S Agrawal, TIB Tech, “Antisense oligonucleotides:towards clinical trials,” Oct. 1996, vol. 14, pp. 376-387.* |
AD Branch, TIBS, “A good antisense molecule is hard to find,” Feb. 1998, pp. 45-50.* |
Afford et al., Apoptosis, Mol. Pathol., 2000, 53:55-63. |
Bratton et al., Protein complexes activate distinct caspase cascades in death receptor and stress-induced apoptosis, Exp. Cell. Res., 2000, 256:27-33. |
Deveraux et al., IAPs block apoptotic events induced by caspase-8 and cytochrome c by direct inhibition of distinct caspases, Embo J., 1998, 17:2215-2223. |
Dong et al., Serine protease inhibitors suppress cytochrome c-mediatedcaspase-9 activation and apoptosis during hypoxia-reoxygenation [In Process Citation], Biochem, J., 2000, 347 Pt 3:669-677. |
Duan et al., ICE-LAP6, a novel member of the ICE/Ced-3 gene family, is activated by the cytotoxic T cell protease granzyme B, J. Biol. Chem., 1996, 271:16720-16724. |
Fearnhead et al., Oncogene-dependent apoptosis is mediated by caspase-9, Proc. Natl. Acad. Sci. U. S. A., 1998, 95:13664-13669. |
Fujita et al., AKt phosphorylation site found in human caspase-9 is absent in mouse caspase-9, Biochem. Biophys. Res. Commun., 1999, 264:550-555. |
Garcia-Calvo et al., Purification and catalytic properties of human caspase family members, Cell. Death Differ., 1999, 6:362-369. |
Hakem et al., Differential requirement for caspase 9 in apoptotic pathways in vivo, Cell, 1998, 94:339-352. |
Krajewski et al., Release of caspase-9 from mitochondria during neuronal apoptosis and cerebral ischemia, Proc. Natl. Acad. Sci. U. S. A., 1999, 96:5752-5757. |
Kuida, Caspase-9, Int. J. Biochem. Cell Biol., 2000, 32:121-124. |
Kuida et al., Reduced apoptosis and cytochrome c-mediated caspase activation in mice lacking caspase 9, Cell, 1998, 94:325-337. |
Kuwahara et al., Caspase-9 regulates cisplatin-induced apoptosis in human head and neck squamous cell carcinoma cells, Cancer Lett., 2000, 148:65-71. |
Li et al., Cytochrome c and dATP-dependent formation of Apaf-1/caspase-9 complex initiates an apoptotic protease cascade, Cell, 1997, 91:479-489. |
Saleh et al., Cytochrome c and dATP-mediated oligomerization of Apaf-1 is a prerequisite for procaspase-9 activation, J. Biol. Chem., 1999, 274:17941-17945. |
Seol et al., A caspase-9 variant missing the catalytic site is an endogenous inhibitor of apoptosis, J. Biol. Chem., 1999, 274:2072-2076. |
Soengas et al., Apaf-1 and caspase-9 in p53-dependent apoptosis and tumor inhibition, Science, 1999, 284:156-159. |
Srinivasula et al., Identification of an endogenous dominant-negative short isoform of caspase-9 that can reguate apoptosis, Cancer Res., 1999, 999-1002. |
Thornberry, The caspase family of cysteine proteases, Br. Med. Bull., 1997, 53:478-490. |
Tinsley et al., Caspases -2, -3, -6, and -9, but not caspase-1, are activated in sepsis-induced thymocyte apoptosis, Shock, 2000, 13:1-7. |
Wang et al., Induction of apoptosis by apigenin and related flavonoids through cytochrome c release and activation of caspase-9 and caspase-3 in leukaemia HL-60 Cells, Eur. J. Cancer, 1999, 35:1517-1525. |
Zhuang et al., Release of mitochondrial cytochrome c is upstream of caspase activation in chemical-induced apoptosis in human monocytic tumour cells, Toxicol. Lett., 1998, 102-103:121-129. |