A reversible component of mitochondrial respiratory dysfunction in apoptosis can be rescued by exogenous cytochrome c
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[1] B. Chance. ENZYMES IN OXIDATIVE PHOSPHORYLATION , 2003 .
[2] Christian Renken,et al. Preservation of Mitochondrial Structure and Function after Bid- or Bax-Mediated Cytochrome c Release , 2000, The Journal of cell biology.
[3] V. Mootha,et al. tBID, a membrane-targeted death ligand, oligomerizes BAK to release cytochrome c. , 2000, Genes & development.
[4] S. Korsmeyer,et al. BAX-dependent transport of cytochrome c reconstituted in pure liposomes , 2000, Nature Cell Biology.
[5] Eugene M. Johnson,et al. Caspase Inhibition Extends the Commitment to Neuronal Death Beyond Cytochrome c Release to the Point of Mitochondrial Depolarization , 2000, The Journal of cell biology.
[6] T G Frey,et al. The internal structure of mitochondria. , 2000, Trends in biochemical sciences.
[7] M. V. Vander Heiden,et al. Role of Oxidative Phosphorylation in Bax Toxicity , 2000, Molecular and Cellular Biology.
[8] Xiaodong Wang,et al. Cytochrome c Deficiency Causes Embryonic Lethality and Attenuates Stress-Induced Apoptosis , 2000, Cell.
[9] S. Korsmeyer,et al. Biochemical and Genetic Analysis of the Mitochondrial Response of Yeast to BAX and BCL-XL , 2000, Molecular and Cellular Biology.
[10] D. Pessayre,et al. Opening of the mitochondrial permeability transition pore causes matrix expansion and outer membrane rupture in fas‐mediated hepatic apoptosis in mice , 2000, Hepatology.
[11] Gerard I. Evan,et al. The coordinate release of cytochrome c during apoptosis is rapid, complete and kinetically invariant , 2000, Nature Cell Biology.
[12] J. Martinou,et al. Cytochrome c release from mitochondria: all or nothing , 2000, Nature Cell Biology.
[13] J. Martinou,et al. Bid Induces the Oligomerization and Insertion of Bax into the Outer Mitochondrial Membrane , 2000, Molecular and Cellular Biology.
[14] T. Kuwana,et al. The Pro-Apoptotic Proteins, Bid and Bax, Cause a Limited Permeabilization of the Mitochondrial Outer Membrane That Is Enhanced by Cytosol , 1999, The Journal of cell biology.
[15] T. Mak,et al. In vivo evidence that caspase-3 is required for Fas-mediated apoptosis of hepatocytes. , 1999, Journal of immunology.
[16] S. Korsmeyer,et al. Bid-deficient mice are resistant to Fas-induced hepatocellular apoptosis , 1999, Nature.
[17] Ingo Schmitz,et al. Differential Modulation of Apoptosis Sensitivity in CD95 Type I and Type II Cells* , 1999, The Journal of Biological Chemistry.
[18] Masashi Narita,et al. Bcl-2 family proteins regulate the release of apoptogenic cytochrome c by the mitochondrial channel VDAC , 1999, Nature.
[19] J. Zimmerberg,et al. Bax, but not Bcl-xL, decreases the lifetime of planar phospholipid bilayer membranes at subnanomolar concentrations. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[20] J. Martinou,et al. The Release of Cytochrome c from Mitochondria during Apoptosis of NGF-deprived Sympathetic Neurons Is a Reversible Event , 1999, The Journal of cell biology.
[21] M. V. Heiden,et al. Bcl-xL prevents cell death following growth factor withdrawal by facilitating mitochondrial ATP/ADP exchange. , 1999, Molecular cell.
[22] P. Bernardi,et al. Mitochondrial transport of cations: channels, exchangers, and permeability transition. , 1999, Physiological reviews.
[23] S. Korsmeyer,et al. Caspase Cleaved BID Targets Mitochondria and Is Required for Cytochrome c Release, while BCL-XL Prevents This Release but Not Tumor Necrosis Factor-R1/Fas Death* , 1999, The Journal of Biological Chemistry.
[24] D. Green,et al. The central executioners of apoptosis: caspases or mitochondria? , 1998, Trends in cell biology.
[25] J C Reed,et al. Bax and adenine nucleotide translocator cooperate in the mitochondrial control of apoptosis. , 1998, Science.
[26] Xiaodong Wang,et al. Bid, a Bcl2 Interacting Protein, Mediates Cytochrome c Release from Mitochondria in Response to Activation of Cell Surface Death Receptors , 1998, Cell.
[27] Junying Yuan,et al. Cleavage of BID by Caspase 8 Mediates the Mitochondrial Damage in the Fas Pathway of Apoptosis , 1998, Cell.
[28] Dean P. Jones,et al. Superoxide in Apoptosis , 1998, The Journal of Biological Chemistry.
[29] J C Reed,et al. Bax directly induces release of cytochrome c from isolated mitochondria. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[30] Seamus J. Martin,et al. Anti-apoptotic oncogenes prevent caspase-dependent and independent commitment for cell death , 1998, Cell Death and Differentiation.
[31] B. Mignotte,et al. Mitochondria and apoptosis. , 1998, European journal of biochemistry.
[32] M. V. Heiden,et al. Bcl-xL Regulates the Membrane Potential and Volume Homeostasis of Mitochondria , 1997, Cell.
[33] P. Hugo,et al. CD4+ CD8+ thymocytes are preferentially induced to die following CD45 cross-linking, through a novel apoptotic pathway. , 1997, Journal of immunology.
[34] S. Srinivasula,et al. Cytochrome c and dATP-Dependent Formation of Apaf-1/Caspase-9 Complex Initiates an Apoptotic Protease Cascade , 1997, Cell.
[35] G. Kroemer,et al. The apoptosis-necrosis paradox. Apoptogenic proteases activated after mitochondrial permeability transition determine the mode of cell death , 1997, Oncogene.
[36] T. Tsuruo,et al. Requirement of the Caspase-3/CPP32 Protease Cascade for Apoptotic Death following Cytokine Deprivation in Hematopoietic Cells* , 1997, The Journal of Biological Chemistry.
[37] G. Evan,et al. Human Bak induces cell death in Schizosaccharomyces pombe with morphological changes similar to those with apoptosis in mammalian cells , 1997, Molecular and cellular biology.
[38] V. Mootha,et al. Maximum oxidative phosphorylation capacity of the mammalian heart. , 1997, The American journal of physiology.
[39] G. Evan,et al. Inhibition of Ced-3/ICE-related Proteases Does Not Prevent Cell Death Induced by Oncogenes, DNA Damage, or the Bcl-2 Homologue Bak , 1997, The Journal of cell biology.
[40] J. Xiang,et al. BAX-induced cell death may not require interleukin 1 beta-converting enzyme-like proteases. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[41] S. Srinivasula,et al. Molecular ordering of the Fas-apoptotic pathway: the Fas/APO-1 protease Mch5 is a CrmA-inhibitable protease that activates multiple Ced-3/ICE-like cysteine proteases. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[42] John Calvin Reed,et al. Structure-function comparisons of the proapoptotic protein Bax in yeast and mammalian cells , 1996, Molecular and cellular biology.
[43] E. Wang,et al. Bcl-2 potentiates the maximal calcium uptake capacity of neural cell mitochondria. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[44] R. Gottlieb,et al. Loss of Function of Cytochrome c in Jurkat Cells Undergoing Fas-mediated Apoptosis* , 1996, The Journal of Biological Chemistry.
[45] Xiaodong Wang,et al. Induction of Apoptotic Program in Cell-Free Extracts: Requirement for dATP and Cytochrome c , 1996, Cell.
[46] M. Marko,et al. Mineralization of collagen may occur on fibril surfaces: evidence from conventional and high-voltage electron microscopy and three-dimensional imaging. , 1996, Journal of structural biology.
[47] V. Mootha,et al. Neutral carrier-based "Ca(2+)-selective" microelectrodes for the measurement of tetraphenylphosphonium. , 1996, Analytical biochemistry.
[48] W. Greenhalf,et al. Role of mitochondria and C‐terminal membrane anchor of Bcl‐2 in Bax induced growth arrest and mortality in Saccharomyces cerevisiae , 1996, FEBS letters.
[49] A Leith,et al. Sterecon--three-dimensional reconstructions from stereoscopic contouring. , 1996, Journal of structural biology.
[50] A Leith,et al. SPIDER and WEB: processing and visualization of images in 3D electron microscopy and related fields. , 1996, Journal of structural biology.
[51] J. Frank,et al. Double-tilt electron tomography. , 1995, Ultramicroscopy.
[52] M. Colombini,et al. Beta-NADH decreases the permeability of the mitochondrial outer membrane to ADP by a factor of 6. , 1994, The Journal of biological chemistry.
[53] K. Gunter,et al. Transport of calcium by mitochondria , 1994, Journal of bioenergetics and biomembranes.
[54] J Frank,et al. The internal compartmentation of rat‐liver mitochondria: Tomographic study using the high‐voltage transmission electron microscope , 1994, Microscopy research and technique.
[55] D. Bredesen,et al. Bcl-2 inhibition of neural death: decreased generation of reactive oxygen species. , 1993, Science.
[56] Z. Oltvai,et al. Bcl-2 functions in an antioxidant pathway to prevent apoptosis , 1993, Cell.
[57] S. Nagata,et al. Lethal effect of the anti-Fas antibody in mice , 1993, Nature.
[58] John Calvin Reed,et al. Apoptosis induced by withdrawal of interleukin-3 (IL-3) from an IL-3-dependent hematopoietic cell line is associated with repartitioning of intracellular calcium and is blocked by enforced Bcl-2 oncoprotein production. , 1993, The Journal of biological chemistry.
[59] J. Frank. Electron Tomography , 1992, Springer US.
[60] F. Salemme. Structure and function of cytochromes c. , 1977, Annual review of biochemistry.
[61] B CHANCE,et al. Respiratory enzymes in oxidative phosphorylation. II. Difference spectra. , 1955, The Journal of biological chemistry.
[62] B CHANCE,et al. Respiratory enzymes in oxidative phosphorylation. I. Kinetics of oxygen utilization. , 1955, The Journal of biological chemistry.