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      Network Medicine: A Clinical Approach for Precision Medicine and Personalized Therapy in Coronary Heart Disease

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          Abstract

          Early identification of coronary atherosclerotic pathogenic mechanisms is useful for predicting the risk of coronary heart disease (CHD) and future cardiac events. Epigenome changes may clarify a significant fraction of this “missing hereditability”, thus offering novel potential biomarkers for prevention and care of CHD. The rapidly growing disciplines of systems biology and network science are now poised to meet the fields of precision medicine and personalized therapy. Network medicine integrates standard clinical recording and non-invasive, advanced cardiac imaging tools with epigenetics into deep learning for in-depth CHD molecular phenotyping. This approach could potentially explore developing novel drugs from natural compounds (i.e. polyphenols, folic acid) and repurposing current drugs, such as statins and metformin. Several clinical trials have exploited epigenetic tags and epigenetic sensitive drugs both in primary and secondary prevention. Due to their stability in plasma and easiness of detection, many ongoing clinical trials are focused on the evaluation of circulating miRNAs (e.g. miR-8059 and miR-320a) in blood, in association with imaging parameters such as coronary calcifications and stenosis degree detected by coronary computed tomography angiography (CCTA), or functional parameters provided by FFR/CT and PET/CT. Although epigenetic modifications have also been prioritized through network based approaches, the whole set of molecular interactions (interactome) in CHD is still under investigation for primary prevention strategies.

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          Most cited references85

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          Emergence of scaling in random networks

          Systems as diverse as genetic networks or the World Wide Web are best described as networks with complex topology. A common property of many large networks is that the vertex connectivities follow a scale-free power-law distribution. This feature was found to be a consequence of two generic mechanisms: (i) networks expand continuously by the addition of new vertices, and (ii) new vertices attach preferentially to sites that are already well connected. A model based on these two ingredients reproduces the observed stationary scale-free distributions, which indicates that the development of large networks is governed by robust self-organizing phenomena that go beyond the particulars of the individual systems.
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            Artificial Intelligence in Precision Cardiovascular Medicine.

            Artificial intelligence (AI) is a field of computer science that aims to mimic human thought processes, learning capacity, and knowledge storage. AI techniques have been applied in cardiovascular medicine to explore novel genotypes and phenotypes in existing diseases, improve the quality of patient care, enable cost-effectiveness, and reduce readmission and mortality rates. Over the past decade, several machine-learning techniques have been used for cardiovascular disease diagnosis and prediction. Each problem requires some degree of understanding of the problem, in terms of cardiovascular medicine and statistics, to apply the optimal machine-learning algorithm. In the near future, AI will result in a paradigm shift toward precision cardiovascular medicine. The potential of AI in cardiovascular medicine is tremendous; however, ignorance of the challenges may overshadow its potential clinical impact. This paper gives a glimpse of AI's application in cardiovascular clinical care and discusses its potential role in facilitating precision cardiovascular medicine.
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              2018 AHA/ACC/AACVPR/AAPA/ABC/ACPM/ADA/AGS/APhA/ASPC/NLA/PCNA Guideline on the Management of Blood Cholesterol: Executive Summary: A Report of the American College of Cardiology/American Heart Association Task Force on Clinical Practice Guidelines

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                Author and article information

                Journal
                J Atheroscler Thromb
                J. Atheroscler. Thromb
                jat
                jat
                Journal of Atherosclerosis and Thrombosis
                Japan Atherosclerosis Society
                1340-3478
                1880-3873
                1 April 2020
                : 27
                : 4
                : 279-302
                Affiliations
                [1 ] Department of Advanced Clinical and Surgical Sciences, University of Campania “Luigi Vanvitelli”, Naples, Italy
                [2 ] Department of Precision Medicine, Section of Diagnostic Imaging, University of Campania “Luigi Vanvitelli”, Naples, Italy
                [3 ] Unit of Nuclear Medicine, A.O.R.N. Dei Colli, Monaldi Hospital, Naples, Italy
                [4 ] Department of Cardiology, A.O.R.N. Dei Colli, Monaldi Hospital, Naples, Italy
                [5 ] Clinical Department of Internal Medicine and Specialistics, Department of Advanced Clinical and Surgical Sciences, University of Campania “Luigi Vanvitelli”, Naples, Italy
                [6 ] IRCCS SDN, Naples, Italy
                Author notes
                Address for correspondence: Teresa Infante, Department of Advanced Clinical and Surgical Sciences, University of Campania “Luigi Vanvitelli”, 80138, Naples, Italy E-mail: teresa.infante@ 123456unicampania.it
                Article
                10.5551/jat.52407
                7192819
                31723086
                feed24c1-62ba-4ff9-b176-4ae05b10efab
                2020 Japan Atherosclerosis Society

                This article is distributed under the terms of the latest version of CC BY-NC-SA defined by the Creative Commons Attribution License. http://creativecommons.org/licenses/by-nc-sa/3.0/

                History
                : 7 August 2019
                : 24 September 2019
                Page count
                Figures: 5, Tables: 5, References: 110, Pages: 24
                Categories
                Review

                coronary heart disease,cardiac imaging,network medicine,primary and secondary prevention,precision medicine

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