论著 · 临床研究

临床-炎症联合模型预测前循环急性大血管闭塞性缺血性卒中男性患者机械取栓术后的不良预后

  • 梅子贤 ,
  • 孟旭晨 ,
  • 苏文静 ,
  • 钟伟杰 ,
  • 汤定中 ,
  • 李轶
展开
  • 1.上海交通大学医学院附属第九人民医院神经外科,上海 200011
    2.上海交通大学医学院附属第六人民医院金山分院神经内科,上海 201500
第一联系人:为共同第一作者(co-first authors)。
李 轶,主任医师,博士;电子信箱:snailliyi@163.com

收稿日期: 2025-07-07

  录用日期: 2025-12-10

  网络出版日期: 2026-03-30

基金资助

上海交通大学医学院附属第九人民医院“交叉”研究基金(JYJC202131)

Clinical-inflammatory combined model for predicting poor prognosis in male patients with anterior circulation acute ischemic stroke with large vessel occlusion after mechanical thrombectomy

  • Mei Zixian ,
  • Meng Xuchen ,
  • Su Wenjing ,
  • Zhong Weijie ,
  • Tang Dingzhong ,
  • Li Yi
Expand
  • 1.Department of Neurosurgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China
    2.Department of Neurology, Shanghai Sixth People's Hospital Jinshan Branch, Shanghai Jiao Tong University School of Medicine, Shanghai 201500, China
Li Yi, E-mail: snailliyi@163.com.

Received date: 2025-07-07

  Accepted date: 2025-12-10

  Online published: 2026-03-30

Supported by

Cross Disciplinary Research Fund of Shanghai Ninth People′s Hospital, Shanghai Jiao Tong University School of Medicine(JYJC202131)

摘要

目的·探讨接受机械取栓(mechanical thrombectomy,MT)治疗的前循环急性大血管闭塞性缺血性卒中(acute ischemic stroke with large vessel occlusion,AIS-LVO)男性患者术后90 d不良预后的影响因素,并基于临床特征与炎症标志物构建预测模型。方法·回顾性纳入2022年3月—2024年6月因前循环AIS-LVO于上海市2所医院接受MT治疗的126例男性患者,以术后90 d的改良Rankin量表(modified Rankin Scale,mRS)评分为结局指标,并据此将患者分为预后良好组与预后不良组。收集并比较2组患者的基线资料、围术期临床指标、入院实验室指标。采用单因素Logistic回归模型筛选与术后90 d不良预后相关的变量,而后采用多因素Logistic回归模型确定独立预测因子并以此构建预测模型。使用受试者操作特征曲线(receiver operator characteristic curve,ROC curve)评估该预测模型的效能。结果·根据术后90 d的mRS评分,MT术后前循环AIS-LVO男性患者被分为预后良好组(n=50)和预后不良组(n=76)。对2组患者的基线资料、围术期临床指标及入院实验室指标分析后发现,入院美国国立卫生研究院卒中量表(National Institutes of Health Stroke Scale,NIHSS)评分、既往卒中或短暂性脑缺血发作(transient ischemic attack,TIA)史及中性粒细胞‑淋巴细胞比率与纤维蛋白原‑白蛋白比率乘积(neutrophil-lymphocyte ratio multiplied by fibrinogen to albumin ratio,NMF)指数等指标的组间差异具有统计学意义(P<0.05)。单因素Logistic回归分析显示,NMF指数的升高与不良预后风险增加呈强相关(OR=6.944,95% CI 2.636~22.022,P<0.001)。多因素Logistic回归分析显示NMF指数为不良预后的独立预测因子(OR=6.153,95% CI 1.939~24.563,P=0.004),其他独立预测因子包括 NIHSS评分(P=0.003)、既往卒中或TIA史(P=0.034)、急性卒中治疗Org 10172试验(Trial of Org 10172 in Acute Stroke Treatment,TOAST)分型中的大动脉粥样硬化型(P=0.032)与不明原因型(P=0.006)以及白细胞计数(P=0.027)。ROC曲线分析显示模型对不良预后的预测效能良好,曲线下面积(area under the curve,AUC)为0.889,灵敏度为70%,特异度为96%。结论·NMF指数可能是MT术后前循环AIS-LVO男性患者不良预后的潜在生物标志物,将其与入院NIHSS评分、既往卒中或TIA史、TOAST分型、白细胞计数等独立预测因子联合应用,对预测该类患者的不良预后具有较高准确性。

本文引用格式

梅子贤 , 孟旭晨 , 苏文静 , 钟伟杰 , 汤定中 , 李轶 . 临床-炎症联合模型预测前循环急性大血管闭塞性缺血性卒中男性患者机械取栓术后的不良预后[J]. 上海交通大学学报(医学版), 2026 , 46(3) : 332 -339 . DOI: 10.3969/j.issn.1674-8115.2026.03.007

Abstract

Objective ·To explore the factors influencing 90 d poor prognosis in male patients with anterior circulation acute ischemic stroke with large vessel occlusion (AIS-LVO) after mechanical thrombectomy (MT), and to develop a predictive model based on clinical characteristics and inflammatory markers. Methods ·This retrospective study enrolled 126 male patients who received MT for anterior circulation AIS-LVO at two hospitals in Shanghai from March 2022 to June 2024. The 90-day modified Rankin Scale (mRS) score after surgery was used as the outcome measure, based on which patients were divided into a good prognosis group and a poor prognosis group. Baseline data, perioperative clinical indicators, and admission laboratory indicators were collected and compared between the two groups. Univariate Logistic regression model was used to screen variables associated with 90-day poor prognosis, and multivariate Logistic regression model was subsequently performed to identify independent predictors and construct a predictive model. Receiver operator characteristic (ROC) curve was used to evaluate the performance of the predictive model. Results ·According to the 90-day mRS score, male patients with anterior circulation AIS-LVO after MT were divided into a good prognosis group (n=50) and a poor prognosis group (n=76). Analysis of baseline data, perioperative clinical indicators, and admission laboratory indicators between the two groups showed that there were statistically significant differences in admission National Institutes of Health Stroke Scale (NIHSS) score, history of previous stroke or transient ischemic attack (TIA), and neutrophil-lymphocyte ratio multiplied by fibrinogen-to-albumin ratio (NMF) index (P<0.05). Univariate Logistic regression analysis showed that an elevated NMF index was strongly correlated with an increased risk of poor prognosis (OR=6.944, 95% CI 2.636‒22.022, P<0.001). Multivariate Logistic regression analysis further confirmed that the NMF index was an independent predictor of poor prognosis (OR=6.153, 95% CI 1.939‒24.563, P=0.004). Other independent predictors included NIHSS score (P=0.003), history of previous stroke or TIA (P=0.034), large-artery atherosclerosis subtype (P=0.032) and undetermined etiology subtype (P=0.006) in the Trial of Org 10172 in Acute Stroke Treatment (TOAST) classification, and white blood cell count (P=0.027). ROC curve analysis showed that the model exhibited excellent performance in predicting poor prognosis, with an area under the curve (AUC) of 0.889, a sensitivity of 70%, and a specificity of 96%. Conclusion ·NMF index may serve as a potential biomarker for predicting poor prognosis in male patients with anterior circulation AIS-LVO after MT. When combined with independent predictors such as admission NIHSS score, history of previous stroke or TIA, TOAST classification, and white blood cell count, it has high accuracy in predicting poor prognosis in the specific patient population.

参考文献

[1] Saini V, Guada L, Yavagal D R. Global epidemiology of stroke and access to acute ischemic stroke interventions[J]. Neurology, 2021, 97(20 Suppl 2): S6-S16.
[2] Fan J H, Li X G, Yu X Y, et al. Global burden, risk factor analysis, and prediction study of ischemic stroke, 1990-2030[J]. Neurology, 2023, 101(2): e137-e150.
[3] Berkhemer O A, Fransen P S S, Beumer D, et al. A randomized trial of intraarterial treatment for acute ischemic stroke[J]. N Engl J Med, 2015, 372(1): 11-20.
[4] Goyal M, Menon B K, van Zwam W H, et al. Endovascular thrombectomy after large-vessel ischaemic stroke: a meta-analysis of individual patient data from five randomised trials[J]. Lancet, 2016, 387(10029): 1723-1731.
[5] Morsi R Z, Elfil M, Ghaith H S, et al. Endovascular thrombectomy for large ischemic strokes: a living systematic review and meta-analysis of randomized trials[J]. J Stroke, 2023, 25(2): 214-222.
[6] Brott T, Adams H P Jr, Olinger C P, et al. Measurements of acute cerebral infarction: a clinical examination scale[J]. Stroke, 1989, 20(7): 864-870.
[7] Warner J J, Harrington R A, Sacco R L, et al. Guidelines for the early management of patients with acute ischemic stroke: 2019 update to the 2018 guidelines for the early management of acute ischemic stroke[J]. Stroke, 2019, 50(12): 3331-3332.
[8] Wang Y J, Zhang S M, Zhang L Q, et al. Chinese guidelines for the secondary prevention of ischemic stroke and transient ischemic attack 2010[J]. CNS Neurosci Ther, 2012, 18(2): 93-101.
[9] Farrell B, Godwin J, Richards S, et al. The United Kingdom transient ischaemic attack (UK-TIA) aspirin trial: final results[J]. J Neurol Neurosurg Psychiatry, 1991, 54(12): 1044-1054.
[10] Banks J L, Marotta C A. Outcomes validity and reliability of the modified Rankin scale: implications for stroke clinical trials: a literature review and synthesis[J]. Stroke, 2007, 38(3): 1091-1096.
[11] Qu D, Wang L, Huo M Y, et al. Focal TLR4 activation mediates disturbed flow-induced endothelial inflammation[J]. Cardiovasc Res, 2020, 116(1): 226-236.
[12] Weinstein J R, Schulze J, Lee R V, et al. Functional polymorphisms in toll-like receptor 4 are associated with worse outcome in acute ischemic stroke patients[J]. Neuroreport, 2014, 25(8): 580-584.
[13] Marriott I, Bost K L, Huet-Hudson Y M. Sexual dimorphism in expression of receptors for bacterial lipopolysaccharides in murine macrophages: a possible mechanism for gender-based differences in endotoxic shock susceptibility[J]. J Reprod Immunol, 2006, 71(1): 12-27.
[14] Villa A, Gelosa P, Castiglioni L, et al. Sex-specific features of microglia from adult mice[J]. Cell Rep, 2018, 23(12): 3501-3511.
[15] Ahnstedt H, McCullough L D. The impact of sex and age on T cell immunity and ischemic stroke outcomes[J]. Cell Immunol, 2019, 345: 103960.
[16] Ahnstedt H, Patrizz A, Chauhan A, et al. Sex differences in T cell immune responses, gut permeability and outcome after ischemic stroke in aged mice[J]. Brain Behav Immun, 2020, 87: 556-567.
[17] DeLong J H, Ohashi S N, O′Connor K C, et al. Inflammatory responses after ischemic stroke[J]. Semin Immunopathol, 2022, 44(5): 625-648.
[18] Wang Y, Mulder I A, Westendorp W F, et al. Immunothrombosis in acute ischemic stroke[J]. Stroke, 2025, 56(2): 553-563.
[19] Sharma D, Spring K J, Bhaskar S M M. Neutrophil-lymphocyte ratio in acute ischemic stroke: immunopathology, management, and prognosis[J]. Acta Neurol Scand, 2021, 144(5): 486-499.
[20] Duan Z H, Wang H M, Wang Z, et al. Neutrophil-lymphocyte ratio predicts functional and safety outcomes after endovascular treatment for acute ischemic stroke[J]. Cerebrovasc Dis, 2018, 45(5/6): 221-227.
[21] Wang Y F, Bai L, Li X H, et al. Fibrinogen-to-albumin ratio and clinical outcomes in patients with large artery atherosclerosis stroke[J]. J Am Heart Assoc, 2023, 12(24): e030837.
[22] Sun S F, Cheng Y Q, Li L, et al. A high fibrinogen-to-albumin ratio on admission is associated with early neurological deterioration following intravenous thrombolysis in patients with acute ischemic stroke[J]. J Inflamm Res, 2024, 17: 4151-4161.
[23] Tariq M B, Lee J, McCullough L D. Sex differences in the inflammatory response to stroke[J]. Semin Immunopathol, 2023, 45(3): 295-313.
[24] Diener H C, Hankey G J. Primary and secondary prevention of ischemic stroke and cerebral hemorrhage JACC focus seminar[J]. J Am Coll Cardiol, 2020, 75(15): 1804-1818.
[25] Zaidat O O, Yoo A J, Khatri P, et al. Recommendations on angiographic revascularization grading standards for acute ischemic stroke: a consensus statement[J]. Stroke, 2013, 44(9): 2650-2663.
[26] LeCouffe N E, Kappelhof M, Treurniet K M, et al. 2B, 2C, or 3: what should be the angiographic target for endovascular treatment in ischemic stroke [J]. Stroke, 2020, 51(6): 1790-1796.
[27] Kwah L K, Diong J. National institutes of health stroke scale (NIHSS)[J]. J Physiother, 2014, 60(1): 61.
[28] Mohan K M, Wolfe C D, Rudd A G, et al. Risk and cumulative risk of stroke recurrence: a systematic review and meta-analysis[J]. Stroke, 2011, 42(5): 1489-1494.
[29] Touzé E, Varenne O, Chatellier G, et al. Risk of myocardial infarction and vascular death after transient ischemic attack and ischemic stroke: a systematic review and meta-analysis[J]. Stroke, 2005, 36(12): 2748-2755.
[30] Cao J Y, Roth S, Zhang S J, et al. DNA-sensing inflammasomes cause recurrent atherosclerotic stroke[J]. Nature, 2024, 633(8029): 433-441.
[31] Kang L J, Yu H L, Yang X, et al. Neutrophil extracellular traps released by neutrophils impair revascularization and vascular remodeling after stroke[J]. Nat Commun, 2020, 11(1): 2488.
[32] Huo X C, Sun D P, Raynald, et al. Endovascular treatment in acute ischemic stroke with large vessel occlusion according to different stroke subtypes: data from ANGEL-ACT registry[J]. Neurol Ther, 2022, 11(1): 151-165.
[33] Grau A J, Weimar C, Buggle F, et al. Risk factors, outcome, and treatment in subtypes of ischemic stroke: the German stroke data bank[J]. Stroke, 2001, 32(11): 2559-2566.
[34] Dawson S L, Manktelow B N, Robinson T G, et al. Which parameters of beat-to-beat blood pressure and variability best predict early outcome after acute ischemic stroke [J]. Stroke, 2000, 31(2): 463-468.
[35] Tikhonoff V, Zhang H F, Richart T, et al. Blood pressure as a prognostic factor after acute stroke[J]. Lancet Neurol, 2009, 8(10): 938-948.
[36] Willmot M, Leonardi-Bee J, Bath P M. High blood pressure in acute stroke and subsequent outcome: a systematic review[J]. Hypertension, 2004, 43(1): 18-24.
[37] Ferrari F, Villa R F. Brain bioenergetics in chronic hypertension: risk factor for acute ischemic stroke[J]. Biochem Pharmacol, 2022, 205: 115260.
[38] Martin S S, Aday A W, Almarzooq Z I, et al. 2024 Heart Disease And Stroke Statistics: a report of US and global data from the American Heart Association[J]. Circulation, 2024, 149(8): e347-e913.
[39] Henderson E, Rodriguez Guerrero L A, Continente X, et al. Measurement of airborne nicotine, as a marker of secondhand smoke exposure, in homes with residents who smoke in 9 European countries[J]. Environ Res, 2023, 219: 115118.
[40] Larsson S C, Wallin A, Wolk A, et al. Differing association of alcohol consumption with different stroke types: a systematic review and meta-analysis[J]. BMC Med, 2016, 14(1): 178.
文章导航

/