Related Experiment Video
Updated: Jul 24, 2026

Murine Short Axis Ventricular Heart Slices for Electrophysiological Studies
Published on: June 4, 2017
Brain-heart axis--Review Article
M M Manea1, M Comsa2, A Minca2
1Neurologic Clinic, National Institute of Neurology and Cerebrovascular Diseases, Bucharest, Romania; "Carol Davila" University of Medicine and Pharmacy, Bucharest, Romania.
Insights
Stroke can cause cardiac changes, including diastolic dysfunction, which predicts worse outcomes. Monitoring heart function and using NT-proBNP levels can improve stroke patient management and prognosis.
Area of Science:
- Neurocardiology
- Cardiovascular Medicine
- Neurology
Background:
- Stroke is increasingly recognized to cause cardiac alterations, including systolic and diastolic dysfunction.
- Electrocardiographic abnormalities and arrhythmias are common in stroke patients, increasing mortality risk.
- Elevated N-terminal of the prohormone brain natriuretic peptide (NT-proBNP) may indicate higher risk of cardiac arrhythmias and mortality.
Purpose of the Study:
- To review the pathological mechanisms linking heart and brain in stroke.
- To discuss the clinical implications of cardiac changes following stroke.
- To explore therapeutic strategies for managing cardiac complications in stroke patients.
Main Methods:
- Review of existing literature on stroke-induced cardiac dysfunction.
- Analysis of electrocardiographic and echocardiographic findings in stroke patients.
- Evaluation of biomarkers such as NT-proBNP for risk stratification.
Main Results:
- Ischemic stroke-induced systolic dysfunction is linked to high in-hospital mortality.
- Cardiac diastolic dysfunction is a newly identified predictor of acute cerebrovascular events.
- Increased sympathetic activity contributes to cardiac myocyte damage and enzyme release.
- Frequent ECG abnormalities include ST segment changes, tachyarrhythmias (e.g., atrial fibrillation), and bradyarrhythmias.
- High NT-proBNP levels correlate with increased risk of cardiac arrhythmias and mortality.
Conclusions:
- Continuous electrocardiographic monitoring is crucial for identifying life-threatening arrhythmias in stroke patients.
- NT-proBNP serves as a valuable discriminant marker for identifying high-risk patients.
- Understanding heart-brain interactions is vital for improving stroke patient prognosis and management.
Unlabelled:
There has been a large confirmation over the last decades that stroke may produce cardiac changes (echocardiographic, electrocardiographic, enzymatic). In ischemic stroke, systolic dysfunction is associated with a high risk of mortality during hospitalization. A recent study demonstrated that cardiac diastolic dysfunction could also accompany acute stroke besides the systolic dysfunction already pointed out by previous studies, being a predictive marker of acute cerebrovascular events. Increased sympathetic activity is contributory, inducing a reversible cardiac myocyte damage and cardiac enzyme surges. Some of the most frequent electrocardiographic abnormalities in stroke are ST segment abnormalities and various tachyarrhythmias (especially atrial fibrillation) and bradyarrhythmias. One can infer the importance of careful and continuous electrocardiographic monitoring of the stroke patient in order to identify these quite frequent electrocardiographic alterations, as it is well known that death due to cardiac arrhythmias is common among acute stroke patients. In order to increase the diagnostic yield, a high level of NTproBNP (N-terminal of the prohormone brain natriuretic peptide) may be used as a discriminant for the patients with a higher probability of cardiac arrhythmias and mortality at presentation, during hospitalization and on the long term. In such patients, cardiac monitoring techniques are more likely to reveal abnormalities. A high BNP level may have potentially important management implications as it may signal a worse prognosis and may prompt the undertaking of certain therapeutic measures. This review summarizes the possible pathological mechanisms of heart-brain connections and their clinical and therapeutical implications.
Abbreviations:
AF = atrial fibrillation, ECG = electrocardiography, HRV = heart rate variability, cTn = cardiac troponin, SAH = subarachnoid hemorrhage, CK-MB = creatine kinase-MB, BNP = brain natriuretic peptide, NT-proBNP = N-terminal of the prohormone brain natriuretic peptide, ANP = atrial natriuretic peptide, mRS = modified Rankin Scale, NIHSS = the National Institutes of Health Stroke Scale.
Related Concept Videos
Anatomy of the Heart
Overview of the Heart
The heart's structure...
Chambers of the Heart
Deoxygenated blood from the body is received in the right...
Heart Valves
The AV valves prevent the backflow of blood from the ventricles to the atria during ventricular contraction. These valves function with the assistance of the chordae tendineae and papillary muscles. When the ventricles are relaxed, the chordae tendineae are slack, allowing blood to flow from the atria into the...
Anatomy of the Heart
The heart has three layers: the innermost endocardium, the muscular myocardium, and the outer epicardium, all working together for optimal cardiac function.
Chambers of the Heart
The heart is made up of four...
Physiology of the Heart: The Cardiac Cycle
Diastole: The Relaxation Phase
During diastole, all four heart chambers relax. The atrioventricular (AV) valves open, and the semilunar valves close. This phase sees the lowest chamber pressures, promoting ventricular filling. Venous blood enters the heart through the...

