Journal of Traditional Chinese Medicine >
Electroacupuncture preconditioning alleviates myocardial ischemia-reperfusion injury through the hypothalamic paraventricular nucleus- interposed nucleus nerve pathway
Received date: 2021-12-12
Accepted date: 2022-02-22
Online published: 2022-05-20
Supported by
National Natural Science Foundation of China: Mechanism of GABA/Glu Neural Circuit in Lateral Hypothalamus-Parietal Nucleus in Alleviating Myocardial Ischemia-Reperfusion Injury by Acupuncture Preconditioning(82074536);Study on the Protective Effect of Acupuncture Pretreatment on Myocardial Ischemia-Reperfusion Injury Based on Hypothalamic-Cerebellar Neural Circuit(81774414);Mechanism of GABA Neural Circuit in the Paraventricular Nucleus of Hypothalamus and Ventrolateral Region of Medulla Oblongata in Alleviating Myocardial Ischemia-Reperfusion Injury Induced by Acupuncture Pretreatment(82104999);Natural Science Foundation of Anhui Province the Central Regulatory Mechanism of Acupuncture Regulating Cardiac Function(2108085Y30);Anhui Province University Outstanding Top Talent Cultivation Funding Project(gxgwfx2019025)
OBJECTIVE: To explore whether the paraventricular nucleus (PVN) participates in regulation of the anti-myocardial ischemia-reperfusion injury (MIRI) effect of electroacupuncture (EA) and whether this is achieved through the PVN-interposed nucleus (IN) neural pathway.
METHODS: The modeling method of myocardial ischemia reperfusion injury was achieved by ligating the left anterior descending coronary artery in Sprague-Dawley rats. We used the Powerlab multi-channel physiological recorder system to record electro-cardiograms and analyze the changes in ST segment displacement; 2,3,5-Triphenyltetrazolium chloride staining was used to observe the percentage of myocardial infarction areas. Detecting cardiac troponin I (cTnI), lactate dehydrogenase (LDH) in serum was done with an enzyme-linked immunosorbent assay kit. Morphological changes in the myocardium were detected in each group with hematoxylin-eosin staining of paraffin sections. Detection of c-fos protein expression in the PVN of the hypothalamus was done with the immune-ofluorescence method. The Plexon multi-channel acquisition system recorded PVN neuron discharges and local field potentials in each group of rats. Offline Sorter software was used for cluster analysis. Neuro Explorer software was used to perform autocorrelation, raster and frequency characteristics and spectral energy analysis of neuron signals in each group.
RESULTS: Compared with the MIRI model group, the areas of myocardial infarction in the EA group were significantly reduced; the expression of cTnI, LDH in serum was decreased significantly. The firing frequency of pyramidal cells in the PVN was significantly increased and the spectrum energy map showed energy was reduced, c-fos expression in PVN was reduced, this indicated that neuronal activity in the PVN participates in the effect of EA improving myocardial injury. In addition, we used the kainic acid method to lesion the IN and observed that the effect of EA was weakened. For example, the area of myocardial infarction of lesion IN + EA group in rats was significantly increased compared with that resulting from EA group, the expression of cTnI, LDH in serum was significantly increased, the firing frequency of pyramidal cells in the PVN was significantly reduced. A spectral energy diagram shows that the energy after damage was higher than that of EA group. At the same time, the expression of c-fos in the PVN increased again.
CONCLUSION: Our results indicated that the PVN-IN nerve pathway may participate as an effective pathway of EA to improve the effect of myocardial injury.
Xiaotong WEI , Liaoyuan LI , Yating ZHANG , Qi SHU , Shuaiya WANG , Pianpian CHEN , Ling HU , Qing YU , Ronglin CAI . Electroacupuncture preconditioning alleviates myocardial ischemia-reperfusion injury through the hypothalamic paraventricular nucleus- interposed nucleus nerve pathway[J]. Journal of Traditional Chinese Medicine, 2022 , 42(3) : 379 -388 . DOI: 10.19852/j.cnki.jtcm.2022.03.005
| 1 | Hao F, Cai RL, Yu Q, et al. Effect of electroacupuncture preconditioning on the expressions of NF-κB p65, IκBα and IKKβ in myocardial tissue of the rats with acute myocardial ischemia-reperfusion injury. Zhong Guo Zhen Jiu 2020; 40:1103-7. |
| 2 | Yang L, Yang J, Wang Q, et al. Cardioprotective effects of electroacupuncture pretreatment on patients undergoing heart valve replacement surgery: a randomized controlled trial. Ann Thorac Surg 2010; 89:781-6. |
| 3 | Jang I, Cho K, Moon S, et al. A study on the central neural pathway of the heart, Nei-Kuan (EH-6) and Shen-Men (He-7) with neural tracer in rats. Am J Chin Med 2003; 31:591-609. |
| 4 | Chi HJ, Chen ML, Yang XC, et al. Progress in therapies for myocardial ischemia reperfusion injury. Curr Drug Targets 2017; 18:1712-21. |
| 5 | Zhong MK, Duan YC, Chen AD, et al. Paraventricular nucleus is involved in the central pathway of cardiac sympathetic afferent reflex in rats. Exp Physiol 2008; 93:746-53. |
| 6 | Chen WW, Xiong XQ, Chen Q, et al. Cardiac sympathetic afferent reflex and its implications for sympathetic activation in chronic heart failure and hypertension. Acta Physiol (Oxf) 2015; 213:778-94. |
| 7 | Chen C, Zhang Y, Cheng XY, et al. Central nervous system regulation mechanism of myocardial ischemia-reperfusion injury in rats: neuronal excitability in the paraventricular nucleus of the hypothalamus. Zhong Hua Ma Zui Xue Za Zhi 2018; 38:1293-7. |
| 8 | Cai RL, Cui S, Wu ZJ, et al. Effect of electroacupuncture at “Shenmen” (HT7)-“Tongli” (HT5) of heart meridian on neuronal activities in paraventricular nucleus of hypothalamus in myo-cardial ischemia rats. Zhen Ci Yan Jiu 2018; 43:406-13. |
| 9 | Zhu JN, Yung WH, Kwok-Chong Chow B, et al. The cerebellar-hypothalamic circuits: potential pathways underlying cerebellar involvement in somatic-visceral integration. Brain Res Rev 2006; 52:93-106. |
| 10 | Lu JH, Mao HN, Cao BB, et al. Effect of cerebellohypothalamic glutamatergic projections on immune function. Cerebellum 2012; 11:905-16. |
| 11 | Han J, Xuan JL, Hu HR, et al. Protective effect against myocardial ischemia reperfusion injuries induced by hyperoside preconditioning and its relationship with PI3K/Akt signaling pathway in rats. Zhong Guo Zhong Yao Za Zhi 2015; 40:118-23. |
| 12 | Paxinos G, Watson C. The rat brain in stereotaxic coordinates. People's Medical Publishing House, 2005, in press. |
| 13 | Liu F, Li BM. Brain function damage and inactivation methods commonly used in learning and memory research. Zhong Guo Xing Wei Yi Xue Ke Xue 2006; 222-3. |
| 14 | Lin WZ, Wang P. Experimental acupuncture and moxibustion. Shanghai Science and Technology Press, 1999, in press. |
| 15 | Barthó P, Hirase H, Monconduit L, et al. Characterization of neo-cortical principal cells and interneurons by network inter-actions and extracellular features. J Neurophysiol 2004; 92:600-8. |
| 16 | Xu JM, Wang CQ, Lin LN. Multi-channel in vivo recording techniques: signal processing of action potentials and local field potentials. Sheng Li Xue Bao 2014; 66:349-57. |
| 17 | Painovich J, Longhurst J. Integrating acupuncture into the cardio-logy clinic: can it play a role? Sheng Li Xue Bao 2015; 67:19-31. |
| 18 | Wang JS, Yu XD, Deng S, et al. Acupuncture on treating angina pectoris: a systematic review. Medicine 2020; 99:e18548. |
| 19 | Cui S, Xu J, Wang J, et al. Effect of electroacupuncture stimulation of heart meridian on autonomic nervous activities in acute myocardial ischemia rats. Zhen Ci Yan Jiu 2016; 41:515-20. |
| 20 | Armstrong K, Gokal R, Todorsky W. Neuromodulating influence of two electroacupuncture treatments on heart rate variability, stress, and vagal activity. J Altern Complement Med 2020; 26:928-36. |
| 21 | Sun YZ, Yao J, Zhou L. Research progress in the ancient and modern methods of acupuncture method of matching points of the original collaterals. Liaoning Zhong Yi Yao Da Xue Xue Bao 2019; 21:5-9. |
| 22 | Cui S, Wang K, Wu SB, et al. Electroacupuncture modulates the activity of the hippocampus-nucleus tractus solitarius-vagus nerve pathway to reduce myocardial ischemic injury. Neural Regen Res 2018; 13:1609-18. |
| 23 | Zhang HH, Wang YJ, Zheng C, et al. Apelin in the hypothalamic paraventricular nucleus improves cardiac function in surgical trauma rats. Sheng Li Xue Bao 2018; 70:99-105. |
| 24 | Ciriello J, Kline RL, Zhang TX, et al. Lesions of the paraventricular nucleus alter the development of spontaneous hypertension in the rat. Brain Res 1984; 310:355-9. |
| 25 | Xu B, Zheng H, Patel KP. Relative contributions of the thalamus and the paraventricular nucleus of the hypothalamus to the cardiac sympathetic afferent reflex. Am J Physiol Regul Integr Comp Physiol 2013; 305:R50-9. |
| 26 | Saab CY, Willis WD. Cerebellar stimulation modulates the intensity of a visceral nociceptive reflex in the rat. Exp Brain Res 2002; 146:117-21. |
| 27 | Onat F, Cavdar S. Cerebellar connections: hypothalamus. Cerebellum 2003; 2:263-9. |
| 28 | Kullmann S, Veit R. Resting-state functional connectivity of the human hypothalamus. Handb Clin Neurol 2021; 179:113-24. |
| 29 | Dietrichs E, Haines DE. Interconnections between hypothalamus and cerebellum. Anat Embryol 1989; 179:207-20. |
| 30 | Yu Q, Cai RL, Shao XF, et al. Effect of electroacupuncture preconditioning on the contents of dopamine and 5-hydroxytryptamine in lateral hypothalamus area and cerebellar fastigial nucleus of rats with myocardial ischemia-reperfusion injury. Zhong Guo Zhen Jiu 2021; 41:525-30. |
| 31 | Wen YQ, Zhu JN, Zhang YP, et al. Cerebellar interpositus nuclear inputs impinge on paraventricular neurons of the hypothalamus in rats. Neurosci Lett 2004; 370:25-9. |
| 32 | van den Hoogen NJ, Kwok CHT, Trang T. Identifying the neurodevelopmental differences of opioid withdrawal. Cell Mol Neurobiol 2021; 41:1145-55. |
| 33 | Coyle JT, Molliver ME, Kuhar MJ. In situ injection of kainic acid: a new method for selectively lesioning neural cell bodies while sparing axons of passage. J Comp Neurol 1978; 180:301-23. |
/
| 〈 |
|
〉 |