| Adams, S. R. et al., “Biologically Useful Chelators That Take Up Ca2+ upon Illumination,” J. Am. Chem. Soc. 111:7957-7968 (1989). |
| Almeri. E .S. et al., “Human ICE/CED-3 Protease Nomenclature,” Cell 87:171 (1996). |
| An, S. and K. A. Knox, “Ligation of CD40 rescues Ramos-Burkitt Lymphoma B cells from calcium ionophore-and antigen receptor-triggered apoptosis by inhibiting activation of the cytsteine protease CPP32/Yama and cleavage of its substrate PARP,” FEBS Letters 386:115-122 (1996). |
| Armstrong, R. C. et al., “Fas-induced Activation of the Cell Death-related Protease CPP32 Is Inhibited by Bcl-2 and by ICE Family Protease Inhibitors,” J. Biol. Chem. 271:16850-16855 (1996). |
| Assfalg-Machleidt, I., et al., “Membrane Permeable Fluorogenic Rhodamine Substrates for Selective Determination of Cathepsin L,” Biol. Chem. Hoppe-Seyler 373:433-440 (1992). |
| Bonneau, P. R. et al., “Design of Fluorogenic Peptide Substrates for Human Cytomegalovirus Protease Based on Structure-Activity Relationship Studies,” Analyt. Biochem. 255:59-65 (1998). |
| di Givione, F. S. and G. W. Duff, “Interleukin 1: the first interleukin,” Immunol. Today 11:13-19 (1990). |
| Dilanni, C. L. et al., “In Vitro Activity of the Herpes Simplex Virus Type 1 Protease with Peptide Substrates,” J. Biol. Chem. 268:25449-25454 (1993). |
| Dinarello, C. A., “Interleukin-1 and Interleukin-1 Antagonism,” Blood 77:1627-1652 (1991). |
| Ding, J. et al., “Crystal structure of the human adenoviruus proteinase with its 11 amino acid cofactor,” EMBO J. 15:1778-1783 (1996). |
| Diouri, M. et al., “Cleavage Efficiency by Adenovirus Protease Is Site-dependent,” J. Biol. Chem. 271:32511-32514 (1996). |
| Evans, D. B. et al., “An Ultrasensitive Human Immunodeficiency Virus Type 1 Protease Radioimmuno Rate Assay with a Potential for Monitoring Blood Levels of Protease Inhibitors in Acquired Immunodeficiency Disease Syndrome Patients,” Analyt. Biochem. 206:288-292 (1992). |
| Friesen, C. et al., “Involvement of the CD95 (APO-1/Fas) receptor/Ligand system in drug-induced apoptosis in leukemia cells,” Nature Med.2:574-577 (1996). |
| Fulda, S. et al., “Betulinic Acid Triggers CD95 (APO-1/Fas)-and p53-independent Apoptosis via Activation of Caspases in Neuroectodermal Tumors,” Cancer Research 57:4956-4964 (Nov. 1, 1997). |
| Gamen, S. et al., “Doxorubicin-induced apoptosis in human T-cell leukemia is mediated by caspase-3 activation in a Fas-independent way,” FEBS Lett. 417:360-364 (Nov. 1997). |
| Ganesh, S., et al., “Flow Cytometric Determination of Aminopeptidase Activities in Viable Cells Using Fluorgenic Rhodamine 110 Substrates,” Cytometry 20:334-340 (1995). |
| Gao, M. et al., “The Protease of Herpes Simplex Virus Type 1 Is Essential for Functional Capsid Formation and Viral Growth,” J. Virol. 68:3702-3712 (1994). |
| Griffith, E. C. et al., “Methionine aminopeptidase (type 2) is the common target for angiogenesis inhibitors AGM-1470 and ovalicin,” Chem. Biol. 4:461-471 (Jun. 1997). |
| Haugland, R. P., and Johnson, I. D., “Detecting Enzymes in Living Cells Using Fluorgenic Substrates,” J. Fluorescence 3:119-127 (1993). |
| Haugland, R. P., “etecting Enzymatic Activity in Cells Using Fluorgenic Substrates,” Biotechnic & Histochem. 70:243-251 (1995). |
| Haugland, R. P., “Handbook of Fluorescent Probes and Research Chemicals”. Molecular Probes, Inc., Eugene, OR, pp. 28, 54 (1996). |
| Haugland, R. P., “Handbook of Fluorescent Probes and Research Chemicals, Sixth Edition,” Molecular Probes, Inc., pp. 226-228 (1996). |
| Hickman, J. A., “Apoptosis induced by anticancer drugs,” Cancer and Metastasis Rev. 11:121-139 (1992). |
| Holskin, B. P. et al., “A Continuous Fluorescent-Based Assay of Human Cytomegalovirus Protease Using a Peptide Substrate,” Analyt. Biochem. 226:148-155 (1995). |
| Hyland, L. J. et al., “A Radiometric Assay for HIV-1 Protease,” Analyt. Biochem. 188:408-415 (1990). |
| Joensuu, H. et al., “Bcl-2 Protein Expression and Long-Term Survival in Breast Cancer,” Am. J. Pathol. 145:1191-1198 (1994). |
| Johnson, A. F., et al., “Nonisotopic DNA Detection System Employing Elastase and a Fluorogenic Rhodamine Substrate,” Anal. Chem. 65:2352-2359 (1993). |
| Klingel, S., et al., “Flow Cytometric Determination of Cysteine and Serine Proteinase Activities in Living Cells with Rhodamine 110 Substrates,” Meth. Cell Biol. 41:449-459 (1994). |
| Leytus, S. P., et al., “Rhodamine-based compounds as fluorogenic substrates for serine proteinase,” Biochem. J. 209:299-307 (1983). |
| Leytus, S. P., et al., “New class of sensitive and selective fluorogenic substrates for serine proteinases,” Biochem. J. 215:253-260 (1983). |
| Li, X. and Y.-H. Chang, “Evidence That the Human Homologue of a Rat Initiation Factor-2 Associated Protein (p67) Is a Methonine Aminopeptidase,” Biochem. Biophys. Res. Comm. 227:152-159 (1996). |
| Los, M. et al., “Requirement of an ICE/CED-3 protease for Fas/APO-1-mediated apoptosis,” Nature 375:81-83 (1995). |
| Los, M. et al., “Cross-Resistance of CD95-and Drug-Induced Apoptosis as a Consequence of Deficient Activation of Caspases (ICE/Ced-3 Proteases),” Blood 900:3118-3129 (Oct. 1997). |
| Maldonado, V. et al., “Modulation of NF-κB, p53 and Bcl-2 in apoptosis induced by cisplatin in HeLa Cells,” Mutation Res. 381:67-75 (Nov. 1997). |
| Martin, J. A. et al., “5 Inhibitors of HIV Proteinase,” Prog. Med. Chem. 32:239-287 (1995). |
| Matayoshi, E. D. et al., “Novel Fluorogenic Substrates for Assaying Retroviral Protease by Resonance Energy Transfer,” Science 247:954-958 (1990). |
| McCann III, P. J. et al., “Invesitgation of the Specificity of the Herpes Simplex Virus Type 1 Protease by Point Mutagenesis of the Autoproteolysis Sites,” J. Virol. 68:526-529 (1994). |
| Miller, L. K., “Baculovirus Interaction With Host Apoptotic Pathways,” J. Cell. Physiol. 173:178-182 (Nov. 1997). |
| Miura, M. et al., “Induction of Apoptosis in Fibroblasts by IL-1β-Converting Enzyme, a Mammalian Homolog of the C. elegans Cell Death Gene ced-3,” Cell 75:653-660 (1993). |
| Mohr, S. et al., “Macrophages resistant to endogenously generated nitric oxide-mediated apoptosis are hypersensitive to exogenously added nitric oxide donors: Dichotomous apoptotic response independent of caspase 3 and reversal by the mitogen-activated protein kinase kinase (MEK) inhibitor PD 098059,” Proc. Natl. Acad. Sci. USA 95: 5045-5050 (Apr., 1998). |
| Molecular Probes, Inc., “Alphabetical Price List of New Products,” Molecular Probes, Inc., pp. 1-4 (1994). |
| Morliere, P., et al., “Interaction of Tetrapyrrolic Rings with Rhodamine 110 and 123 and with Rhodamine 110 Derivatives Bearing A Peptidic Side Chain,” Biochem. Biophys. Res. Comm. 146:107-113 (1987). |
| Mosley, B. et al., “The Interleukin-1 Receptor Binds the Human Interleukin-1α Precursor but Not the Interleukin-1β Precursor,” J. Biol. Chem. 262:2941-2944(1987). |
| O'Boyle, D. R. et al., “Identification of a Novel Peptide Substrate of HSV-1 Protease Using Substrate Phage Display,” Virology 236:338-347 (Sep. 1997). |
| Oppenheim, J. J. et al., “There is more than one interleukin 1,” Immunol. Today 7:45-56 (1986). |
| Qi, X.-M. et al., “Baculovirus p35 and 2-VAD-fmk inhibit thapsigargin-inducd apoptosis of breast cancer cells,” Oncogene 15: 1207-1212 (Sep. 4, 1997). |
| Richards, A. D. et al., “Sensitive, Soluble Chromogenic Substrates for HIV-1 Proteinase,” J. Biol. Chem. 265:7733-7736 (1990). |
| Rothe, G., et al., “Flow Cytometric Analysis of Protease Activities in Vital Cells,” Biol. Chem. Hoppe-Seyler 373:547-554. |
| Sin, N. et al., “The anti-angiogenic agent fumagillin covalently binds and inhibits the methionine aminopeptidase, MetAP-2,” Proc. Natl. Acad. Sci. USA 94:6099-6103 (Jun. 1997). |
| Stevens, J. T. et al., “In vitro proteolytic activity and active-site identification of the human cytomegalovirus protease,” Eur. J. Biochem. 226:361-367 (1994). |
| Tamburini, P. P. et al., “A Fluormetric Assay for HIV-Protease Activity Using High-Performance Liquid Chromamtography,” Analyt. Biochem. 186:363-368 (1990). |
| Thornberry, N. A. et al., “A novel heterodimeric cysteine protease is required for interleukin-1β processing in monocytes,” Nature 356:768-774 (1992). |
| Thornberry, N. A. et al., “A Combinatorial Approach Defines Specificities of Members of the Caspase Family and Granzyme B,” J. Biol. Chem. 272:17907-17911 (Jul. 1997). |
| Toth, M.V. and G. R. Marshall, “A simple, continuous fluorometric assay for HIV protease,” Int. J. Peptide Protein Res. 36:544-550 (1990). |
| Tyagi, S. C. and C. A. Carter, “Continuous Assay of the Hydrolytic Activity of Human Immunodeficiency Virus-1 Protease,” Analyt. Biochem. 200:143-148 (1992). |
| Webb, N. R. and M. D. Summers, “Expression of Proteins Using Recombinant Baculoviruses,” Tech.-J. Meth. Cell Molec. Biol. 2:173-188 (1990). |
| Weber, J. M., “Adenovirus Endopeptidase and Its Role in Virus Infection,” Curr. Topic Microbiol. Immunol. 199:227-235 (1995). |
| West, M. L. and D. P. Fairlie, “Targeting HIV-1 protease: a test of drug-design methodologies,” TiPS 16 :67-74 (1995). |
| Yoon, H. J. et al., “DNA topoisomerase II cleavage of telomeres in vitro and in vivo,” Biochem. et Biophys. Acta 1395:110-120 (Jan. 1998). |
| Yuan, J. et al., “The C. elegans Cell Death Gene ced-3 Encodes a Protein Similar to Mammalian Interleukin-1β-Converting Enzyme,” Cell 75:641-652 (1993). |
| Zhang, R. et al., “Probing the Substrate Specificity of Hepatitis C Virus NS3 Serine Protease by Using Synthetic Peptides,” J. Virol. 71:6208-6213 (Aug. 1997). |
| International Search Report of International Application No. PCT/US98/21231, Feb. 1, 1999. |