Chang, J.-C.; Lien, C.-F.; Lee, W.-S.; Chang, H.-R.; Hsu, Y.-C.; Luo, Y.-P.; Jeng, J.-R.; Hsieh, J.-C.; Yang, K.-T.
Intermittent Hypoxia Prevents Myocardial Mitochondrial Ca2+ Overload and Cell Death during Ischemia/Reperfusion: The Role of Reactive Oxygen Species. Cells 2019, 8, 564.
https://doi.org/10.3390/cells8060564
AMA Style
Chang J-C, Lien C-F, Lee W-S, Chang H-R, Hsu Y-C, Luo Y-P, Jeng J-R, Hsieh J-C, Yang K-T.
Intermittent Hypoxia Prevents Myocardial Mitochondrial Ca2+ Overload and Cell Death during Ischemia/Reperfusion: The Role of Reactive Oxygen Species. Cells. 2019; 8(6):564.
https://doi.org/10.3390/cells8060564
Chicago/Turabian Style
Chang, Jui-Chih, Chih-Feng Lien, Wen-Sen Lee, Huai-Ren Chang, Yu-Cheng Hsu, Yu-Po Luo, Jing-Ren Jeng, Jen-Che Hsieh, and Kun-Ta Yang.
2019. "Intermittent Hypoxia Prevents Myocardial Mitochondrial Ca2+ Overload and Cell Death during Ischemia/Reperfusion: The Role of Reactive Oxygen Species" Cells 8, no. 6: 564.
https://doi.org/10.3390/cells8060564
APA Style
Chang, J.-C., Lien, C.-F., Lee, W.-S., Chang, H.-R., Hsu, Y.-C., Luo, Y.-P., Jeng, J.-R., Hsieh, J.-C., & Yang, K.-T.
(2019). Intermittent Hypoxia Prevents Myocardial Mitochondrial Ca2+ Overload and Cell Death during Ischemia/Reperfusion: The Role of Reactive Oxygen Species. Cells, 8(6), 564.
https://doi.org/10.3390/cells8060564