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Artificial Intelligence in Cardiovascular Health: Insights into Post-COVID Public Health Challenges
Zayera Naushad1, Jaya Malik1, Abhishek Kumar Mishra1
1Department of Biotechnology and Microbiology, School of Sciences, Noida International University, GautamBudh Nagar, Uttar Pradesh, 201308, India.
Insights
Cardiovascular diseases (CVDs) are a major global health issue, exacerbated by COVID-19. Artificial intelligence (AI) offers advanced solutions for risk prediction, diagnosis, and management of these conditions, improving patient outcomes.
Area of Science:
- Cardiology
- Public Health
- Artificial Intelligence
Background:
- Cardiovascular diseases (CVDs) remain the leading cause of global morbidity and mortality.
- Risk factors like diabetes, hypertension, obesity, and smoking exacerbate CVDs.
- The COVID-19 pandemic revealed a strong link between viral infections and cardiovascular health, with SARS-CoV-2 causing myocardial injury, endothelial dysfunction, and thrombosis.
Purpose of the Study:
- To explore the impact of COVID-19 on cardiovascular health.
- To investigate the role of artificial intelligence (AI) in addressing cardiovascular complications.
- To highlight AI's potential in cardiovascular medicine and public health strategies.
Main Methods:
- Review of current literature on COVID-19 and cardiovascular complications.
- Analysis of artificial intelligence (AI) applications including machine learning (ML) and deep learning (DL).
- Examination of AI's role in risk prediction, biomarker discovery, medical imaging, remote monitoring, and public health surveillance.
Main Results:
- SARS-CoV-2 infection is linked to increased severity of CVD outcomes and persistent complications in Long COVID.
- AI enhances cardiovascular risk prediction, biomarker discovery, and imaging analysis (echocardiography, CT, MRI).
- AI-powered remote monitoring and decision support systems improve diagnosis, personalized treatment, and health equity.
Conclusions:
- Continued research and public health strategies are crucial for mitigating long-term cardiovascular risks post-COVID.
- AI integration in cardiovascular medicine and public health provides data-driven solutions for managing post-COVID complications.
- AI offers efficient, patient-centered approaches to improve cardiovascular health and outcomes.
Abstract:
Cardiovascular diseases (CVDs) continue to be the topmost cause of the worldwide morbidity and mortality. Risk factors such as diabetes, hypertension, obesity and smoking are significantly worsening the situation. The COVID-19 pandemic has powerfully highlighted the undeniable connection between viral infections and cardiovascular health. Current literature highlights that SARS-CoV-2 contributes to myocardial injury, endothelial dysfunction, thrombosis, and systemic inflammation, increasing the severity of CVD outcomes. Long COVID has also been associated with persistent cardiovascular complications, including myocarditis, arrhythmias, thromboembolic events, and accelerated atherosclerosis. Addressing these challenges requires continued research and public health strategies to mitigate long-term risks. Artificial intelligence (AI) is changing cardiovascular medicine and community health through progressive machine learning (ML) and deep learning (DL) applications. AI enhances risk prediction, facilitates biomarker discovery, and improves imaging techniques such as echocardiography, CT, and MRI for detecting coronary artery disease and myocardial injury on time. Remote monitoring and wearable devices powered by AI enable real-time cardiovascular assessment and personalized treatment. In public health, AI optimizes disease surveillance, epidemiological modeling, and healthcare resource allocation. AI-driven clinical decision support systems improve diagnostic accuracy and health equity by enabling targeted interventions. The integration of AI into cardiovascular medicine and public health offers data-driven, efficient, and patient-centered solutions to mitigate post-COVID cardiovascular complications.
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