MRI Radiomics and Predictive Models in Assessing Ischemic Stroke Outcome-A Systematic Review

被引:25
作者
Dragos, Hanna Maria [1 ,2 ,3 ]
Stan, Adina [1 ,2 ,3 ]
Pintican, Roxana [4 ]
Feier, Diana [4 ]
Lebovici, Andrei [4 ]
Panaitescu, Paul-Stefan [5 ]
Dina, Constantin [6 ]
Strilciuc, Stefan [1 ,2 ]
Muresanu, Dafin F. [1 ,2 ,3 ]
机构
[1] Iuliu Hatieganu Univ Med & Pharm, Dept Neurosci, 8 Victor Babes St, Cluj Napoca 400012, Romania
[2] RoNeuro Inst Neurol Res & Diagnost, 37 Mircea Eliade St, Cluj Napoca 400364, Romania
[3] Emergency Cty Hosp, Neurol Dept, 43 Victor Babes St, Cluj Napoca 400347, Romania
[4] Iuliu Hatieganu Univ Med & Pharm, Dept Radiol, 3-5 Clinicilor St, Cluj Napoca 400006, Romania
[5] Iuliu Hatieganu Univ Med & Pharm, Dept Microbiol, 8 Victor Babes St, Cluj Napoca 400012, Romania
[6] Ovidius Univ, Fac Med, Dept Radiol, Constanta 900527, Romania
关键词
radiomics; ischemic stroke; predictive model; HEALTH-CARE PROFESSIONALS; SUSCEPTIBILITY VESSEL SIGN; TEXTURE ANALYSIS; COMPUTED-TOMOGRAPHY; EARLY MANAGEMENT; 2018; GUIDELINES; RISK SCORE; IMAGES; IDENTIFICATION; APPLICABILITY;
D O I
10.3390/diagnostics13050857
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Stroke is a leading cause of disability and mortality, resulting in substantial socio-economic burden for healthcare systems. With advances in artificial intelligence, visual image information can be processed into numerous quantitative features in an objective, repeatable and high-throughput fashion, in a process known as radiomics analysis (RA). Recently, investigators have attempted to apply RA to stroke neuroimaging in the hope of promoting personalized precision medicine. This review aimed to evaluate the role of RA as an adjuvant tool in the prognosis of disability after stroke. We conducted a systematic review following the PRISMA guidelines, searching PubMed and Embase using the keywords: 'magnetic resonance imaging (MRI)', 'radiomics', and 'stroke'. The PROBAST tool was used to assess the risk of bias. Radiomics quality score (RQS) was also applied to evaluate the methodological quality of radiomics studies. Of the 150 abstracts returned by electronic literature research, 6 studies fulfilled the inclusion criteria. Five studies evaluated predictive value for different predictive models (PMs). In all studies, the combined PMs consisting of clinical and radiomics features have achieved the best predictive performance compared to PMs based only on clinical or radiomics features, the results varying from an area under the ROC curve (AUC) of 0.80 (95% CI, 0.75-0.86) to an AUC of 0.92 (95% CI, 0.87-0.97). The median RQS of the included studies was 15, reflecting a moderate methodological quality. Assessing the risk of bias using PROBAST, potential high risk of bias in participants selection was identified. Our findings suggest that combined models integrating both clinical and advanced imaging variables seem to better predict the patients' disability outcome group (favorable outcome: modified Rankin scale (mRS) <= 2 and unfavorable outcome: mRS > 2) at three and six months after stroke. Although radiomics studies' findings are significant in research field, these results should be validated in multiple clinical settings in order to help clinicians to provide individual patients with optimal tailor-made treatment.
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页数:15
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