-
1
-
-
6944251938
-
Detection of cardiomyocyte death in a rat model of ischemia and reperfusion using 99mTc-labeled annexin V
-
Taki J, Higuchi H, Kawashima A, Tait JF, Kinuya S, Muramori A, Matsunari I, Nakajima K, Tonami N, Strauss HW: Detection of cardiomyocyte death in a rat model of ischemia and reperfusion using 99mTc-labeled annexin V. J Nucl Med 2004;45: 1536-1541.
-
(2004)
J Nucl Med
, vol.45
, pp. 1536-1541
-
-
Taki, J.1
Higuchi, H.2
Kawashima, A.3
Tait, J.F.4
Kinuya, S.5
Muramori, A.6
Matsunari, I.7
Nakajima, K.8
Tonami, N.9
Strauss, H.W.10
-
2
-
-
84879076534
-
Mitochondria in heart failure: The emerging role of mitochondrial dynamics
-
Marín-García J, Akhmedov AT, Moe GW: Mitochondria in heart failure: The emerging role of mitochondrial dynamics. Heart Fail Rev 2013;18: 439-56. .
-
(2013)
Heart Fail Rev
, vol.18
, pp. 439-456
-
-
Marín-García, J.1
Akhmedov, A.T.2
Moe, G.W.3
-
3
-
-
4644226319
-
A unique pathway of cardiac myocyte death caused by hypoxia-acidosis
-
Graham RM, Frazier DP, Thompson JW, Haliko S, Li H, Wasserlauf BG, Spiga MG, Bishopric NH, Webster KA: A unique pathway of cardiac myocyte death caused by hypoxia-acidosis. J Exp Biol 2004;207: 3189-3200.
-
(2004)
J Exp Biol
, vol.207
, pp. 3189-3200
-
-
Graham, R.M.1
Frazier, D.P.2
Thompson, J.W.3
Haliko, S.4
Li, H.5
Wasserlauf, B.G.6
Spiga, M.G.7
Bishopric, N.H.8
Webster, K.A.9
-
4
-
-
69249100500
-
Human caspases: Activation, specificity, and regulation
-
Pop C, Salvesen GS: Human caspases: activation, specificity, and regulation. J Biol Chem 2009;284: 21777-21781.
-
(2009)
J Biol Chem
, vol.284
, pp. 21777-21781
-
-
Pop, C.1
Salvesen, G.S.2
-
5
-
-
67549118622
-
Ordering of caspases in cells undergoing apoptosis by the intrinsic pathway
-
Inoue S, Browne G, Melino G, Cohen G: Ordering of caspases in cells undergoing apoptosis by the intrinsic pathway. Cell Death Differ 2009;16: 1053-1061.
-
(2009)
Cell Death Differ
, vol.16
, pp. 1053-1061
-
-
Inoue, S.1
Browne, G.2
Melino, G.3
Cohen, G.4
-
6
-
-
77952547233
-
Ten years of NAD-dependent SIR2 family deacetylases: Implications for metabolic diseases
-
Imai SI, Guarente L: Ten years of NAD-dependent SIR2 family deacetylases: implications for metabolic diseases. Trends Pharmacol Sci 2010;31: 212-220.
-
(2010)
Trends Pharmacol Sci
, vol.31
, pp. 212-220
-
-
Imai, S.I.1
Guarente, L.2
-
7
-
-
78649328799
-
Sirtuin regulation of mitochondria: Energy production, apoptosis, and signaling
-
Verdin E, Hirschey MD, Finley LW, Haigis MC: Sirtuin regulation of mitochondria: energy production, apoptosis, and signaling. Trends Biochem Sci 2010;35: 669-6751.
-
(2010)
Trends Biochem Sci
, vol.35
, pp. 669-6751
-
-
Verdin, E.1
Hirschey, M.D.2
Finley, L.W.3
Haigis, M.C.4
-
8
-
-
64549123882
-
Fluorescence in situ hybridization and chromosomal organization of the sirtuin 4 gene ( Sirt4) in the mouse
-
Mahlknecht U, Voelter-Mahlknecht S: Fluorescence in situ hybridization and chromosomal organization of the sirtuin 4 gene ( Sirt4) in the mouse. Biochem Bioph Res Co 2009;382: 685-690.
-
(2009)
Biochem Bioph Res Co
, vol.382
, pp. 685-690
-
-
Mahlknecht, U.1
Voelter-Mahlknecht, S.2
-
9
-
-
77957762687
-
SIRT4 regulates fatty acid oxidation and mitochondrial gene expression in liver and muscle cells
-
Nasrin N, Wu X, Fortier E, Feng Y, Bare OC, Chen S, Ren X, Wu Z, Streeper RS, Bordone L: SIRT4 regulates fatty acid oxidation and mitochondrial gene expression in liver and muscle cells. Sci Signal 2010;285: 31995.
-
(2010)
Sci Signal
, vol.285
, pp. 31995
-
-
Nasrin, N.1
Wu, X.2
Fortier, E.3
Feng, Y.4
Bare, O.C.5
Chen, S.6
Ren, X.7
Wu, Z.8
Streeper, R.S.9
Bordone, L.10
-
10
-
-
33748316536
-
SIRT4 inhibits glutamate dehydrogenase and opposes the effects of calorie restriction in pancreatic β cells
-
Haigis MC, Mostoslavsky R, Haigis KM, Fahie K, Christodoulou DC, Murphy AJ, Valenzuela DM, Yancopoulos GD, Karow M, Blander G: SIRT4 inhibits glutamate dehydrogenase and opposes the effects of calorie restriction in pancreatic β cells. Cell 2006;126: 941-954.
-
(2006)
Cell
, vol.126
, pp. 941-954
-
-
Haigis, M.C.1
Mostoslavsky, R.2
Haigis, K.M.3
Fahie, K.4
Christodoulou, D.C.5
Murphy, A.J.6
Valenzuela, D.M.7
Yancopoulos, G.D.8
Karow, M.9
Blander, G.10
-
11
-
-
36349030394
-
Regulation of insulin secretion by SIRT4, a mitochondrial ADP-ribosyltransferase
-
Ahuja N, Schwer B, Carobbio S, Waltregny D, North BJ, Castronovo V, Maechler P, Verdin E: Regulation of insulin secretion by SIRT4, a mitochondrial ADP-ribosyltransferase. J Biol Chem 2007;282: 33583-33592.
-
(2007)
J Biol Chem
, vol.282
, pp. 33583-33592
-
-
Ahuja, N.1
Schwer, B.2
Carobbio, S.3
Waltregny, D.4
North, B.J.5
Castronovo, V.6
Maechler, P.7
Verdin, E.8
-
12
-
-
77949275160
-
DNA polymerase-β is required for 1-methyl-4-phenylpyridinium-induced apoptotic death in neurons
-
Zhang Z, Cao X, Xiong N, Wang H, Huang J, Sun S, Liang Z, Wang T: DNA polymerase-β is required for 1-methyl-4-phenylpyridinium-induced apoptotic death in neurons. Apoptosis 2010;15: 105-115.
-
(2010)
Apoptosis
, vol.15
, pp. 105-115
-
-
Zhang, Z.1
Cao, X.2
Xiong, N.3
Wang, H.4
Huang, J.5
Sun, S.6
Liang, Z.7
Wang, T.8
-
13
-
-
84862780849
-
MiR-1228 prevents cellular apoptosis through targeting of MOAP1 protein
-
Yan B, Zhao JI: miR-1228 prevents cellular apoptosis through targeting of MOAP1 protein. Apoptosis 2012;17: 717-724.
-
(2012)
Apoptosis
, vol.17
, pp. 717-724
-
-
Yan, B.1
Zhao, J.I.2
-
14
-
-
77949263613
-
Reactive oxygen species mediate thymoquinone-induced apoptosis and activate ERK and JNK signaling
-
Najjar NEI, Chatila M, Moukadem H, Vuorela H, Ocker M, Gandesiri M, Schneider-Stock R, Gali-Muhtasib H: Reactive oxygen species mediate thymoquinone-induced apoptosis and activate ERK and JNK signaling. Apoptosis 2010;15: 183-195.
-
(2010)
Apoptosis
, vol.15
, pp. 183-195
-
-
Najjar, N.E.I.1
Chatila, M.2
Moukadem, H.3
Vuorela, H.4
Ocker, M.5
Gandesiri, M.6
Schneider-Stock, R.7
Gali-Muhtasib, H.8
-
15
-
-
78651325895
-
Prevention of apoptosis by the interaction between FIH1 and Bax
-
Yan B, Kong M, Chen YH: Prevention of apoptosis by the interaction between FIH1 and Bax. Mol Cell Biochem 2011;348: 1-9.
-
(2011)
Mol Cell Biochem
, vol.348
, pp. 1-9
-
-
Yan, B.1
Kong, M.2
Chen, Y.H.3
-
16
-
-
80051519507
-
The holo-apoptosome: Activation of procaspase-9 and interactions with caspase-3
-
Yuan S, Yu X, Asara JM, Heuser JE, Ludtke SJ, Akey CW: The holo-apoptosome: activation of procaspase-9 and interactions with caspase-3. Structure 2011;19: 1084-1096.
-
(2011)
Structure
, vol.19
, pp. 1084-1096
-
-
Yuan, S.1
Yu, X.2
Asara, J.M.3
Heuser, J.E.4
Ludtke, S.J.5
Akey, C.W.6
-
17
-
-
63149129655
-
Bcl-2 inhibitors: Targeting mitochondrial apoptotic pathways in cancer therapy
-
Kang MH, Reynolds CP: Bcl-2 inhibitors: targeting mitochondrial apoptotic pathways in cancer therapy. Clin Cancer Res 2009;15: 1126-1132.
-
(2009)
Clin Cancer Res
, vol.15
, pp. 1126-1132
-
-
Kang, M.H.1
Reynolds, C.P.2
-
18
-
-
48249092267
-
Bcl-2 family members: Dual regulators of apoptosis and autophagy
-
Levine B, Sinha SC, Kroemer G: Bcl-2 family members: dual regulators of apoptosis and autophagy. Autophagy 2008;4: 600-606.
-
(2008)
Autophagy
, vol.4
, pp. 600-606
-
-
Levine, B.1
Sinha, S.C.2
Kroemer, G.3
-
19
-
-
62449157200
-
Role of apoptosis in cardiovascular disease
-
Lee Y, Gustafsson ÅB: Role of apoptosis in cardiovascular disease. Apoptosis 2009;14: 536-548.
-
(2009)
Apoptosis
, vol.14
, pp. 536-548
-
-
Lee, Y.1
Gustafsson, Å.B.2
-
20
-
-
80055029604
-
Roles of oxidative stress, apoptosis, PGC-1α and mitochondrial biogenesis in cerebral ischemia
-
Chen SD, Yang DI, Lin TK, Shaw FZ, Liou CW, Chuang YC: Roles of oxidative stress, apoptosis, PGC-1α and mitochondrial biogenesis in cerebral ischemia. Int J Mol Sci 2011;12: 7199-7215.
-
(2011)
Int J Mol Sci
, vol.12
, pp. 7199-7215
-
-
Chen, S.D.1
Yang, D.I.2
Lin, T.K.3
Shaw, F.Z.4
Liou, C.W.5
Chuang, Y.C.6
-
21
-
-
79960230433
-
Mitochondria in apoptosis: Bcl-2 family members and mitochondrial dynamics
-
Martinou JC, Youle RJ: Mitochondria in apoptosis: Bcl-2 family members and mitochondrial dynamics. Dev Cell 2011;21: 92-101.
-
(2011)
Dev Cell
, vol.21
, pp. 92-101
-
-
Martinou, J.C.1
Youle, R.J.2
-
22
-
-
41149152733
-
How do BCL-2 proteins induce mitochondrial outer membrane permeabilization?
-
Chipuk JE, Green DR: How do BCL-2 proteins induce mitochondrial outer membrane permeabilization? Trends Cell Biol 2008;18: 157-164.
-
(2008)
Trends Cell Biol
, vol.18
, pp. 157-164
-
-
Chipuk, J.E.1
Green, D.R.2
-
23
-
-
73349091842
-
The role of mitochondria in apoptosis
-
Wang C, Youle RJ: The role of mitochondria in apoptosis. Annu Rev Genet 2009;43: 95-118.
-
(2009)
Annu Rev Genet
, vol.43
, pp. 95-118
-
-
Wang, C.1
Youle, R.J.2
-
24
-
-
64849113485
-
Control of mitochondrial apoptosis by the Bcl-2 family
-
Brunelle JK, Letai A: Control of mitochondrial apoptosis by the Bcl-2 family. J Cell Sci 2009;122: 437-441.
-
(2009)
J Cell Sci
, vol.122
, pp. 437-441
-
-
Brunelle, J.K.1
Letai, A.2
-
25
-
-
84866650630
-
Bax activation initiates the assembly of a multimeric catalyst that facilitates Bax pore formation in mitochondrial outer membranes
-
Kushnareva Y, Andreyev AY, Kuwana T, Newmeyer DD: Bax activation initiates the assembly of a multimeric catalyst that facilitates Bax pore formation in mitochondrial outer membranes. PLoS Biol 2012;10:e1001394.
-
(2012)
PLoS Biol
, vol.10
-
-
Kushnareva, Y.1
Andreyev, A.Y.2
Kuwana, T.3
Newmeyer, D.D.4
-
26
-
-
70449091753
-
Stepwise activation of BAX and BAK by tBID, BIM, and PUMA initiates mitochondrial apoptosis
-
Kim H, Tu HC, Ren D, Takeuchi O, Jeffers JR, Zambetti GP, Hsieh JJ, Cheng EH: Stepwise activation of BAX and BAK by tBID, BIM, and PUMA initiates mitochondrial apoptosis. Mol Cell 2009;36: 487-499.
-
(2009)
Mol Cell
, vol.36
, pp. 487-499
-
-
Kim, H.1
Tu, H.C.2
Ren, D.3
Takeuchi, O.4
Jeffers, J.R.5
Zambetti, G.P.6
Hsieh, J.J.7
Cheng, E.H.8
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