Mitsuru Masaki
Osaka University
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Featured researches published by Mitsuru Masaki.
Molecular and Cellular Biology | 2005
Kazuo Terai; Yoshimune Hiramoto; Mitsuru Masaki; Shoko Sugiyama; Tadashi Kuroda; Masatsugu Hori; Ichiro Kawase; Hisao Hirota
ABSTRACT Oxygen deprivation leads to the accumulation of misfolded proteins in the endoplasmic reticulum (ER), causing ER stress. Under conditions of ER stress, inhibition of protein synthesis and up-regulation of ER chaperone expression reduce the misfolded proteins in the ER. AMP-activated protein kinase (AMPK) is a key regulatory enzyme involved in energy homeostasis during hypoxia. It has been shown that AMPK activation is associated with inhibition of protein synthesis via phosphorylation of elongation factor 2 (eEF2) in cardiomyocytes. We therefore examined whether AMPK attenuates hypoxia-induced ER stress in neonatal rat cardiomyocytes. We found that hypoxia induced ER stress, as assessed by the expression of CHOP and BiP and cleavage of caspase 12. Knockdown of CHOP or caspase 12 through small interfering RNA (siRNA) resulted in decreased expression of cleaved poly(ADP-ribose) polymerase following exposure to hypoxia. We also found that hypoxia-induced CHOP expression and cleavage of caspase 12 were significantly inhibited by pretreatment with 5-aminoimidazole-4-carboxyamide-1-β-d-ribofuranoside (AICAR), a pharmacological activator of AMPK. In parallel, adenovirus expressing dominant-negative AMPK significantly attenuated the cardioprotective effects of AICAR. Knockdown of eEF2 phosphorylation using eEF2 kinase siRNA abolished these cardioprotective effects of AICAR. Taken together, these findings demonstrate that activation of AMPK contributes to protection of the heart against hypoxic injury through attenuation of ER stress and that attenuation of protein synthesis via eEF2 inactivation may be the mechanism of cardioprotection by AMPK.
Circulation | 2005
Mitsuru Masaki; Masahiro Izumi; Yuichi Oshima; Yoshikazu Nakaoka; Tadashi Kuroda; Ryusuke Kimura; Shoko Sugiyama; Kazuo Terai; Masafumi Kitakaze; Keiko Yamauchi-Takihara; Ichiro Kawase; Hisao Hirota
Background—We previously reported that bone morphogenetic protein 2 (BMP2) protected against apoptosis of serum-deprived cardiomyocytes via induction of Bcl-xL through the Smad1 pathway. To investigate whether Smad1 signaling promotes cell survival in the adult heart, we subjected transgenic mice with cardiac-specific overexpression of smad1 gene (Smad1TG) to ischemia-reperfusion (I/R) injury. Methods and Results—The effects of BMP2 or adenovirus-mediated transfection of smad1 on cardiomyocyte survival in hypoxia-reoxygenation were examined using rat neonatal cardiomyocytes. BMP2 and Smad1 each significantly promoted survival and diminished apoptotic death of cardiomyocytes during hypoxia-reoxygenation. Interestingly, Smad1 was found to be activated during I/R in normal mouse heart. To examine physiological and pathological roles of Smad1 in I/R, we generated Smad1TG using the α-myosin heavy chain gene promoter. Phosphorylation of Smad1 was found in all smad1 transgene–positive mouse hearts. To examine whether Smad1 prevents injury of cardiomyocytes in vivo, we subjected Smad1TG and age-matched wild-type mice (WT) to I/R injury induced by 1 hour of ligation of the left coronary artery and 1 hour of reperfusion. TUNEL and DNA ladder analyses showed that Smad1TG had significantly smaller myocardial infarctions and fewer apoptotic deaths of cardiomyocytes than did WT. Interestingly, increased expression of Bcl-xL and β-catenin was more remarkable whereas caspase3 was less activated in Smad1TG heart than in that of WT. Conclusions—These findings suggest that the Smad1 signaling pathway plays a role in cardioprotection against I/R injury.
Circulation | 2007
Yoshimune Hiramoto; Wataru Shioyama; Tadashi Kuroda; Mitsuru Masaki; Shoko Sugiyama; Kitaro Okamoto; Hisao Hirota; Yasushi Fujio; Masatsugu Hori; Keiko Yamauchi-Takihara
Heart Lung and Circulation | 2006
Tadashi Kuroda; Hisao Hirota; Mitsuru Masaki; Shoko Sugiyama; Yuichi Oshima; Kazuo Terai; Akihiko Ito; Keiko Yamauchi-Takihara
Journal of Molecular and Cellular Cardiology | 2006
Masahiro Izumi; Mitsuru Masaki; Yoshimune Hiramoto; Shoko Sugiyama; Tadashi Kuroda; Kazuo Terai; Masatsugu Hori; Ichiro Kawase; Hisao Hirota
Journal of The American Society of Echocardiography | 2004
Mitsuru Masaki; Tadashi Kuroda; Naoki Hosen; Hisao Hirota; Kazuo Terai; Yuichi Oshima; Yoshikazu Nakaoka; Shoko Sugiyama; Ryusuke Kimura; Satoshi Yoshihara; Manabu Kawakami; Norishige Iizuka; Yasuhiko Tomita; Hiroyasu Ogawa; Ichiro Kawase; Keiko Yamauchi-Takihara
Journal of the American College of Cardiology | 2010
Gabriella Veress; Kye Hun Kim; Mitsuru Masaki; Raul E. Espinosa; Jae K. Oh
Journal of Molecular and Cellular Cardiology | 2007
Tadashi Kuroda; Hisao Hirota; Yasushi Fujio; Shoko Sugiyama; Mitsuru Masaki; Yoshimune Hiramoto; Wataru Shioyama; Kitaro Okamoto; Masatsugu Hori; Keiko Yamauchi-Takihara
Journal of Cardiac Failure | 2016
Yuko Soyama; Toshiaki Mano; Mitsuru Masaki; Akiko Goda; Akiyo Eguchi; Kumiko Masai; Aika Matsumoto; Tohru Masuyama
Transactions of Japanese Society for Medical and Biological Engineering | 2013
Masataka Sugahara; Mitsuru Masaki; Shinichi Hirotani; Ayumi Nakabo; Akiko Goda; Miho Fukui; Shohei Fujiwara; Kazuo Komamura; Masahiro Koshiba; Tohru Masuyama