J Alzheimers Dis,2015,48(3): 711-720.
|
56 |
DERA H A. Neuroprotective effect of resveratrol against late cerebral ischemia reperfusion induced oxidative stress damage involves upregulation of osteopontin and inhibition of interleukin-1beta[J]. J Physiol Pharmacol, 2017, 68(1): 47-56.
|
57 |
CHAI Y L, CHONG J R, RAQUIB A R, et al. Plasma osteopontin as a biomarker of Alzheimer’s disease and vascular cognitive impairment[J]. Sci Rep,2021,11(1): 4010.
|
58 |
雷佳慧, 谢 晶, 顾文博, 等.纤维蛋白原及D-二聚体在哮喘-慢性阻塞性肺疾病重叠患者的临床研究[J].中国实用内科杂志,2021,41(3): 219-223.
|
59 |
VAN OIJEN M, WITTEMAN J C, HOFMAN A,et al.Fibrinogen is associated with an increased risk of Alzheimer disease and vascular dementia[J]. Stroke, 2005, 36(12): 2637-2641.
|
60 |
STOTT D J, SPILG E, CAMPBELL A M, et al. Haemostasis in ischaemic stroke and vascular dementia[J]. Blood Coagul Fibrinolysis,2001,12(8): 651-657.
|
61 |
SCHNEIDER J A, WILSON R S, BIENIAS J L,et al. Cerebral infarctions and the likelihood of dementia from Alzheimer disease pathology[J]. Neurology,2004, 62(7): 1148-1155.
|
62 |
CARCAILLON L, GAUSSEM P, DUCIMETIÈRE P, et al. Elevated plasma fibrin D-dimer as a risk factor for vascular dementia: the Three-City cohort study[J]. J Thromb Haemost, 2009, 7(12): 1972-1978.
|