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  1. Pubblicazioni

Exploring the EVolution in PrognOstic CapabiLity of MUltisequence Cardiac MagneTIc ResOnance in PatieNts Affected by Takotsubo Cardiomyopathy Based on Machine Learning Analysis: Design and Rationale of the EVOLUTION Study

Articolo
Data di Pubblicazione:
2023
Citazione:
Exploring the EVolution in PrognOstic CapabiLity of MUltisequence Cardiac MagneTIc ResOnance in PatieNts Affected by Takotsubo Cardiomyopathy Based on Machine Learning Analysis: Design and Rationale of the EVOLUTION Study / Cau, R.; Muscogiuri, G.; Pisu, F.; Gatti, M.; Velthuis, B.; Loewe, C.; Cademartiri, F.; Pontone, G.; Montisci, R.; Guglielmo, M.; Sironi, S.; Esposito, A.; Francone, M.; Dacher, N.; Peebles, C.; Bastarrika, G.; Salgado, R.; Saba, L.. - In: JOURNAL OF THORACIC IMAGING. - ISSN 0883-5993. - 38:6(2023), pp. 391-398. [10.1097/RTI.0000000000000709]
Abstract:
Purpose: Takotsubo cardiomyopathy (TTC) is a transient but severe acute myocardial dysfunction with a wide range of outcomes from favorable to life-threatening. The current risk stratification scores of TTC patients do not include cardiac magnetic resonance (CMR) parameters. To date, it is still unknown whether and how clinical, trans-thoracic echocardiography (TTE), and CMR data can be integrated to improve risk stratification.Methods: EVOLUTION (Exploring the eVolution in prognOstic capabiLity of mUlti-sequence cardiac magneTIc resOnance in patieNts affected by Takotsubo cardiomyopathy) is a multicenter, international registry of TTC patients who will undergo a clinical, TTE, and CMR evaluation. Clinical data including demographics, risk factors, comorbidities, laboratory values, ECG, and results from TTE and CMR analysis will be collected, and each patient will be followed-up for in-hospital and long-term outcomes. Clinical outcome measures during hospitalization will include cardiovascular death, pulmonary edema, arrhythmias, stroke, or transient ischemic attack. Clinical long-term outcome measures will include cardiovascular death, pulmonary edema, heart failure, arrhythmias, sudden cardiac death, and major adverse cardiac and cerebrovascular events defined as a composite endpoint of death from any cause, myocardial infarction, recurrence of TTC, transient ischemic attack, and stroke. We will develop a comprehensive clinical and imaging score that predicts TTC outcomes and test the value of machine learning models, incorporating clinical and imaging parameters to predict prognosis.Conclusions: The main goal of the study is to develop a comprehensive clinical and imaging score, that includes TTE and CMR data, in a large cohort of TTC patients for risk stratification and outcome prediction as a basis for possible changes in patient management.
Tipologia CRIS:
1.1 Articolo in rivista
Elenco autori:
Cau, R.; Muscogiuri, G.; Pisu, F.; Gatti, M.; Velthuis, B.; Loewe, C.; Cademartiri, F.; Pontone, G.; Montisci, R.; Guglielmo, M.; Sironi, S.; Esposito, A.; Francone, M.; Dacher, N.; Peebles, C.; Bastarrika, G.; Salgado, R.; Saba, L.
Autori di Ateneo:
ESPOSITO ANTONIO
Link alla scheda completa:
https://iris.unisr.it/handle/20.500.11768/155501
Pubblicato in:
JOURNAL OF THORACIC IMAGING
Journal
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https://journals.lww.com/thoracicimaging/fulltext/2023/11000/exploring_the_evolution_in_prognostic_capability.8.aspx
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