ISSN: 2375-3900
American Journal of Pharmacy and Pharmacology  
Manuscript Information
 
 
Role of Propofol on Cardiomyocyte Under Hypoxia
American Journal of Pharmacy and Pharmacology
Vol.3 , No. 4, Publication Date: Jun. 7, 2016, Page: 29-32
2533 Views Since June 7, 2016, 671 Downloads Since Jun. 7, 2016
 
 
Authors
 
[1]    

Han-Fang Tseng, Division of Anesthesiology, Show Chwan Memoialy Hospital, Changhua, Taiwan, Republic of China.

[2]    

Huan-Nung Chao, Division of Cardiology, Show Chwan Memoialy Hospital, Changhua, Taiwan, Republic of China.

[3]    

Kuei-Feng Tsou, Division of Anesthesiology, Show Chwan Memoialy Hospital, Changhua, Taiwan, Republic of China.

 
Abstract
 

Objective: Ischemic heart disease is a leading cause of death worldwide. Moreover, there is no effective therapy for preventing myocardial ischemia-reperfusion (I/R) injury. Propofol is widely used in anesthetic and has been shown to control inflammatory response, however, the role of propofol on cardiomyocyte H9c2 under hypoxia remains to be established. Method: To speculate the effect of propofol on H9c2 cells survival under hypoxia, we used new analysis tool iCELLigence system in real time and typical WST-1 assay as approaches. Results and conclusion: Results showed that propofol reversed hypoxia-induced cardiomyocyte H9c2 cells death/ growth inhibition and decreased cell viability.


Keywords
 

Propofol, Cardiomyocyte, Hypoxia


Reference
 
[01]    

Marik, P. E. Propofol: an immunomodulating agent. Pharmacotherapy 25: 28S-33S; 2005.

[02]    

Allaouchiche, B.; Debon, R.; Goudable, J.; Chassard, D.; Duflo, F. Oxidative stress status during exposure to propofol, sevoflurane and desflurane. Anesthesia and analgesia 93: 981-985; 2001.

[03]    

Lin, C.; Sui, H.; Gu, J.; Yang, X.; Deng, L.; Li, W.; Ding, W.; Li, D.; Yang, Y. Effect and mechanism of propofol on myocardial ischemia reperfusion injury in type 2 diabetic rats. Microvascular research 90: 162-168; 2013.

[04]    

Tang, J.; Hu, J. J.; Lu, C. H.; Liang, J. N.; Xiao, J. F.; Liu, Y. T.; Lin, C. S.; Qin, Z. S. Propofol inhibits lipopolysaccharide-induced tumor necrosis factor-alpha expression and myocardial depression through decreasing the generation of superoxide anion in cardiomyocytes. Oxidative medicine and cellular longevity 2014: 157376; 2014.

[05]    

Lai, H. C.; Yeh, Y. C.; Wang, L. C.; Ting, C. T.; Lee, W. L.; Lee, H. W.; Wang, K. Y.; Wu, A.; Su, C. S.; Liu, T. J. Propofol ameliorates doxorubicin-induced oxidative stress and cellular apoptosis in rat cardiomyocytes. Toxicology and applied pharmacology 257: 437-448; 2011.

[06]    

King, N.; Al Shaama, M.; Suleiman, M. S. Propofol improves recovery of the isolated working hypertrophic heart from ischaemia-reperfusion. Pflugers Archiv: European journal of physiology 464: 513-522; 2012.

[07]    

Koval, O. A.; Sakaeva, G. R.; Fomin, A. S.; Nushtaeva, A. A.; Semenov, D. V.; Kuligina, E. V.; Gulyaeva, L. F.; Gerasimov, A. V.; Richter, V. A. Sensitivity of endometrial cancer cells from primary human tumor samples to new potential anticancer peptide lactaptin. Journal of cancer research and therapeutics 11: 345-351; 2015.

[08]    

Liu, Q.; Yao, J. Y.; Qian, C.; Chen, R.; Li, X. Y.; Liu, S. W.; Sun, B. G.; Song, L. S.; Hong, J. Effects of propofol on ischemia-induced ventricular arrhythmias and mitochondrial ATP-sensitive potassium channels. Acta pharmacologica Sinica 33: 1495-1501; 2012.

[09]    

Xu, J.; Li, H.; Irwin, M. G.; Xia, Z. Y.; Mao, X.; Lei, S.; Wong, G. T.; Hung, V.; Cheung, C. W.; Fang, X.; Clanachan, A. S.; Xia, Z. Propofol ameliorates hyperglycemia-induced cardiac hypertrophy and dysfunction via heme oxygenase-1/signal transducer and activator of transcription 3 signaling pathway in rats. Critical care medicine 42: e583-594; 2014.

[10]    

Sun, X.; Gu, J.; Chi, M.; Li, M.; Lei, S.; Wang, G. Activation of PI3K-Akt through taurine is critical for propofol to protect rat cardiomyocytes from doxorubicin-induced toxicity. Canadian journal of physiology and pharmacology 92: 155-161; 2014.

[11]    

Shirakawa, M.; Imura, H.; Nitta, T. Propofol protects the immature rabbit heart against ischemia and reperfusion injury: impact on functional recovery and histopathological changes. BioMed research international 2014: 601250; 2014.

[12]    

Konradi, J.; Mollenhauer, M.; Baldus, S.; Klinke, A. Redox-sensitive mechanisms underlying vascular dysfunction in heart failure. Free radical research 49: 721-742; 2015.

[13]    

Yang, S. C.; Chung, P. J.; Ho, C. M.; Kuo, C. Y.; Hung, M. F.; Huang, Y. T.; Chang, W. Y.; Chang, Y. W.; Chan, K. H.; Hwang, T. L. Propofol inhibits superoxide production, elastase release, and chemotaxis in formyl peptide-activated human neutrophils by blocking formyl peptide receptor 1. Journal of immunology 190: 6511-6519; 2013.

[14]    

Srivastava, A.; Bhatt, N. M.; Patel, T. P.; Dadheech, N.; Singh, A.; Gupta, S. Anti-apoptotic and cytoprotective effect of Enicostemma littorale against oxidative stress in Islets of Langerhans. Pharmaceutical biology: 1-12; 2016.

[15]    

Kuo, L. M.; Kuo, C. Y.; Lin, C. Y.; Hung, M. F.; Shen, J. J.; Hwang, T. L. Intracellular glutathione depletion by oridonin leads to apoptosis in hepatic stellate cells. Molecules 19: 3327-3344; 2014.

[16]    

Kang, N.; Cao, S. J.; Zhou, Y.; He, H.; Tashiro, S.; Onodera, S.; Qiu, F.; Ikejima, T. Inhibition of caspase-9 by oridonin, a diterpenoid isolated from Rabdosia rubescens, augments apoptosis in human laryngeal cancer cells. International journal of oncology 47: 2045-2056; 2015.

[17]    

Zou, S.; Wang, C.; Cui, Z.; Guo, P.; Meng, Q.; Shi, X.; Gao, Y.; Yang, G.; Han, Z. beta-Elemene induces apoptosis of human rheumatoid arthritis fibroblast-like synoviocytes via reactive oxygen species-dependent activation of p38 mitogen-activated protein kinase. Pharmacological reports: PR 68: 7-11; 2016.

[18]    

Lin, M.; Sun, W.; Gong, W.; Zhou, Z.; Ding, Y.; Hou, Q. Methylophiopogonanone A Protects against Cerebral Ischemia/Reperfusion Injury and Attenuates Blood-Brain Barrier Disruption In Vitro. PloS one 10: e0124558; 2015.

[19]    

Ou, X.; Chen, Y.; Cheng, X.; Zhang, X.; He, Q. Potentiation of resveratrol-induced apoptosis by matrine in human hepatoma HepG2 cells. Oncology reports 32: 2803-2809; 2014.

[20]    

Maiwulanjiang, M.; Chen, J.; Xin, G.; Gong, A. G.; Miernisha, A.; Du, C. Y.; Lau, K. M.; Lee, P. S.; Chen, J.; Dong, T. T.; Aisa, H. A.; Tsim, K. W. The volatile oil of Nardostachyos Radix et Rhizoma inhibits the oxidative stress-induced cell injury via reactive oxygen species scavenging and Akt activation in H9c2 cardiomyocyte. Journal of ethnopharmacology 153: 491-498; 2014.

[21]    

Wang, Z. S.; Luo, P.; Dai, S. H.; Liu, Z. B.; Zheng, X. R.; Chen, T. Salvianolic acid B induces apoptosis in human glioma U87 cells through p38-mediated ROS generation. Cellular and molecular neurobiology 33: 921-928; 2013.





 
  Join Us
 
  Join as Reviewer
 
  Join Editorial Board
 
share:
 
 
Submission
 
 
Membership