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Erschienen in: Cancer Chemotherapy and Pharmacology 3/2014

01.03.2014 | Original Article

Phase I dose-escalation study of AZD7762, a checkpoint kinase inhibitor, in combination with gemcitabine in US patients with advanced solid tumors

verfasst von: Edward Sausville, Patricia LoRusso, Michael Carducci, Judith Carter, Mary F. Quinn, Lisa Malburg, Nilofer Azad, David Cosgrove, Richard Knight, Peter Barker, Sonya Zabludoff, Felix Agbo, Patricia Oakes, Adrian Senderowicz

Erschienen in: Cancer Chemotherapy and Pharmacology | Ausgabe 3/2014

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Abstract

Purpose

AZD7762 is a Chk1 kinase inhibitor which increases sensitivity to DNA-damaging agents, including gemcitabine. We evaluated the safety of AZD7762 monotherapy and with gemcitabine in advanced solid tumor patients.

Experimental design

In this Phase I study, patients received intravenous AZD7762 on days 1 and 8 of a 14-day run-in cycle (cycle 0; AZD7762 monotherapy), followed by AZD7762 plus gemcitabine 750–1,000 mg/m2 on days 1 and 8, every 21 days, in ascending AZD7762 doses (cycle 1; combination therapy).

Results

Forty-two patients received AZD7762 6 mg (n = 9), 9 mg (n = 3), 14 mg (n = 6), 21 mg (n = 3), 30 mg (n = 7), 32 mg (n = 6), and 40 mg (n = 8), in combination with gemcitabine. Common adverse events (AEs) were fatigue [41 % (17/42) patients], neutropenia/leukopenia [36 % (15/42) patients], anemia/Hb decrease [29 % (12/42) patients] and nausea, pyrexia and alanine aminotransferase/aspartate aminotransferase increase [26 % (11/42) patients each]. Grade ≥3 AEs occurred in 19 and 52 % of patients in cycles 0 and 1, respectively. Cardiac dose-limiting toxicities occurred in two patients (both AZD7762 monotherapy): grade 3 troponin I increase (32 mg) and grade 3 myocardial ischemia with chest pain, electrocardiogram changes, decreased left ventricular ejection fraction, and increased troponin I (40 mg). AZD7762 exposure increased linearly. Gemcitabine did not affect AZD7762 pharmacokinetics. Two non-small-cell lung cancer patients achieved partial tumor responses (AZD7762 6 mg/gemcitabine 750 mg/m2 and AZD7762 9 mg cohort).

Conclusions

The maximum-tolerated dose of AZD7762 in combination with gemcitabine 1,000 mg/m2 was 30 mg. Although development of AZD7762 is not going forward owing to unpredictable cardiac toxicity, Chk1 remains an important therapeutic target.
Literatur
1.
Zurück zum Zitat Weinert TA, Hartwell LH (1988) The RAD9 gene controls the cell cycle response to DNA damage in Saccharomyces cerevisiae. Science 241:317–322PubMedCrossRef Weinert TA, Hartwell LH (1988) The RAD9 gene controls the cell cycle response to DNA damage in Saccharomyces cerevisiae. Science 241:317–322PubMedCrossRef
2.
Zurück zum Zitat Hartwell LH, Weinert TA (1989) Checkpoints: controls that ensure the order of cell cycle events. Science 246:629–634PubMedCrossRef Hartwell LH, Weinert TA (1989) Checkpoints: controls that ensure the order of cell cycle events. Science 246:629–634PubMedCrossRef
3.
Zurück zum Zitat Wahl GM, Linke SP, Paulson TG, Huang LC (1997) Maintaining genetic stability through TP53 mediated checkpoint control. Cancer Surv 29:183–219PubMed Wahl GM, Linke SP, Paulson TG, Huang LC (1997) Maintaining genetic stability through TP53 mediated checkpoint control. Cancer Surv 29:183–219PubMed
4.
Zurück zum Zitat Abraham RT (2001) Cell cycle checkpoint signaling through the ATM and ATR kinases. Genes Dev 15:2177–2196PubMedCrossRef Abraham RT (2001) Cell cycle checkpoint signaling through the ATM and ATR kinases. Genes Dev 15:2177–2196PubMedCrossRef
5.
Zurück zum Zitat Zinkel S, Gross A, Yang E (2006) BCL2 family in DNA damage and cell cycle control. Cell Death Differ 13:1351–1359PubMedCrossRef Zinkel S, Gross A, Yang E (2006) BCL2 family in DNA damage and cell cycle control. Cell Death Differ 13:1351–1359PubMedCrossRef
6.
Zurück zum Zitat Lau CC, Pardee AB (1982) Mechanism by which caffeine potentiates lethality of nitrogen mustard. Proc Natl Acad Sci USA 79:2942–2946PubMedCrossRef Lau CC, Pardee AB (1982) Mechanism by which caffeine potentiates lethality of nitrogen mustard. Proc Natl Acad Sci USA 79:2942–2946PubMedCrossRef
7.
Zurück zum Zitat Sausville EA, Johnson J, Alley M, Zaharevitz D, Senderowicz AM (2000) Inhibition of CDKs as a therapeutic modality. Ann N Y Acad Sci 910:207–221PubMedCrossRef Sausville EA, Johnson J, Alley M, Zaharevitz D, Senderowicz AM (2000) Inhibition of CDKs as a therapeutic modality. Ann N Y Acad Sci 910:207–221PubMedCrossRef
9.
Zurück zum Zitat Wang Q, Worland PJ, Clark JL, Carlson BA, Sausville EA (1995) Apoptosis in 7-hydroxystaurosporine-treated T lymphoblasts correlates with activation of cyclin-dependent kinases 1 and 2. Cell Growth Differ 6:927–936PubMed Wang Q, Worland PJ, Clark JL, Carlson BA, Sausville EA (1995) Apoptosis in 7-hydroxystaurosporine-treated T lymphoblasts correlates with activation of cyclin-dependent kinases 1 and 2. Cell Growth Differ 6:927–936PubMed
10.
Zurück zum Zitat Graves PR, Yu L, Schwarz JK, Gales J, Sausville EA, O’Connor PM, Piwnica-Worms H (2000) The Chk1 protein kinase and the Cdc25C regulatory pathways are targets of the anticancer agent UCN-01. J Biol Chem 275:5600–5605PubMedCrossRef Graves PR, Yu L, Schwarz JK, Gales J, Sausville EA, O’Connor PM, Piwnica-Worms H (2000) The Chk1 protein kinase and the Cdc25C regulatory pathways are targets of the anticancer agent UCN-01. J Biol Chem 275:5600–5605PubMedCrossRef
11.
Zurück zum Zitat Zhao B, Bower MJ, McDevitt PJ, Zhao H, Davis ST, Johanson KO, Green SM, Concha NO, Zhou BB (2002) Structural basis for Chk1 inhibition by UCN-01. J Biol Chem 277:46609–46615PubMedCrossRef Zhao B, Bower MJ, McDevitt PJ, Zhao H, Davis ST, Johanson KO, Green SM, Concha NO, Zhou BB (2002) Structural basis for Chk1 inhibition by UCN-01. J Biol Chem 277:46609–46615PubMedCrossRef
12.
Zurück zum Zitat Wang Q, Fan S, Eastman A, Worland PJ, Sausville EA, O’Connor PM (1996) UCN-01: a potent abrogator of G2 checkpoint function in cancer cells with disrupted p53. J Natl Cancer Inst 88:956–965PubMedCrossRef Wang Q, Fan S, Eastman A, Worland PJ, Sausville EA, O’Connor PM (1996) UCN-01: a potent abrogator of G2 checkpoint function in cancer cells with disrupted p53. J Natl Cancer Inst 88:956–965PubMedCrossRef
13.
Zurück zum Zitat Fuse E, Tanii H, Kurata N, Kobayashi H, Shimada Y, Tamura T, Sasaki Y, Tanigawara Y, Lush RD, Headlee D, Figg WD, Arbuck SG, Senderowicz AM, Sausville EA, Akinaga S, Kuwabara T, Kobayashi S (1998) Unpredicted clinical pharmacology of UCN-01 caused by specific binding to human alpha1-acid glycoprotein. Cancer Res 58:3248–3253PubMed Fuse E, Tanii H, Kurata N, Kobayashi H, Shimada Y, Tamura T, Sasaki Y, Tanigawara Y, Lush RD, Headlee D, Figg WD, Arbuck SG, Senderowicz AM, Sausville EA, Akinaga S, Kuwabara T, Kobayashi S (1998) Unpredicted clinical pharmacology of UCN-01 caused by specific binding to human alpha1-acid glycoprotein. Cancer Res 58:3248–3253PubMed
14.
Zurück zum Zitat Sausville EA, Arbuck SG, Messmann R, Headlee D, Bauer KS, Lush RM, Murgo A, Figg WD, Lahusen T, Jaken S, Jing X, Roberge M, Fuse E, Kuwabara T, Senderowicz AM (2001) Phase I trial of 72-hour continuous infusion UCN-01 in patients with refractory neoplasms. J Clin Oncol 19:2319–2333PubMed Sausville EA, Arbuck SG, Messmann R, Headlee D, Bauer KS, Lush RM, Murgo A, Figg WD, Lahusen T, Jaken S, Jing X, Roberge M, Fuse E, Kuwabara T, Senderowicz AM (2001) Phase I trial of 72-hour continuous infusion UCN-01 in patients with refractory neoplasms. J Clin Oncol 19:2319–2333PubMed
15.
Zurück zum Zitat Sato S, Fujita N, Tsuruo T (2002) Interference with PDK1-Akt survival signaling pathway by UCN-01 (7-hydroxystaurosporine). Oncogene 21:1727–1738PubMedCrossRef Sato S, Fujita N, Tsuruo T (2002) Interference with PDK1-Akt survival signaling pathway by UCN-01 (7-hydroxystaurosporine). Oncogene 21:1727–1738PubMedCrossRef
16.
Zurück zum Zitat Zabludoff SD, Deng C, Grondine MR, Sheehy AM, Ashwell S, Caleb BL, Green S, Haye HR, Horn CL, Janetka JW, Liu D, Mouchet E, Ready S, Rosenthal JL, Queva C, Schwartz GK, Taylor KJ, Tse AN, Walker GE, White AM (2008) AZD7762, a novel checkpoint kinase inhibitor, drives checkpoint abrogation and potentiates DNA-targeted therapies. Mol Cancer Ther 7:2955–2966PubMedCrossRef Zabludoff SD, Deng C, Grondine MR, Sheehy AM, Ashwell S, Caleb BL, Green S, Haye HR, Horn CL, Janetka JW, Liu D, Mouchet E, Ready S, Rosenthal JL, Queva C, Schwartz GK, Taylor KJ, Tse AN, Walker GE, White AM (2008) AZD7762, a novel checkpoint kinase inhibitor, drives checkpoint abrogation and potentiates DNA-targeted therapies. Mol Cancer Ther 7:2955–2966PubMedCrossRef
17.
Zurück zum Zitat Mitchell JB, Choudhuri R, Fabre K, Sowers AL, Citrin D, Zabludoff Z, Cook JA (2010) In vitro and in vivo radiation sensitization of human tumor cells by a novel checkpoint kinase inhibitor, AZD7762. Clin Cancer Res 16:2076–2084PubMedCentralPubMedCrossRef Mitchell JB, Choudhuri R, Fabre K, Sowers AL, Citrin D, Zabludoff Z, Cook JA (2010) In vitro and in vivo radiation sensitization of human tumor cells by a novel checkpoint kinase inhibitor, AZD7762. Clin Cancer Res 16:2076–2084PubMedCentralPubMedCrossRef
19.
Zurück zum Zitat Rowland M, Tozer TN (1995) Clinical pharmacokinetics: concepts and applications, 3rd edn. Lippincott, Williams and Wilkins, Philadelphia, USA Rowland M, Tozer TN (1995) Clinical pharmacokinetics: concepts and applications, 3rd edn. Lippincott, Williams and Wilkins, Philadelphia, USA
20.
Zurück zum Zitat Therasse P, Arbuck SG, Eisenhauer EA, Wanders J, Kaplan RS, Rubinstein L, Verweij J, Van Glabbeke M, van Oosterom AT, Christian MC, Gwyther SG (2000) New guidelines to evaluate the response to treatment in solid tumors. European Organization for Research and Treatment of Cancer, National Cancer Institute of the United States, National Cancer Institute of Canada. J Natl Cancer Inst 92:205–216PubMedCrossRef Therasse P, Arbuck SG, Eisenhauer EA, Wanders J, Kaplan RS, Rubinstein L, Verweij J, Van Glabbeke M, van Oosterom AT, Christian MC, Gwyther SG (2000) New guidelines to evaluate the response to treatment in solid tumors. European Organization for Research and Treatment of Cancer, National Cancer Institute of the United States, National Cancer Institute of Canada. J Natl Cancer Inst 92:205–216PubMedCrossRef
21.
Zurück zum Zitat Morgan MA, Parsels LA, Zhao L, Parsels JD, Davis MA, Hassan MC, Arumugarajah S, Hylander-Gans L, Morosini D, Simeone DM, Canman CE, Normolle DP, Zabludoff SD, Maybaum J, Lawrence TS (2010) Mechanism of radiosensitization by the Chk1/2 inhibitor AZD7762 involves abrogation of the G2 checkpoint and inhibition of homologous recombinational DNA repair. Cancer Res 70:4972–4981PubMedCentralPubMedCrossRef Morgan MA, Parsels LA, Zhao L, Parsels JD, Davis MA, Hassan MC, Arumugarajah S, Hylander-Gans L, Morosini D, Simeone DM, Canman CE, Normolle DP, Zabludoff SD, Maybaum J, Lawrence TS (2010) Mechanism of radiosensitization by the Chk1/2 inhibitor AZD7762 involves abrogation of the G2 checkpoint and inhibition of homologous recombinational DNA repair. Cancer Res 70:4972–4981PubMedCentralPubMedCrossRef
22.
Zurück zum Zitat Ho AL, Bendell JC, Cleary JM, Schwartz GK, Burris HA, Oakes P, Agbo F, Barker PN, Senderowicz AM, Shapiro G (2011) Phase I, open-label, dose–escalation study of AZD7762 in combination with irinotecan (irino) in patients (pts) with advanced solid tumors. J Clin Oncol 29(15S):abst 3033 Ho AL, Bendell JC, Cleary JM, Schwartz GK, Burris HA, Oakes P, Agbo F, Barker PN, Senderowicz AM, Shapiro G (2011) Phase I, open-label, dose–escalation study of AZD7762 in combination with irinotecan (irino) in patients (pts) with advanced solid tumors. J Clin Oncol 29(15S):abst 3033
23.
Zurück zum Zitat Seto T, Esaki T, Hirai T, Arita S, Nosaki K, Makiyama A, Kometani T, Fujimoto C, Hamatake M, Takeoka H, Agbo F, Shi X (2013) Phase I, dose–escalation study of AZD7762 alone and in combination with gemcitabine in Japanese patients with advanced solid tumors. Cancer Chemother Pharmacol 72:619–627PubMedCrossRef Seto T, Esaki T, Hirai T, Arita S, Nosaki K, Makiyama A, Kometani T, Fujimoto C, Hamatake M, Takeoka H, Agbo F, Shi X (2013) Phase I, dose–escalation study of AZD7762 alone and in combination with gemcitabine in Japanese patients with advanced solid tumors. Cancer Chemother Pharmacol 72:619–627PubMedCrossRef
24.
Zurück zum Zitat Takai H, Tominaga K, Motoyama N, Minamishima YA, Nagahama H, Tsukiyama T, Ikeda K, Nakayama K, Nakanishi M, Nakayama K (2000) Aberrant cell cycle checkpoint function and early embryonic death in Chk1(-/-) mice. Genes Dev 14:1439–1447PubMed Takai H, Tominaga K, Motoyama N, Minamishima YA, Nagahama H, Tsukiyama T, Ikeda K, Nakayama K, Nakanishi M, Nakayama K (2000) Aberrant cell cycle checkpoint function and early embryonic death in Chk1(-/-) mice. Genes Dev 14:1439–1447PubMed
25.
26.
Zurück zum Zitat Doganli C, Kjaer-Sorensen K, Knoeckel C, Beck HC, Nyengaard JR, Honore B, Nissen P, Ribera A, Oxvig C, Lykke-Hartmann K (2012) The alpha 2Na+/K+-ATPase is critical for skeletal and heart muscle function in zebrafish. J Cell Sci 125:6166–6175PubMedCrossRef Doganli C, Kjaer-Sorensen K, Knoeckel C, Beck HC, Nyengaard JR, Honore B, Nissen P, Ribera A, Oxvig C, Lykke-Hartmann K (2012) The alpha 2Na+/K+-ATPase is critical for skeletal and heart muscle function in zebrafish. J Cell Sci 125:6166–6175PubMedCrossRef
27.
Zurück zum Zitat Karp JE, Thomas BM, Greer JM, Sorge C, Gore SD, Pratz KW, Smith BD, Flatten K, Peterson KL, Schneider P, Mackey K, Freshwater T, Levis M, McDevitt M, Carraway HE, Gladstone DE, Showel MM, Loechner S, Parry DA, Horowitz JA, Issacs R, Kaufmann SH (2012) Phase I and pharmacologic trial of cytosine arabinoside with the selective checkpoint 1 inhibitor SCH 900776 in refractory acute leukemias. Clin Cancer Res 18:6723–6731PubMedCentralPubMedCrossRef Karp JE, Thomas BM, Greer JM, Sorge C, Gore SD, Pratz KW, Smith BD, Flatten K, Peterson KL, Schneider P, Mackey K, Freshwater T, Levis M, McDevitt M, Carraway HE, Gladstone DE, Showel MM, Loechner S, Parry DA, Horowitz JA, Issacs R, Kaufmann SH (2012) Phase I and pharmacologic trial of cytosine arabinoside with the selective checkpoint 1 inhibitor SCH 900776 in refractory acute leukemias. Clin Cancer Res 18:6723–6731PubMedCentralPubMedCrossRef
28.
Zurück zum Zitat Depamphilis ML, de Renty CM, Ullah Z, Lee CY (2012) “The Octet”: eight protein kinases that control mammalian DNA replication. Front Physiol 3:368PubMedCentralPubMedCrossRef Depamphilis ML, de Renty CM, Ullah Z, Lee CY (2012) “The Octet”: eight protein kinases that control mammalian DNA replication. Front Physiol 3:368PubMedCentralPubMedCrossRef
Metadaten
Titel
Phase I dose-escalation study of AZD7762, a checkpoint kinase inhibitor, in combination with gemcitabine in US patients with advanced solid tumors
verfasst von
Edward Sausville
Patricia LoRusso
Michael Carducci
Judith Carter
Mary F. Quinn
Lisa Malburg
Nilofer Azad
David Cosgrove
Richard Knight
Peter Barker
Sonya Zabludoff
Felix Agbo
Patricia Oakes
Adrian Senderowicz
Publikationsdatum
01.03.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
Cancer Chemotherapy and Pharmacology / Ausgabe 3/2014
Print ISSN: 0344-5704
Elektronische ISSN: 1432-0843
DOI
https://doi.org/10.1007/s00280-014-2380-5

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