Takotsubo syndrome is a coronary microvascular disease: experimental evidence

被引:37
作者
Dong, Feng [1 ]
Yin, Liya [1 ]
Sisakian, Hamayak [2 ]
Hakobyan, Tatevik [1 ]
Jeong, Lacey S. [1 ]
Joshi, Hirva [1 ]
Hoff, Ellianna [1 ]
Chandler, Selena [1 ]
Srivastava, Geetika [1 ]
Jabir, Abdur Rahman [1 ]
Kimball, Kelly [1 ]
Chen, Yeong-Renn [1 ]
Chen, Chwen-Lih [1 ]
Kang, Patrick T. [1 ]
Shabani, Parisa [1 ]
Shockling, Lindsay [1 ]
Pucci, Thomas [1 ]
Kegecik, Karlina [1 ]
Kolz, Christopher [1 ]
Jia, Zhenyu [3 ]
Chilian, William M. [1 ]
Ohanyan, Vahagn [1 ]
机构
[1] Northeast Ohio Med Univ, Dept Integrat Med Sci, 4209 State Route 44, Rootstown, OH 44272 USA
[2] Yerevan State Med Univ, Dept Cardiol, Yerevan, Kentron, Armenia
[3] Univ Calif Riverside, Dept Bot & Plant Sci, Riverside, CA USA
基金
美国国家卫生研究院;
关键词
Coronary circulation; Myocardial hibernation; Broken heart syndrome; Stress-induced cardiomyopathy; LEFT-VENTRICULAR DYSFUNCTION; FLOW RESERVE; CARDIOMYOPATHY; CHANNELS; PATHOPHYSIOLOGY; REVERSE; HISTORY; WOMEN;
D O I
10.1093/eurheartj/ehad274
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background and aims Takotsubo syndrome (TTS) is a conundrum without consensus about the cause. In a murine model of coronary microvascular dysfunction (CMD), abnormalities in myocardial perfusion played a key role in the development of TTS. Methods and results Vascular Kv1.5 channels connect coronary blood flow to myocardial metabolism and their deletion mimics the phenotype of CMD. To determine if TTS is related to CMD, wild-type (WT), Kv1.5(-/-), and TgKv1.5(-/-) (Kv1.5(-/-) with smooth muscle-specific expression Kv1.5 channels) mice were studied following transaortic constriction (TAC). Measurements of left ventricular (LV) fractional shortening (FS) in base and apex, and myocardial blood flow (MBF) were completed with standard and contrast echocardiography. Ribonucleic Acid deep sequencing was performed on LV apex and base from WT and Kv1.5(-/-) (control and TAC). Changes in gene expression were confirmed by real-time-polymerase chain reaction. MBF was increased with chromonar or by smooth muscle expression of Kv1.5 channels in the TgKv1.5(-/-). TAC-induced systolic apical ballooning in Kv1.5(-/-), shown as negative FS (P < 0.05 vs. base), which was not observed in WT, Kv1.5(-/-) with chromonar, or TgKv1.5(-/-). Following TAC in Kv1.5(-/-), MBF was lower in LV apex than in base. Increasing MBF with either chromonar or in TgKv1.5(-/-) normalized perfusion and function between LV apex and base (P = NS). Some genetic changes during TTS were reversed by chromonar, suggesting these were independent of TAC and more related to TTS. Conclusion Abnormalities in flow regulation between the LV apex and base cause TTS. When perfusion is normalized between the two regions, normal ventricular function is restored.
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收藏
页码:2244 / +
页数:12
相关论文
共 68 条
[1]   Reverse Takotsubo cardiomyopathy: a comprehensive review [J].
Awad, Hamza H. ;
McNeal, Ashley R. ;
Goyal, Hemant .
ANNALS OF TRANSLATIONAL MEDICINE, 2018, 6 (23)
[2]   Abnormal thyroid function is common in takotsubo syndrome and depends on two distinct mechanisms: results of a multicentre observational study [J].
Aweimer, A. ;
El-Battrawy, I. ;
Akin, I. ;
Borggrefe, M. ;
Muegge, A. ;
Patsalis, P. C. ;
Urban, A. ;
Kummer, M. ;
Vasileva, S. ;
Stachon, A. ;
Hering, S. ;
Dietrich, J. W. .
JOURNAL OF INTERNAL MEDICINE, 2021, 289 (05) :675-687
[3]   Abnormal coronary reserve and left ventricular wall motion during cold pressor test in patients with previous left ventricular ballooning syndrome [J].
Barletta, Giuseppe ;
Del Pace, Stefano ;
Boddi, Maria ;
Del Bene, Riccarda ;
Salvadori, Claudia ;
Bellandi, Benedetta ;
Coppo, Mirella ;
Saletti, Elisa ;
Gensini, Gian Franco .
EUROPEAN HEART JOURNAL, 2009, 30 (24) :3007-3014
[4]   Contribution of voltage-dependent K+ and Ca2+ channels to coronary pressure-flow autoregulation [J].
Berwick, Zachary C. ;
Moberly, Steven P. ;
Kohr, Meredith C. ;
Morrical, Ethan B. ;
Kurian, Michelle M. ;
Dick, Gregory M. ;
Tune, Johnathan D. .
BASIC RESEARCH IN CARDIOLOGY, 2012, 107 (03)
[5]   Contribution of voltage-dependent K+ channels to metabolic control of coronary blood flow [J].
Berwick, Zachary C. ;
Dick, Gregory M. ;
Moberly, Steven P. ;
Kohr, Meredith C. ;
Sturek, Michael ;
Tune, Johnathan D. .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2012, 52 (04) :912-919
[6]   Catecholamine-Dependent β-Adrenergic Signaling in a Pluripotent Stem Cell Model of Takotsubo Cardiomyopathy [J].
Borchert, Thomas ;
Huebscher, Daniela ;
Guessoum, Celina I. ;
Lam, Tuan-Dinh D. ;
Ghadri, Jelena R. ;
Schellinger, Isabel N. ;
Tiburcy, Malte ;
Liaw, Norman Y. ;
Li, Yun ;
Haas, Jan ;
Sossalla, Samuel ;
Huber, Mia A. ;
Cyganek, Lukas ;
Jacobshagen, Claudius ;
Dressel, Ralf ;
Raaz, Uwe ;
Nikolaev, Viacheslav O. ;
Guan, Kaomei ;
Thiele, Holger ;
Meder, Benjamin ;
Wollnik, Bernd ;
Zimmermann, Wolfram-Hubertus ;
Luescher, Thomas F. ;
Hasenfuss, Gerd ;
Templin, Christian ;
Streckfuss-Boemeke, Katrin .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2017, 70 (08) :975-991
[7]   REVERSIBLE ISCHEMIC LEFT-VENTRICULAR DYSFUNCTION - EVIDENCE FOR THE HIBERNATING MYOCARDIUM [J].
BRAUNWALD, E ;
RUTHERFORD, JD .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 1986, 8 (06) :1467-1470
[8]   Heart failure and mouse models [J].
Breckenridge, Ross .
DISEASE MODELS & MECHANISMS, 2010, 3 (3-4) :138-143
[9]   Takotsubo cardiomyopathy - a clinical review [J].
Castillo Rivera, Ana Maria ;
Ruiz-Bailen, Manuel ;
Rucabado Aguilar, Luis .
MEDICAL SCIENCE MONITOR, 2011, 17 (06) :RA135-RA147
[10]   Cardiac Sympathetic Disturbance in Takotsubo Cardiomyopathy Primary Etiology or a Compensatory Response to Heart Failure? [J].
Chen, Wengen ;
Dilsizian, Vasken .
JACC-CARDIOVASCULAR IMAGING, 2016, 9 (08) :991-993