Spinal cord astrocytes regulate myocardial ischemia–reperfusion injury

被引:0
作者
Chao Wu
Rongrong Liu
Zhaofei Luo
Meiyan Sun
Muge Qile
Shijin Xu
Shiyun Jin
Li Zhang
Eric R. Gross
Ye Zhang
Shufang He
机构
[1] The Second Hospital of Anhui Medical University,Department of Anesthesiology and Perioperative Medicine
[2] Anhui Medical University,Key Laboratory of Anesthesiology and Perioperative Medicine of Anhui Higher Education Institutes
[3] Stanford University,Department of Anesthesiology, Perioperative and Pain Medicine, School of Medicine
来源
Basic Research in Cardiology | 2022年 / 117卷
关键词
Myocardial ischemia–reperfusion injury; Astrocyte; Chemogenetic; Glial fibrillary acidic protein; Transient receptor potential vanilloid 1; Cardio-protection;
D O I
暂无
中图分类号
学科分类号
摘要
Astrocytes play a key role in the response to injury and noxious stimuli, but its role in myocardial ischemia–reperfusion (I/R) injury remains largely unknown. Here we determined whether manipulation of spinal astrocyte activity affected myocardial I/R injury and the underlying mechanisms. By ligating the left coronary artery to establish an in vivo I/R rat model, we observed a 1.7-fold rise in glial fibrillary acidic protein (GFAP) protein level in spinal cord following myocardial I/R injury. Inhibition of spinal astrocytes by intrathecal injection of fluoro-citrate, an astrocyte inhibitor, decreased GFAP immunostaining and reduced infarct size by 29% relative to the I/R group. Using a Designer Receptor Exclusively Activated by Designer Drugs (DREADD) chemogenetic approach, we bi-directionally manipulated astrocyte activity employing GFAP promoter-driven Gq- or Gi-coupled signaling. The Gq-DREADD-mediated activation of spinal astrocytes caused transient receptor potential vanilloid 1 (TRPV1) activation and neuropeptide release leading to a 1.3-fold increase in infarct size, 1.2-fold rise in serum norepinephrine level and higher arrhythmia score relative to I/R group. In contrast, Gi-DREADD-mediated inhibition of spinal astrocytes suppressed TRPV1-mediated nociceptive signaling, resulting in 35% reduction of infarct size and 51% reduction of arrhythmia score from I/R group, as well as lowering serum norepinephrine level from 3158 ± 108 to 2047 ± 95 pg/mL. Further, intrathecal administration of TRPV1 or neuropeptide antagonists reduced infarct size and serum norepinephrine level. These findings demonstrate a functional role of spinal astrocytes in myocardial I/R injury and provide a novel potential therapeutic approach targeting spinal cord astrocytes for the prevention of cardiac injury.
引用
收藏
相关论文
共 483 条
[1]  
Althammer F(2020)Three-dimensional morphometric analysis reveals time-dependent structural changes in microglia and astrocytes in the central amygdala and hypothalamic paraventricular nucleus of heart failure rats J Neuroinflammation 17 221-980
[2]  
Ferreira-Neto HC(2019)Pretreatment with PCSK9 inhibitor protects the brain against cardiac ischemia/reperfusion injury through a reduction of neuronal inflammation and amyloid beta aggregation J Am Heart Assoc 8 29-41
[3]  
Rubaharan M(2014)Role of spinal P2Y6 and P2Y11 receptors in neuropathic pain in rats: possible involvement of glial cells Mol Pain 10 977-155
[4]  
Roy RK(2020)(11)C-Methionine PET identifies astroglia involvement in heart-brain inflammation networking after acute myocardial infarction J Nucl Med 61 39-352
[5]  
Patel AA(2018)Practical guidelines for rigor and reproducibility in preclinical and clinical studies on cardioprotection Basic Res Cardiol 113 33-665
[6]  
Murphy A(2022)TRPV1 contributes to modulate the nitric oxide pathway and oxidative stress in the isolated and perfused rat heart during ischemia and reperfusion Molecules 95 145-449
[7]  
Cox DN(2017)Neural circuit-specialized astrocytes: transcriptomic, proteomic, morphological, and functional evidence Neuron 308 299-167
[8]  
Stern JE(2020)Modulation of activated astrocytes in the hypothalamus paraventricular nucleus to prevent ventricular arrhythmia complicating acute myocardial infarction Int J Cardiol 844 656-41
[9]  
Apaijai N(2019)Spinal NGF induces anti-intrathecal opioid-initiated cardioprotective effect via regulation of TRPV1 expression Eur J Pharmacol 77 43-171
[10]  
Moisescu DM(2005)Fos, nociception and the dorsal horn Prog Neurobiol 22 71-210