Literature DB >> 24932661

Elevated adropin: a candidate diagnostic marker for myocardial infarction in conjunction with troponin-I.

Suna Aydin1, Tuncay Kuloglu2, Suleyman Aydin3, Mehmet Kalayci4, Musa Yilmaz5, Tolga Çakmak4, Mehmet Nesimi Eren6.   

Abstract

Myocardial infarction (MI; "heart attack") can cause injury to or death of heart muscle tissue (myocardium) owing to prolonged ischemia and hypoxia. Troponins and CK-MB are released from heart muscle cells during MI. It has been demonstrated that energy expenditure is regulated by adropin expressed in the endocardium, myocardium, and epicardium. We hypothesized that adropin is released into the bloodstream during myocardial muscle injury caused by MI, so the serum level rises as myocytes die. Therefore, we examined the association between adropin expression and myocardial infarction in isoproterenol-induced myocardial infarction. Rats were randomly allocated to six groups. After treatment they were decapitated and their blood and tissues were collected for adropin measurement. Changes in adropin synthesis in rat heart, kidney and liver tissues in isoproterenol (ISO)-induced MI were demonstrated immunohistochemically. Serum adropin concentrations were measured by ELISA, and troponin-I, CK and CK-MB concentrations by autoanalysis. The results demonstrated that cardiac muscle cells, glomerular, peritubular and renal cortical interstitial cells, hepatocytes and liver sinusoidal cells all synthesize adropin, and synthesis increased 1-24 h after MI except in the liver cells. The findings elucidate the pathogenesis of MI, and the gradual increase in serum adropin could be a novel diagnostic marker and serve as an alternative to troponin-I measurement for diagnosing MI.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Adropin; Cardiac muscle cells; Hepatocytes; Kidneys; Myocardial infarction

Mesh:

Substances:

Year:  2014        PMID: 24932661     DOI: 10.1016/j.peptides.2014.06.001

Source DB:  PubMed          Journal:  Peptides        ISSN: 0196-9781            Impact factor:   3.750


  15 in total

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Authors:  Joseph R Stevens; Monica L Kearney; Marie-Pierre St-Onge; Kimber L Stanhope; Peter J Havel; Jill A Kanaley; John P Thyfault; Edward P Weiss; Andrew A Butler
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Authors:  Maoling Yang; Qiongfei Pei; Jing Zhang; Haobo Weng; Fengchuan Jing; Qijian Yi
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4.  Therapeutic effects of adropin on glucose tolerance and substrate utilization in diet-induced obese mice with insulin resistance.

Authors:  Su Gao; Ryan P McMillan; Qingzhang Zhu; Gary D Lopaschuk; Matthew W Hulver; Andrew A Butler
Journal:  Mol Metab       Date:  2015-01-17       Impact factor: 7.422

5.  Assessment of serum prolactin levels in acute myocardial infarction: The role of pharmacotherapy.

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6.  Aerobic exercise improves endothelial function and serum adropin levels in obese adolescents independent of body weight loss.

Authors:  Hao Zhang; Long Jiang; Yu-Jing Yang; Ren-Kai Ge; Ming Zhou; Huan Hu; Hui Liu; Jie Cui; Le-Liang Li; Yi-Fei Dong; Xiao-Shu Cheng; Rong Chen; Ping Li
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7.  Adropin Is a Key Mediator of Hypoxia Induced Anti-Dipsogenic Effects via TRPV4-CamKK-AMPK Signaling in the Circumventricular Organs of Rats.

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Review 9.  Potential Roles of Adropin in Central Nervous System: Review of Current Literature.

Authors:  Shima Shahjouei; Saeed Ansari; Tayebeh Pourmotabbed; Ramin Zand
Journal:  Front Mol Biosci       Date:  2016-06-27

10.  Adropin as a potential marker of enzyme-positive acute coronary syndrome.

Authors:  Suna Aydin; Mehmet Nesimi Eren; Musa Yilmaz; Mehmet Kalayci; Meltem Yardim; Omer Dogan Alatas; Tuncay Kuloglu; Huseyin Balaban; Tolga Cakmak; Mehmet Ali Kobalt; Ahmet Çelik; Suleyman Aydin
Journal:  Cardiovasc J Afr       Date:  2016-05-19       Impact factor: 1.167

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