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Electrochemical cardiovascular platforms: Current state of the art and beyond
Sabine Szunerits1, Vladyslav Mishyn1, Iwona Grabowska2
1Univ. Lille, CNRS, Centrale Lille, ISEN, Univ. Valenciennes, UMR 8520-IEMN, F-59000 Lille, France.
Insights
Cardiovascular diseases (CVD) are a leading cause of death. This review explores advanced electrochemical biosensors for rapid, accurate detection of cardiac biomarkers, improving acute coronary syndrome diagnosis and patient outcomes.
Area of Science:
- Biomedical Engineering
- Clinical Diagnostics
- Cardiology
Background:
- Cardiovascular diseases (CVD) are a major global health concern, causing significant mortality and morbidity.
- Acute coronary syndrome (ACS) is a common emergency admission, where timely diagnosis is critical for prognosis.
- Current biochemical diagnostic methods for CVDs face challenges in speed, cost, and accessibility.
Purpose of the Study:
- To review the current state of electrochemical biosensor development for cardiac biomarker detection.
- To highlight the advantages of electrochemical biosensors for point-of-care testing in cardiovascular diagnostics.
- To discuss the potential of these biosensors in improving the management of ACS and other CVDs.
Main Methods:
- Review of existing literature on cardiac electrochemical biosensors.
- Analysis of sensor platforms for detecting biomarkers such as troponin, BNP, and N-terminal proBNP.
- Evaluation of sensor characteristics for rapid, accurate, and cost-effective point-of-care applications.
Main Results:
- Electrochemical biosensors offer rapid, sensitive, and specific detection of cardiac biomarkers.
- These platforms are scalable and cost-effective, suitable for point-of-care testing.
- Advancements in biosensor technology enable improved monitoring of cardiovascular disease onset and progression.
Conclusions:
- Electrochemical biosensors represent a significant advancement over traditional biochemical assays for CVD diagnosis.
- Their adoption can lead to faster diagnosis, reduced complications, and lower healthcare costs associated with ACS and other CVDs.
- Further development of cardiac electrochemical sensors holds great promise for revolutionizing cardiovascular disease management.
Abstract:
Cardiovascular diseases (CVD) remain the leading cause of death within industrialized nations as well as an increasing cause of mortality and morbidity in many developing countries. Smoking, alcohol consumption and increased level of blood cholesterol are the main CVD risk factors. Other factors, such as the prevalence of overweight/obesity and diabetes, have increased considerably in recent decades and are indirect causes of CVD. Among CVDs, the acute coronary syndrome (ACS) represents the most common cause of emergency hospital admission. Since the prognosis of ACS is directly associated with timely initiation of revascularization, missed, misdiagnosis or late diagnosis have unfavorable medical implications. Early ACS diagnosis can reduce complications and risk of recurrence, finally decreasing the economic burden posed on the health care system as a whole. To decrease the risk of ACS and related CVDs and to reduce associated costs to healthcare systems, a fast management of patients with chest pain has become crucial and urgent. Despite great efforts, biochemical diagnostic approaches of CVDs remain difficult and controversial medical challenges as cardiac biomarkers should be rapidly released into the blood at the time of ischemia and persistent for a sufficient length of time to allow diagnostics, with tests that should be rapid, easy to perform and relatively inexpensive. Early biomarker assessments have involved testing for the total enzyme activity of aspartate aminotransferase (AST), lactate dehydrogenase (LDH) and creatine kinase (CK), which cardiac troponins being the main accepted biomarkers for diagnosing myocardial injury and acute myocardial infarction (AMI). To allow rapid diagnosis, it is necessary to replace the traditional biochemical assays by cardiac biosensor platforms. Among the numerous of possibilities existing today, electrochemical biosensors are important players as they have many of the required characteristics for point-of-care tests. Electrochemical based cardiac biosensors are highly adapted for monitoring the onset and progress of cardiovascular diseases in a fast and accurate manner, while being cheap and scalable devices. This review outlines the state of the art in the development of cardiac electrochemical sensors for the detection of different cardiac biomarkers ranging from troponin to BNP, N-terminal proBNP, and others.
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