Literature DB >> 32488454

Novel radiomics features from CCTA images for the functional evaluation of significant ischaemic lesions based on the coronary fractional flow reserve score.

Wenchao Hu1,2, Xiangjun Wu3,4, Di Dong3,4, Long-Biao Cui1,5, Min Jiang1,2, Jibin Zhang1,2, Yabin Wang1,6, Xinjiang Wang1, Lei Gao1, Jie Tian7,8,9, Feng Cao10.   

Abstract

To explore the superiority of radiomics analysis in the diagnostic performance of coronary computed tomography angiography (CCTA) for identifying myocardial ischaemia and predicting major adverse cardiovascular events (MACE). A total of 105 lesions from 88 patients who underwent CCTA and invasive fractional flow reserve measurement were collected as the training set, and another 31 patients with CCTA and clinical outcome information were used as the validation set. Conventional CCTA features included the stenosis diameter, length, Agatston score and high-risk plaque characteristics. After extracting and selecting radiomics features, the robustness of the radiomics features was examined, and then conventional and radiomics models were established using logistic regressions. The area under the receiver operating characteristic (ROC) curve (AUC) and Net Reclassification Index (NRI) were analysed to compare the discrimination and classification abilities between the two models in both the training and validation sets. A total of 1409 radiomics features were extracted, and three wavelet features were finally screened out. The robustness test showed good stability for the refined radiomics features. Compared with the conventional model, the radiomics model displayed a significantly improved diagnostic performance in the training set (AUC 0.762 vs. 0.631, 95% confidence interval [CI] 0.671-0.853 vs. 0.519-0.742, P = 0.058) but a slightly improved diagnostic performance in the validation set (AUC 0.671 vs. 0.592, 95% CI 0.466-0.875 vs. 0.519-0.742, P = 0.448). The NRI of the radiomics model was increased in both the training and validation sets (NRI 0.198 and 0.238, respectively). Quantitative radiomics analysis was feasible and might help to improve the diagnostic performance of CCTA but is still controversial for predicting MACE.

Entities:  

Keywords:  CT angiography; Coronary artery disease; Myocardial ischaemia; Radiomics

Mesh:

Year:  2020        PMID: 32488454     DOI: 10.1007/s10554-020-01896-4

Source DB:  PubMed          Journal:  Int J Cardiovasc Imaging        ISSN: 1569-5794            Impact factor:   2.357


  45 in total

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Review 2.  Radiomics: the bridge between medical imaging and personalized medicine.

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3.  A New Approach to Predict Progression-free Survival in Stage IV EGFR-mutant NSCLC Patients with EGFR-TKI Therapy.

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Journal:  Clin Cancer Res       Date:  2018-03-21       Impact factor: 12.531

Review 4.  Radiomics: extracting more information from medical images using advanced feature analysis.

Authors:  Philippe Lambin; Emmanuel Rios-Velazquez; Ralph Leijenaar; Sara Carvalho; Ruud G P M van Stiphout; Patrick Granton; Catharina M L Zegers; Robert Gillies; Ronald Boellard; André Dekker; Hugo J W L Aerts
Journal:  Eur J Cancer       Date:  2012-01-16       Impact factor: 9.162

5.  Radiomics Features of Multiparametric MRI as Novel Prognostic Factors in Advanced Nasopharyngeal Carcinoma.

Authors:  Bin Zhang; Jie Tian; Di Dong; Dongsheng Gu; Yuhao Dong; Lu Zhang; Zhouyang Lian; Jing Liu; Xiaoning Luo; Shufang Pei; Xiaokai Mo; Wenhui Huang; Fusheng Ouyang; Baoliang Guo; Long Liang; Wenbo Chen; Changhong Liang; Shuixing Zhang
Journal:  Clin Cancer Res       Date:  2017-03-09       Impact factor: 12.531

6.  Coronary computed tomographic angiography as a gatekeeper to invasive diagnostic and surgical procedures: results from the multicenter CONFIRM (Coronary CT Angiography Evaluation for Clinical Outcomes: an International Multicenter) registry.

Authors:  Leslee J Shaw; Jörg Hausleiter; Stephan Achenbach; Mouaz Al-Mallah; Daniel S Berman; Matthew J Budoff; Fillippo Cademartiri; Tracy Q Callister; Hyuk-Jae Chang; Yong-Jin Kim; Victor Y Cheng; Benjamin J W Chow; Ricardo C Cury; Augustin J Delago; Allison L Dunning; Gudrun M Feuchtner; Martin Hadamitzky; Ronald P Karlsberg; Philipp A Kaufmann; Jonathon Leipsic; Fay Y Lin; Kavitha M Chinnaiyan; Erica Maffei; Gilbert L Raff; Todd C Villines; Troy Labounty; Millie J Gomez; James K Min
Journal:  J Am Coll Cardiol       Date:  2012-10-17       Impact factor: 24.094

7.  Quantitative measurement of lipid rich plaque by coronary computed tomography angiography: A correlation of histology in sudden cardiac death.

Authors:  Donghee Han; Sho Torii; Kazuyuki Yahagi; Fay Y Lin; Ji Hyun Lee; Asim Rizvi; Heidi Gransar; Mahn-Won Park; Hadi Mirhedayati Roudsari; Wijnand J Stuijfzand; Lohendran Baskaran; Bríain Ó Hartaigh; Hyung-Bok Park; Sang-Eun Lee; Zabiullah Ali; Robert Kutys; Hyuk-Jae Chang; James P Earls; David Fowler; Renu Virmani; James K Min
Journal:  Atherosclerosis       Date:  2018-05-21       Impact factor: 6.847

8.  Radiomic Features Are Superior to Conventional Quantitative Computed Tomographic Metrics to Identify Coronary Plaques With Napkin-Ring Sign.

Authors:  Márton Kolossváry; Júlia Karády; Bálint Szilveszter; Pieter Kitslaar; Udo Hoffmann; Béla Merkely; Pál Maurovich-Horvat
Journal:  Circ Cardiovasc Imaging       Date:  2017-12       Impact factor: 7.792

9.  Radiomics: Images Are More than Pictures, They Are Data.

Authors:  Robert J Gillies; Paul E Kinahan; Hedvig Hricak
Journal:  Radiology       Date:  2015-11-18       Impact factor: 11.105

10.  Development and validation of an individualized nomogram to identify occult peritoneal metastasis in patients with advanced gastric cancer.

Authors:  D Dong; L Tang; Z-Y Li; M-J Fang; J-B Gao; X-H Shan; X-J Ying; Y-S Sun; J Fu; X-X Wang; L-M Li; Z-H Li; D-F Zhang; Y Zhang; Z-M Li; F Shan; Z-D Bu; J Tian; J-F Ji
Journal:  Ann Oncol       Date:  2019-03-01       Impact factor: 32.976

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2.  Exploring the diagnostic effectiveness for myocardial ischaemia based on CCTA myocardial texture features.

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