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July 10, 2017Scientific Reports55 citationsOpen Access

Takotsubo Syndrome – Predictable from brain imaging data

CKCarina KleinTHThierry HiestandJGJelena-Rima Ghadri

Structured PICO

Does multivariate pattern analysis of multimodal brain MRI data accurately identify patients with Takotsubo syndrome compared to healthy controls?

P
Population
Takotsubo syndrome (TTS) patients and age- and gender-matched healthy control subjects
I
Intervention
Multimodal magnetic resonance imaging (MRI) of the human brain analyzed with machine learning
C
Comparator
Age- and gender-matched healthy control subjects
O
Outcome
Prediction accuracy of TTS based on brain structural and functional alterationssurrogate

Machine learning analysis of multimodal brain MRI data can distinguish Takotsubo syndrome patients from healthy controls with over 82% accuracy, supporting the concept of a brain-heart interaction in TTS.

Abstract

Takotsubo syndrome (TTS) is characterized by acute left ventricular dysfunction, with a hospital-mortality rate similar to acute coronary syndrome (ACS). However, the aetiology of TTS is still unknown. In the present study, a multivariate pattern analysis using machine learning with multimodal magnetic resonance imaging (MRI) data of the human brain of TTS patients and age- and gender-matched healthy control subjects was performed. We found consistent structural and functional alterations in TTS patients compared to the control group. In particular, anatomical and neurophysiological measures from brain regions constituting the emotional-autonomic control system contributed to a prediction accuracy of more than 82%. Thus, our findings demonstrate homogeneous neuronal alterations in TTS patients and substantiate the importance of the concept of a brain-heart interaction in TTS.

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Cite This Study

Klein et al. (2017) studied this question.

synapsesocial.com/papers/6a757e3c84fffe492cdbe6e9https://doi.org/10.1038/s41598-017-05592-7
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