How Artificial Intelligence Can Enhance the Diagnosis of Cardiac Amyloidosis: A Review of Recent Advances and Challenges

Author:

Kamel Moaz A.1,Abbas Mohammed Tiseer1ORCID,Kanaan Christopher N.1ORCID,Awad Kamal A.1,Baba Ali Nima1,Scalia Isabel G.1ORCID,Farina Juan M.1ORCID,Pereyra Milagros1ORCID,Mahmoud Ahmed K.1ORCID,Steidley D. Eric1,Rosenthal Julie L.1,Ayoub Chadi12,Arsanjani Reza12ORCID

Affiliation:

1. Department of Cardiovascular Medicine, Mayo Clinic, Phoenix, AZ 85054, USA

2. Division of Cardiovascular Imaging, Mayo Clinic, 5777 East Mayo Boulevard, Phoenix, AZ 85054, USA

Abstract

Cardiac amyloidosis (CA) is an underdiagnosed form of infiltrative cardiomyopathy caused by abnormal amyloid fibrils deposited extracellularly in the myocardium and cardiac structures. There can be high variability in its clinical manifestations, and diagnosing CA requires expertise and often thorough evaluation; as such, the diagnosis of CA can be challenging and is often delayed. The application of artificial intelligence (AI) to different diagnostic modalities is rapidly expanding and transforming cardiovascular medicine. Advanced AI methods such as deep-learning convolutional neural networks (CNNs) may enhance the diagnostic process for CA by identifying patients at higher risk and potentially expediting the diagnosis of CA. In this review, we summarize the current state of AI applications to different diagnostic modalities used for the evaluation of CA, including their diagnostic and prognostic potential, and current challenges and limitations.

Publisher

MDPI AG

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