1 |
Favate AS, Younger DS. Epidemiology of ischemic stroke [J]. Neurol Clin, 2016, 34(4): 967-980.
|
2 |
Pan Y, Song T, Chen R, et al. Socioeconomic deprivation and mortality in people after ischemic stroke: the China National Stroke Registry [J]. Int J Stroke, 2016, 11(5): 557-564.
|
3 |
Virani SS, Alonso A, Aparicio HJ, et al. Heart disease and stroke statistics-2021 update: a report from the American Heart Association [J]. Circulation, 2021, 143(8): e254-e743.
|
4 |
马林, 巢宝华, 曹雷, 等. 2007—2017年中国脑卒中流行趋势及特征分析 [J/OL]. 中华脑血管病杂志(电子版), 2020, 14(5): 253-258.
|
5 |
樊泽新, 刘广志. 缺血性卒中免疫学研究进展 [J]. 中国现代神经疾病杂志, 2022, 22(1): 46-53.
|
6 |
Demaerschalk BM, Hwang HM, Leung G. US cost burden of ischemic stroke: a systematic literature review [J]. Am J Manag Care, 2010, 16(7): 525-533.
|
7 |
Ma Z, Deng G, Meng Z, et al. Hospitalization expenditures and out-of-pocket expenses in patients with stroke in Northeast China, 2015-2017: a pooled cross-sectional study [J]. Front Pharmacol, 2020, 11: 596183.
|
8 |
Jovin TG, Chamorro A, Cobo E, et al. Thrombectomy within 8 hours after symptom onset in ischemic stroke [J]. N Engl J Med, 2015, 372(24): 2296-2306.
|
9 |
Balodis A, Radzina M, Miglane E, et al. Endovascular thrombectomy in anterior circulation stroke and clinical value of bridging with intravenous thrombolysis [J]. Acta Radiol, 2019, 60(3): 308-314.
|
10 |
Flottmann F, Leischner H, Broocks G, et al. Recanalization rate per retrieval attempt in mechanical thrombectomy for acute ischemic stroke [J]. Stroke, 2018, 49(10): 2523-2525.
|
11 |
Leischner H, Flottmann F, Hanning U, et al. Reasons for failed endovascular recanalization attempts in stroke patients [J]. J Neurointerv Surg, 2019, 11(5): 439-442.
|
12 |
Bustamante A, Simats A, Vilar-Bergua A, et al. Blood/brain biomarkers of inflammation after stroke and their association with outcome: from C-reactive protein to damage-associated molecular patterns [J]. Neurotherapeutics, 2016, 13(4): 671-684.
|
13 |
Gauberti M, De Lizarrondo SM, Vivien D. The "inflammatory penumbra" in ischemic stroke: from clinical data to experimental evidence [J]. Eur Stroke J, 2016, 1(1): 20-27.
|
14 |
Xie L, Li W, Hersh J, et al. Experimental ischemic stroke induces long-term T cell activation in the brain [J]. J Cereb Blood Flow Metab, 2019, 39(11): 2268-2276.
|
15 |
Santamaría-Cadavid M, Rodríguez-Castro E, Rodríguez-Yáñez M, et al. Regulatory T cells participate in the recovery of ischemic stroke patients [J]. BMC Neurol, 2020, 20(1): 68.
|
16 |
Diaz Heijtz R, Wang S, Anuar F, et al. Normal gut microbiota modulates brain development and behavior [J]. Proc Natl Acad Sci U S A, 2011, 108(7): 3047-3052.
|
17 |
Mohajeri MH, La Fata G, Steinert RE, et al. Relationship between the gut microbiome and brain function [J]. Nutr Rev, 2018, 76(7): 481-496.
|
18 |
Forsythe P, Bienenstock J, Kunze WA. Vagal pathways for microbiome-brain-gut axis communication [J]. Adv Exp Med Biol, 2014, 817: 115-133.
|
19 |
Fung TC, Olson CA, Hsiao EY. Interactions between the microbiota, immune and nervous systems in health and disease [J]. Nat Neurosci, 2017, 20(2): 145-155.
|
20 |
Singh A, Zapata RC, Pezeshki A, et al. Host genetics and diet composition interact to modulate gut microbiota and predisposition to metabolic syndrome in spontaneously hypertensive stroke-prone rats [J]. FASEB J, 2019, 33(6): 6748-6766.
|
21 |
Dan X, Mushi Z, Baili W, et al. Differential analysis of hypertension-associated intestinal microbiota [J]. Int J Med Sci, 2019, 16(6): 872-881.
|
22 |
Calderón-Pérez L, Llauradó E, Companys J, et al. Interplay between dietary phenolic compound intake and the human gut microbiome in hypertension: a cross-sectional study [J]. Food Chem, 2021, 344: 128567.
|
23 |
Yang T, Santisteban MM, Rodriguez V, et al. Gut dysbiosis is linked to hypertension [J]. Hypertension, 2015, 65(6): 1331-1340.
|
24 |
Zhang Z, Zhao J, Tian C, et al. Targeting the gut microbiota to investigate the mechanism of lactulose in negating the effects of a high-salt diet on hypertension [J]. Mol Nutr Food Res, 2019, 63(11): e1800941.
|
25 |
Bier A, Braun T, Khasbab R, et al. A high salt diet modulates the gut microbiota and short chain fatty acids production in a salt-sensitive hypertension rat model [J]. Nutrients, 2018, 10(9): 1154.
|
26 |
Chang Y, Chen Y, Zhou Q, et al. Short-chain fatty acids accompanying changes in the gut microbiome contribute to the development of hypertension in patients with preeclampsia [J]. Clin Sci (Lond), 2020, 134(2): 289-302.
|
27 |
陈杰, 陈宣颖, 孙立勤, 等. 宁波地区盐敏感性高血压患者基于16s rRNA检测肠道菌群的特征分析 [J]. 现代实用医学, 2021, 33(11): 1458-14591458-1459, 1463, F0004.
|
28 |
Dalile B, Van Oudenhove L, Vervliet B, et al. The role of short-chain fatty acids in microbiota-gut-brain communication [J]. Nat Rev Gastroenterol Hepatol, 2019, 16(8): 461-478.
|
29 |
Grylls A, Seidler K, Neil J. Link between microbiota and hypertension: focus on LPS/TLR4 pathway in endothelial dysfunction and vascular inflammation, and therapeutic implication of probiotics [J]. Biomed Pharmacother, 2021, 137: 111334.
|
30 |
Li J, Zhao F, Wang Y, et al. Gut microbiota dysbiosis contributes to the development of hypertension [J]. Microbiome, 2017, 5(1): 14.
|
31 |
Nie J, Xie L, Zhao BX, et al. Serum trimethylamine N-Oxide concentration is positively associated with first stroke in hypertensive patients [J]. Stroke, 2018, 49(9): 2021-2028.
|
32 |
Meschia JF, Bushnell C, Boden-Albala B, et al. Guidelines for the primary prevention of stroke: a statement for healthcare professionals from the American Heart Association/American Stroke Association [J]. Stroke, 2014, 45(12): 3754-3832.
|
33 |
Mitchell AB, Cole JW, Mcardle PF, et al. Obesity increases risk of ischemic stroke in young adults [J]. Stroke, 2015, 46(6): 1690-1692.
|
34 |
Park H, Lee HW, Yoo J, et al. Body mass index and prognosis in ischemic stroke patients with type 2 diabetes mellitus [J]. Front Neurol, 2019, 10: 563.
|
35 |
Bailey RR, Serra MC, Mcgrath RP. Obesity and diabetes are jointly associated with functional disability in stroke survivors [J]. Disabil Health J, 2020, 13(3): 100914.
|
36 |
Deutsch C, Portik-Dobos V, Smith AD, et al. Diet-induced obesity causes cerebral vessel remodeling and increases the damage caused by ischemic stroke [J]. Microvasc Res, 2009, 78(1): 100-106.
|
37 |
Sedighi M, Razavi S, Navab-Moghadam F, et al. Comparison of gut microbiota in adult patients with type 2 diabetes and healthy individuals [J]. Microb Pathog, 2017, 111: 362-369.
|
38 |
Pellegrini S, Sordi V, Bolla AM, et al. Duodenal mucosa of patients with type 1 diabetes shows distinctive inflammatory profile and microbiota [J]. J Clin Endocrinol Metab, 2017, 102(5): 1468-1477.
|
39 |
Mønsted MØ, Falck ND, Pedersen K, et al. Intestinal permeability in type 1 diabetes: an updated comprehensive overview [J]. J Autoimmun, 2021, 122: 102674.
|
40 |
Turnbaugh PJ, Ley RE, Mahowald MA, et al. An obesity-associated gut microbiome with increased capacity for energy harvest [J]. Nature, 2006, 444(7122): 1027-1031.
|
41 |
Oberbach A, Haange SB, Schlichting N, et al. Metabolic in vivo labeling highlights differences of metabolically active microbes from the mucosal gastrointestinal microbiome between high-fat and normal chow diet [J]. J Proteome Res, 2017, 16(4): 1593-1604.
|
42 |
Nagpal R, Newman TM, Wang S, et al. Obesity-linked gut microbiome dysbiosis associated with derangements in gut permeability and intestinal cellular homeostasis independent of diet [J]. J Diabetes Res, 2018, 2018: 3462092.
|
43 |
Beaumont M, Goodrich JK, Jackson MA, et al. Heritable components of the human fecal microbiome are associated with visceral fat [J]. Genome Biol, 2016, 17(1): 189.
|
44 |
Liu R, Hong J, Xu X, et al. Gut microbiome and serum metabolome alterations in obesity and after weight-loss intervention [J]. Nat Med, 2017, 23(7): 859-868.
|
45 |
赵丹. 学龄前肥胖儿童肠道菌群分布特点及其相关因素分析 [J]. 中国中西医结合儿科学, 2021, 13(1): 69-71.
|
46 |
Macfarlane GT, Macfarlane S. Fermentation in the human large intestine: its physiologic consequences and the potential contribution of prebiotics [J]. J Clin Gastroenterol, 2011, 45 Suppl: S120-S127.
|
47 |
Chang PV, Hao L, Offermanns S, et al. The microbial metabolite butyrate regulates intestinal macrophage function via histone deacetylase inhibition [J]. Proc Natl Acad Sci U S A, 2014, 111(6): 2247-2252.
|
48 |
Furusawa Y, Obata Y, Fukuda S, et al. Commensal microbe-derived butyrate induces the differentiation of colonic regulatory T cells [J]. Nature, 2013, 504(7480): 446-450.
|
49 |
Wang H, Hou L, Kwak D, et al. Increasing regulatory t cells with interleukin-2 and interleukin-2 antibody complexes attenuates lung inflammation and heart failure progression [J]. Hypertension, 2016, 68(1): 114-122.
|
50 |
徐敏, 党少华, 辛宁. 2型糖尿病患者肠道菌群水平与IL-6、TNF-α、HOMA-IR水平的相关性 [J]. 中国民康医学, 2022, 34(10): 8-108-10, 14.
|
51 |
景乐乐, 王中群, 胡惠林. 肠道菌群代谢物TMAO对糖尿病冠状动脉钙化的预测价值 [J]. 中南医学科学杂志, 2022, 50(1): 17-20.
|
52 |
Torres-Fuentes C, Schellekens H, Dinan TG, et al. A natural solution for obesity: bioactives for the prevention and treatment of weight gain. A review [J]. Nutr Neurosci, 2015, 18(2): 49-65.
|
53 |
Perry RJ, Peng L, Barry NA, et al. Acetate mediates a microbiome-brain-β-cell axis to promote metabolic syndrome [J]. Nature, 2016, 534(7606): 213-217.
|
54 |
Kapral MK, Fang J, Alibhai SM, et al. Risk of fractures after stroke: results from the Ontario Stroke Registry [J]. Neurology, 2017, 88(1): 57-64.
|
55 |
Khan SU, Khan MZ, Khan MU, et al. Clinical and economic burden of stroke among young, midlife, and older adults in the United States, 2002-2017 [J]. Mayo Clin Proc Innov Qual Outcomes, 2021, 5(2): 431-441.
|
56 |
Spychala MS, Venna VR, Jandzinski M, et al. Age-related changes in the gut microbiota influence systemic inflammation and stroke outcome [J]. Ann Neurol, 2018, 84(1): 23-36.
|
57 |
Rahayu ES, Utami T, Mariyatun M, et al. Gut microbiota profile in healthy Indonesians [J]. World J Gastroenterol, 2019, 25(12): 1478-1491.
|
58 |
Jeffery IB, Lynch DB, O'toole PW. Composition and temporal stability of the gut microbiota in older persons [J]. ISME J, 2016, 10(1): 170-182.
|
59 |
Yu L, Meng G, Huang B, et al. A potential relationship between gut microbes and atrial fibrillation: trimethylamine N-oxide, a gut microbe-derived metabolite, facilitates the progression of atrial fibrillation [J]. Int J Cardiol, 2018, 255: 92-98.
|
60 |
Xu DJ, Wang KC, Yuan LB, et al. Compositional and functional alterations of gut microbiota in patients with stroke [J]. Nutr Metab Cardiovasc Dis, 2021, 31(12): 3434-3448.
|
61 |
Antinozzi M, Giffi M, Sini N, et al. Cigarette smoking and human gut microbiota in healthy adults: a systematic review [J]. Biomedicines, 2022, 10(2): 510.
|
62 |
Gui X, Yang Z, Li MD. Effect of cigarette smoke on gut microbiota: state of knowledge [J]. Front Physiol, 2021, 12: 673341.
|
63 |
Shanahan ER, Shah A, Koloski N, et al. Influence of cigarette smoking on the human duodenal mucosa-associated microbiota [J]. Microbiome, 2018, 6(1): 150.
|
64 |
许春平, 赵爱景, 荆晓艳, 等. 卷烟烟气对小鼠肠道菌群及口腔菌群的影响 [J]. 烟草科技, 2012, (9): 71-7481.
|
65 |
Huart J, Leenders J, Taminiau B, et al. Gut microbiota and fecal levels of short-chain fatty acids differ upon 24-hour blood pressure levels in men [J]. Hypertension, 2019, 74(4): 1005-1013.
|
66 |
Robles-Vera I, Toral M, De La Visitación N, et al. Probiotics prevent dysbiosis and the rise in blood pressure in genetic hypertension: role of short-chain fatty acids [J]. Mol Nutr Food Res, 2020, 64(6): e1900616.
|
67 |
Yan X, Jin J, Su X, et al. Intestinal flora modulates blood pressure by regulating the synthesis of intestinal-derived corticosterone in high salt-induced hypertension [J]. Circ Res, 2020, 126(7): 839-853.
|
68 |
Chen Z, Guo L, Zhang Y, et al. Incorporation of therapeutically modified bacteria into gut microbiota inhibits obesity [J]. J Clin Invest, 2014, 124(8): 3391-3406.
|
69 |
Razmpoosh E, Javadi A, Ejtahed HS, et al. The effect of probiotic supplementation on glycemic control and lipid profile in patients with type 2 diabetes: a randomized placebo controlled trial [J]. Diabetes Metab Syndr, 2019, 13(1): 175-182.
|
70 |
Hoving LR, Katiraei S, Heijink M, et al. Dietary mannan oligosaccharides modulate gut microbiota, increase fecal bile acid excretion, and decrease plasma cholesterol and atherosclerosis development [J]. Mol Nutr Food Res, 2018, 62(10): e1700942.
|
71 |
Vulevic J, Juric A, Tzortzis G, et al. A mixture of trans-galactooligosaccharides reduces markers of metabolic syndrome and modulates the fecal microbiota and immune function of overweight adults [J]. J Nutr, 2013, 143(3): 324-331.
|
72 |
Lee J, D'aigle J, Atadja L, et al. Gut microbiota-derived short-chain fatty acids promote poststroke recovery in aged mice [J]. Circ Res, 2020, 127(4): 453-465.
|
73 |
Ahmadi S, Wang S, Nagpal R, et al. A human-origin probiotic cocktail ameliorates aging-related leaky gut and inflammation via modulating the microbiota/taurine/tight junction axis [J]. JCI Insight, 2020, 5(9): e132055.
|
74 |
Zhang Y, Zhang S, Li B, et al. Gut microbiota dysbiosis promotes age-related atrial fibrillation by lipopolysaccharide and glucose-induced activation of NLRP3-inflammasome [J]. Cardiovasc Res, 2022, 118(3): 785-797.
|
75 |
Chen Q, Liu M, Zhang P, et al. Fucoidan and galactooligosaccharides ameliorate high-fat diet-induced dyslipidemia in rats by modulating the gut microbiota and bile acid metabolism [J]. Nutrition, 2019, 65: 50-59.
|
76 |
Tadic M, Ivanovic B, Cuspidi C. What do we currently know about metabolic syndrome and atrial fibrillation? [J]. Clin Cardiol, 2013, 36(11): 654-662.
|