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本文引用的文献

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Differences in the control of basal L-type Ca(2+) current by the cyclic AMP signaling cascade in frog, rat, and human cardiac myocytes.在蛙、鼠和人心肌细胞中,环腺苷酸信号级联对基础 L 型 Ca(2+)电流的控制存在差异。
J Physiol Sci. 2016 Jul;66(4):327-36. doi: 10.1007/s12576-015-0430-3. Epub 2015 Dec 16.
2
Oscillation of cAMP and Ca(2+) in cardiac myocytes: a systems biology approach.心肌细胞中cAMP和Ca(2+)的振荡:一种系统生物学方法。
J Physiol Sci. 2015 Mar;65(2):195-200. doi: 10.1007/s12576-014-0354-3. Epub 2015 Jan 14.
3
The switching role of β-adrenergic receptor signalling in cell survival or death decision of cardiomyocytes.β-肾上腺素能受体信号在心肌细胞存活或死亡决定中的转换作用。
Nat Commun. 2014 Dec 17;5:5777. doi: 10.1038/ncomms6777.
4
Visualization of the spatial and temporal dynamics of MAPK signaling using fluorescence imaging techniques.使用荧光成像技术对丝裂原活化蛋白激酶(MAPK)信号传导的时空动态进行可视化。
J Physiol Sci. 2015 Jan;65(1):37-49. doi: 10.1007/s12576-014-0332-9. Epub 2014 Aug 22.
5
Modeling the effects of β1-adrenergic receptor blockers and polymorphisms on cardiac myocyte Ca2+ handling.β1-肾上腺素能受体阻滞剂和多态性对心肌细胞 Ca2+ 处理的影响的建模。
Mol Pharmacol. 2014 Aug;86(2):222-30. doi: 10.1124/mol.113.090951. Epub 2014 May 27.
6
A compartmentalized mathematical model of the β1-adrenergic signaling system in mouse ventricular myocytes.小鼠心室肌细胞中β1-肾上腺素能信号系统的分区数学模型。
PLoS One. 2014 Feb 21;9(2):e89113. doi: 10.1371/journal.pone.0089113. eCollection 2014.
7
Heart disease and stroke statistics--2014 update: a report from the American Heart Association.《2014年心脏病和中风统计数据更新:美国心脏协会报告》
Circulation. 2014 Jan 21;129(3):e28-e292. doi: 10.1161/01.cir.0000441139.02102.80. Epub 2013 Dec 18.
8
Broad-scale phosphoprotein profiling of beta adrenergic receptor (β-AR) signaling reveals novel phosphorylation and dephosphorylation events.β肾上腺素能受体(β-AR)信号传导的大规模磷酸化蛋白分析揭示了新的磷酸化和去磷酸化事件。
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9
PKA catalytic subunit compartmentation regulates contractile and hypertrophic responses to β-adrenergic signaling.PKA 催化亚基区室化调节β-肾上腺素能信号对收缩和肥大反应。
J Mol Cell Cardiol. 2014 Jan;66:83-93. doi: 10.1016/j.yjmcc.2013.11.001. Epub 2013 Nov 10.
10
Intracellular β2-adrenergic receptor signaling specificity in mouse skeletal muscle in response to single-dose β2-agonist clenbuterol treatment and acute exercise.单次给予β2-激动剂克仑特罗治疗和急性运动后,小鼠骨骼肌细胞内β2-肾上腺素能受体信号转导的特异性。
J Physiol Sci. 2013 May;63(3):211-8. doi: 10.1007/s12576-013-0253-z. Epub 2013 Mar 13.

通过计算方法研究β-肾上腺素能诱导的心脏肥大:经典和非经典途径

Investigating β-adrenergic-induced cardiac hypertrophy through computational approach: classical and non-classical pathways.

作者信息

Khalilimeybodi Ali, Daneshmehr Alireza, Sharif-Kashani Babak

机构信息

Department of Mechanical Engineering, College of Engineering, University of Tehran, Tehran, Iran.

Department of Cardiology, Massih-Daneshvari Hospital, Shahid Beheshti University of Medical Sciences, Tehran, Iran.

出版信息

J Physiol Sci. 2018 Jul;68(4):503-520. doi: 10.1007/s12576-017-0557-5. Epub 2017 Jul 3.

DOI:10.1007/s12576-017-0557-5
PMID:28674776
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10717155/
Abstract

The chronic stimulation of β-adrenergic receptors plays a crucial role in cardiac hypertrophy and its progression to heart failure. In β-adrenergic signaling, in addition to the well-established classical pathway, Gs/AC/cAMP/PKA, activation of non-classical pathways such as Gi/PI3K/Akt/GSK3β and Gi/Ras/Raf/MEK/ERK contribute in cardiac hypertrophy. The signaling network of β-adrenergic-induced hypertrophy is very complex and not fully understood. So, we use a computational approach to investigate the dynamic response and contribution of β-adrenergic mediators in cardiac hypertrophy. The proposed computational model provides insights into the effects of β-adrenergic classical and non-classical pathways on the activity of hypertrophic transcription factors CREB and GATA4. The results illustrate that the model captures the dynamics of the main signaling mediators and reproduces the experimental observations well. The results also show that despite the low portion of β2 receptors out of total cardiac β-adrenergic receptors, their contribution in the activation of hypertrophic mediators and regulation of β-adrenergic-induced hypertrophy is noticeable and variations in β1/β2 receptors ratio greatly affect the ISO-induced hypertrophic response. The model results illustrate that GSK3β deactivation after β-adrenergic receptor stimulation has a major influence on CREB and GATA4 activation and consequent cardiac hypertrophy. Also, it is found through sensitivity analysis that PKB (Akt) activation has both pro-hypertrophic and anti-hypertrophic effects in β-adrenergic signaling.

摘要

β-肾上腺素能受体的慢性刺激在心脏肥大及其向心力衰竭的进展中起关键作用。在β-肾上腺素能信号传导中,除了已确立的经典途径Gs/AC/cAMP/PKA外,非经典途径如Gi/PI3K/Akt/GSK3β和Gi/Ras/Raf/MEK/ERK的激活也参与心脏肥大。β-肾上腺素能诱导的肥大的信号网络非常复杂,尚未完全了解。因此,我们采用计算方法来研究β-肾上腺素能介质在心脏肥大中的动态反应和作用。所提出的计算模型提供了对β-肾上腺素能经典和非经典途径对肥厚性转录因子CREB和GATA4活性影响的见解。结果表明,该模型捕捉到了主要信号介质的动态,并很好地再现了实验观察结果。结果还表明,尽管β2受体在总心脏β-肾上腺素能受体中所占比例较低,但其在激活肥厚性介质和调节β-肾上腺素能诱导的肥大方面的作用是显著的,β1/β2受体比例的变化极大地影响异丙肾上腺素诱导的肥厚反应。模型结果表明,β-肾上腺素能受体刺激后GSK3β失活对CREB和GATA4激活以及随后的心脏肥大有重大影响。此外,通过敏感性分析发现,PKB(Akt)激活在β-肾上腺素能信号传导中具有促肥大和抗肥大作用。