Skip to main content
Top
Published in: BMC Cancer 1/2013

Open Access 01-12-2013 | Research article

Dimethylaminoparthenolide and gemcitabine: a survival study using a genetically engineered mouse model of pancreatic cancer

Authors: Michele T Yip-Schneider, Huangbing Wu, Keith Stantz, Narasimhan Agaram, Peter A Crooks, C Max Schmidt

Published in: BMC Cancer | Issue 1/2013

Login to get access

Abstract

Background

Pancreatic cancer remains one of the deadliest cancers due to lack of early detection and absence of effective treatments. Gemcitabine, the current standard-of-care chemotherapy for pancreatic cancer, has limited clinical benefit. Treatment of pancreatic cancer cells with gemcitabine has been shown to induce the activity of the transcription factor nuclear factor-kappaB (NF-κB) which regulates the expression of genes involved in the inflammatory response and tumorigenesis. It has therefore been proposed that gemcitabine-induced NF-κB activation may result in chemoresistance. We hypothesize that NF-κB suppression by the novel inhibitor dimethylaminoparthenolide (DMAPT) may enhance the effect of gemcitabine in pancreatic cancer.

Methods

The efficacy of DMAPT and gemcitabine was evaluated in a chemoprevention trial using the mutant Kras and p53-expressing LSL-Kras G12D/+ ; LSL-Trp53 R172H ; Pdx-1-Cre mouse model of pancreatic cancer. Mice were randomized to treatment groups (placebo, DMAPT [40 mg/kg/day], gemcitabine [50 mg/kg twice weekly], and the combination DMAPT/gemcitabine). Treatment was continued until mice showed signs of ill health at which time they were sacrificed. Plasma cytokine levels were determined using a Bio-Plex immunoassay. Statistical tests used included log-rank test, ANOVA with Dunnett’s post-test, Student’s t-test, and Fisher exact test.

Results

Gemcitabine or the combination DMAPT/gemcitabine significantly increased median survival and decreased the incidence and multiplicity of pancreatic adenocarcinomas. The DMAPT/gemcitabine combination also significantly decreased tumor size and the incidence of metastasis to the liver. No significant differences in the percentages of normal pancreatic ducts or premalignant pancreatic lesions were observed between the treatment groups. Pancreata in which no tumors formed were analyzed to determine the extent of pre-neoplasia; mostly normal ducts or low grade pancreatic lesions were observed, suggesting prevention of higher grade lesions in these animals. While gemcitabine treatment increased the levels of the inflammatory cytokines interleukin 1α (IL-1α), IL-1β, and IL-17 in mouse plasma, DMAPT and DMAPT/gemcitabine reduced the levels of the inflammatory cytokines IL-12p40, monocyte chemotactic protein-1 (MCP-1), macrophage inflammatory protein-1 beta (MIP-1β), eotaxin, and tumor necrosis factor-alpha (TNF-α), all of which are NF-κB target genes.

Conclusion

In summary, these findings provide preclinical evidence supporting further evaluation of agents such as DMAPT and gemcitabine for the prevention and treatment of pancreatic cancer.
Appendix
Available only for authorised users
Literature
1.
go back to reference Siegel R, Ward E, Brawley O, Jemal A: Cancer statistics, 2011: The impact of eliminating socioeconomic and racial disparities on premature cancer deaths. CA Cancer J Clin. 2011, 61: 212-236. 10.3322/caac.20121.CrossRefPubMed Siegel R, Ward E, Brawley O, Jemal A: Cancer statistics, 2011: The impact of eliminating socioeconomic and racial disparities on premature cancer deaths. CA Cancer J Clin. 2011, 61: 212-236. 10.3322/caac.20121.CrossRefPubMed
2.
go back to reference Burris H, Storniolo AM: Assessing clinical benefit in the treatment of pancreas cancer: gemcitabine compared to 5-fluorouracil. Eur J Cancer. 1997, 33 (Suppl 1): S18-S22.CrossRefPubMed Burris H, Storniolo AM: Assessing clinical benefit in the treatment of pancreas cancer: gemcitabine compared to 5-fluorouracil. Eur J Cancer. 1997, 33 (Suppl 1): S18-S22.CrossRefPubMed
3.
go back to reference Burris HA, Moore MJ, Andersen J, Green MR, Rothenberg ML, Modiano MR, Cripps MC, Portenoy RK, Storniolo AM, Tarassoff P: Improvements in survival and clinical benefit with gemcitabine as first- line therapy for patients with advanced pancreas cancer: a randomized trial [see comments]. J Clin Oncol. 1997, 15: 2403-2413.PubMed Burris HA, Moore MJ, Andersen J, Green MR, Rothenberg ML, Modiano MR, Cripps MC, Portenoy RK, Storniolo AM, Tarassoff P: Improvements in survival and clinical benefit with gemcitabine as first- line therapy for patients with advanced pancreas cancer: a randomized trial [see comments]. J Clin Oncol. 1997, 15: 2403-2413.PubMed
4.
go back to reference el-Kamar FG, Grossbard ML, Kozuch PS: Metastatic pancreatic cancer: emerging strategies in chemotherapy and palliative care. Oncologist. 2003, 8: 18-34.CrossRefPubMed el-Kamar FG, Grossbard ML, Kozuch PS: Metastatic pancreatic cancer: emerging strategies in chemotherapy and palliative care. Oncologist. 2003, 8: 18-34.CrossRefPubMed
5.
go back to reference Oh HC, Seo DW, Song TJ, Moon SH, Park do H, Soo Lee S, Lee SK, Kim MH, Kim J: Endoscopic ultrasonography-guided ethanol lavage with paclitaxel injection treats patients with pancreatic cysts. Gastroenterology. 2011, 140: 172-179. 10.1053/j.gastro.2010.10.001.CrossRefPubMed Oh HC, Seo DW, Song TJ, Moon SH, Park do H, Soo Lee S, Lee SK, Kim MH, Kim J: Endoscopic ultrasonography-guided ethanol lavage with paclitaxel injection treats patients with pancreatic cysts. Gastroenterology. 2011, 140: 172-179. 10.1053/j.gastro.2010.10.001.CrossRefPubMed
6.
go back to reference Singh M, Murriel CL, Johnson L: Genetically engineered mouse models: closing the gap between preclinical data and trial outcomes. Cancer Res. 2012, 72: 2695-2700. 10.1158/0008-5472.CAN-11-2786.CrossRefPubMed Singh M, Murriel CL, Johnson L: Genetically engineered mouse models: closing the gap between preclinical data and trial outcomes. Cancer Res. 2012, 72: 2695-2700. 10.1158/0008-5472.CAN-11-2786.CrossRefPubMed
7.
go back to reference Hingorani SR, Wang L, Multani AS, Combs C, Deramaudt TB, Hruban RH, Rustgi AK, Chang S, Tuveson DA: Trp53R172H and KrasG12D cooperate to promote chromosomal instability and widely metastatic pancreatic ductal adenocarcinoma in mice. Cancer Cell. 2005, 7: 469-483. 10.1016/j.ccr.2005.04.023.CrossRefPubMed Hingorani SR, Wang L, Multani AS, Combs C, Deramaudt TB, Hruban RH, Rustgi AK, Chang S, Tuveson DA: Trp53R172H and KrasG12D cooperate to promote chromosomal instability and widely metastatic pancreatic ductal adenocarcinoma in mice. Cancer Cell. 2005, 7: 469-483. 10.1016/j.ccr.2005.04.023.CrossRefPubMed
8.
go back to reference Baumgart S, Ellenrieder V, Fernandez-Zapico ME: Oncogenic transcription factors: cornerstones of inflammation-linked pancreatic carcinogenesis. Gut. 2013, 62 (2): 310-316. 10.1136/gutjnl-2011-301008.CrossRefPubMed Baumgart S, Ellenrieder V, Fernandez-Zapico ME: Oncogenic transcription factors: cornerstones of inflammation-linked pancreatic carcinogenesis. Gut. 2013, 62 (2): 310-316. 10.1136/gutjnl-2011-301008.CrossRefPubMed
9.
go back to reference Holcomb B, Yip-Schneider M, Schmidt CM: The role of nuclear factor kappaB in pancreatic cancer and the clinical applications of targeted therapy. Pancreas. 2008, 36: 225-235. 10.1097/MPA.0b013e31815b3207.CrossRefPubMed Holcomb B, Yip-Schneider M, Schmidt CM: The role of nuclear factor kappaB in pancreatic cancer and the clinical applications of targeted therapy. Pancreas. 2008, 36: 225-235. 10.1097/MPA.0b013e31815b3207.CrossRefPubMed
10.
go back to reference Wang W, Abbruzzese JL, Evans DB, Larry L, Cleary KR, Chiao PJ: The nuclear factor-kappa B RelA transcription factor is constitutively activated in human pancreatic adenocarcinoma cells. Clin Cancer Res. 1999, 5: 119-127.PubMed Wang W, Abbruzzese JL, Evans DB, Larry L, Cleary KR, Chiao PJ: The nuclear factor-kappa B RelA transcription factor is constitutively activated in human pancreatic adenocarcinoma cells. Clin Cancer Res. 1999, 5: 119-127.PubMed
11.
go back to reference Ling J, Kang Y, Zhao R, Xia Q, Lee DF, Chang Z, Li J, Peng B, Fleming JB, Wang H: Kras(G12D)-Induced IKK2/beta/NF-kappaB Activation by IL-1alpha and p62 Feedforward Loops Is Required for Development of Pancreatic Ductal Adenocarcinoma. Cancer Cell. 2012, 21: 105-120. 10.1016/j.ccr.2011.12.006.CrossRefPubMedPubMedCentral Ling J, Kang Y, Zhao R, Xia Q, Lee DF, Chang Z, Li J, Peng B, Fleming JB, Wang H: Kras(G12D)-Induced IKK2/beta/NF-kappaB Activation by IL-1alpha and p62 Feedforward Loops Is Required for Development of Pancreatic Ductal Adenocarcinoma. Cancer Cell. 2012, 21: 105-120. 10.1016/j.ccr.2011.12.006.CrossRefPubMedPubMedCentral
12.
go back to reference Stan SD, Singh SV, Brand RE: Chemoprevention strategies for pancreatic cancer. Nat Rev Gastroenterol Hepatol. 2010, 7: 347-356.PubMedPubMedCentral Stan SD, Singh SV, Brand RE: Chemoprevention strategies for pancreatic cancer. Nat Rev Gastroenterol Hepatol. 2010, 7: 347-356.PubMedPubMedCentral
13.
go back to reference Zhang Z, Rigas B: NF-kappaB, inflammation and pancreatic carcinogenesis: NF-kappaB as a chemoprevention target (review). Int J Oncol. 2006, 29: 185-192.PubMed Zhang Z, Rigas B: NF-kappaB, inflammation and pancreatic carcinogenesis: NF-kappaB as a chemoprevention target (review). Int J Oncol. 2006, 29: 185-192.PubMed
14.
go back to reference Neelakantan S, Nasim S, Guzman ML, Jordan CT, Crooks PA: Aminoparthenolides as novel anti-leukemic agents: Discovery of the NF-kappaB inhibitor, DMAPT (LC-1). Bioorg Med Chem Lett. 2009, 19: 4346-4349. 10.1016/j.bmcl.2009.05.092.CrossRefPubMed Neelakantan S, Nasim S, Guzman ML, Jordan CT, Crooks PA: Aminoparthenolides as novel anti-leukemic agents: Discovery of the NF-kappaB inhibitor, DMAPT (LC-1). Bioorg Med Chem Lett. 2009, 19: 4346-4349. 10.1016/j.bmcl.2009.05.092.CrossRefPubMed
15.
go back to reference Yip-Schneider MT, Wu H, Njoku V, Ralstin M, Holcomb B, Crooks PA, Neelakantan S, Sweeney CJ, Schmidt CM: Effect of celecoxib and the novel anti-cancer agent, dimethylamino-parthenolide, in a developmental model of pancreatic cancer. Pancreas. 2008, 37: e45-e53. 10.1097/MPA.0b013e318172b4dd.CrossRefPubMed Yip-Schneider MT, Wu H, Njoku V, Ralstin M, Holcomb B, Crooks PA, Neelakantan S, Sweeney CJ, Schmidt CM: Effect of celecoxib and the novel anti-cancer agent, dimethylamino-parthenolide, in a developmental model of pancreatic cancer. Pancreas. 2008, 37: e45-e53. 10.1097/MPA.0b013e318172b4dd.CrossRefPubMed
16.
go back to reference Yip-Schneider MT, Wu H, Ralstin M, Yiannoutsos C, Crooks PA, Neelakantan S, Noble S, Nakshatri H, Sweeney CJ, Schmidt CM: Suppression of pancreatic tumor growth by combination chemotherapy with sulindac and LC-1 is associated with cyclin D1 inhibition in vivo. Mol Cancer Ther. 2007, 6: 1736-1744. 10.1158/1535-7163.MCT-06-0794.CrossRefPubMed Yip-Schneider MT, Wu H, Ralstin M, Yiannoutsos C, Crooks PA, Neelakantan S, Noble S, Nakshatri H, Sweeney CJ, Schmidt CM: Suppression of pancreatic tumor growth by combination chemotherapy with sulindac and LC-1 is associated with cyclin D1 inhibition in vivo. Mol Cancer Ther. 2007, 6: 1736-1744. 10.1158/1535-7163.MCT-06-0794.CrossRefPubMed
17.
go back to reference Arlt A, Gehrz A, Muerkoster S, Vorndamm J, Kruse ML, Folsch UR, Schafer H: Role of NF-kappaB and Akt/PI3K in the resistance of pancreatic carcinoma cell lines against gemcitabine-induced cell death. Oncogene. 2003, 22: 3243-3251. 10.1038/sj.onc.1206390.CrossRefPubMed Arlt A, Gehrz A, Muerkoster S, Vorndamm J, Kruse ML, Folsch UR, Schafer H: Role of NF-kappaB and Akt/PI3K in the resistance of pancreatic carcinoma cell lines against gemcitabine-induced cell death. Oncogene. 2003, 22: 3243-3251. 10.1038/sj.onc.1206390.CrossRefPubMed
18.
go back to reference Holcomb B, Yip-Schneider MT, Matos JM, Dixon J, Kennard J, Mahomed J, Shanmugam R, Sebolt-Leopold J, Schmidt CM: Pancreatic cancer cell genetics and signaling response to treatment correlate with efficacy of gemcitabine-based molecular targeting strategies. J Gastrointest Surg. 2008, 12: 288-296. 10.1007/s11605-007-0406-6.CrossRefPubMed Holcomb B, Yip-Schneider MT, Matos JM, Dixon J, Kennard J, Mahomed J, Shanmugam R, Sebolt-Leopold J, Schmidt CM: Pancreatic cancer cell genetics and signaling response to treatment correlate with efficacy of gemcitabine-based molecular targeting strategies. J Gastrointest Surg. 2008, 12: 288-296. 10.1007/s11605-007-0406-6.CrossRefPubMed
19.
go back to reference Wang SJ, Gao Y, Chen H, Kong R, Jiang HC, Pan SH, Xue DB, Bai XW, Sun B: Dihydroartemisinin inactivates NF-kappaB and potentiates the anti-tumor effect of gemcitabine on pancreatic cancer both in vitro and in vivo. Cancer Lett. 2010, 293: 99-108. 10.1016/j.canlet.2010.01.001.CrossRefPubMed Wang SJ, Gao Y, Chen H, Kong R, Jiang HC, Pan SH, Xue DB, Bai XW, Sun B: Dihydroartemisinin inactivates NF-kappaB and potentiates the anti-tumor effect of gemcitabine on pancreatic cancer both in vitro and in vivo. Cancer Lett. 2010, 293: 99-108. 10.1016/j.canlet.2010.01.001.CrossRefPubMed
20.
go back to reference Fahy BN, Schlieman MG, Virudachalam S, Bold RJ: Inhibition of AKT abrogates chemotherapy-induced NF-kappaB survival mechanisms: implications for therapy in pancreatic cancer. J Am Coll Surg. 2004, 198: 591-599. 10.1016/j.jamcollsurg.2003.12.005.CrossRefPubMed Fahy BN, Schlieman MG, Virudachalam S, Bold RJ: Inhibition of AKT abrogates chemotherapy-induced NF-kappaB survival mechanisms: implications for therapy in pancreatic cancer. J Am Coll Surg. 2004, 198: 591-599. 10.1016/j.jamcollsurg.2003.12.005.CrossRefPubMed
21.
go back to reference Holcomb BK, Yip-Schneider MT, Waters JA, Beane JD, Crooks PA, Schmidt CM: Dimethylamino parthenolide enhances the inhibitory effects of gemcitabine in human pancreatic cancer cells. J Gastrointest Surg. 2012, 16: 1333-1340. 10.1007/s11605-012-1913-7.CrossRefPubMed Holcomb BK, Yip-Schneider MT, Waters JA, Beane JD, Crooks PA, Schmidt CM: Dimethylamino parthenolide enhances the inhibitory effects of gemcitabine in human pancreatic cancer cells. J Gastrointest Surg. 2012, 16: 1333-1340. 10.1007/s11605-012-1913-7.CrossRefPubMed
22.
go back to reference Yip-Schneider MT, Wu H, Hruban RH, Lowy AM, Crooks PA, Schmidt CM: Efficacy of Dimethylaminoparthenolide and Sulindac in Combination With Gemcitabine in a Genetically Engineered Mouse Model of Pancreatic Cancer. Pancreas. 2013, 42 (1): 160-167. 10.1097/MPA.0b013e318254f455.CrossRefPubMed Yip-Schneider MT, Wu H, Hruban RH, Lowy AM, Crooks PA, Schmidt CM: Efficacy of Dimethylaminoparthenolide and Sulindac in Combination With Gemcitabine in a Genetically Engineered Mouse Model of Pancreatic Cancer. Pancreas. 2013, 42 (1): 160-167. 10.1097/MPA.0b013e318254f455.CrossRefPubMed
23.
go back to reference Hingorani SR, Petricoin EF, Maitra A, Rajapakse V, King C, Jacobetz MA, Ross S, Conrads TP, Veenstra TD, Hitt BA: Preinvasive and invasive ductal pancreatic cancer and its early detection in the mouse. Cancer Cell. 2003, 4: 437-450. 10.1016/S1535-6108(03)00309-X.CrossRefPubMed Hingorani SR, Petricoin EF, Maitra A, Rajapakse V, King C, Jacobetz MA, Ross S, Conrads TP, Veenstra TD, Hitt BA: Preinvasive and invasive ductal pancreatic cancer and its early detection in the mouse. Cancer Cell. 2003, 4: 437-450. 10.1016/S1535-6108(03)00309-X.CrossRefPubMed
24.
go back to reference Funahashi H, Satake M, Dawson D, Huynh NA, Reber HA, Hines OJ, Eibl G: Delayed progression of pancreatic intraepithelial neoplasia in a conditional Kras(G12D) mouse model by a selective cyclooxygenase-2 inhibitor. Cancer Res. 2007, 67: 7068-7071. 10.1158/0008-5472.CAN-07-0970.CrossRefPubMed Funahashi H, Satake M, Dawson D, Huynh NA, Reber HA, Hines OJ, Eibl G: Delayed progression of pancreatic intraepithelial neoplasia in a conditional Kras(G12D) mouse model by a selective cyclooxygenase-2 inhibitor. Cancer Res. 2007, 67: 7068-7071. 10.1158/0008-5472.CAN-07-0970.CrossRefPubMed
25.
go back to reference Hammoud Z, Tan B, Badve S, Bigsby RM: Estrogen promotes tumor progression in a genetically defined mouse model of lung adenocarcinoma. Endocr Relat Cancer. 2008, 15: 475-483. 10.1677/ERC-08-0002.CrossRefPubMed Hammoud Z, Tan B, Badve S, Bigsby RM: Estrogen promotes tumor progression in a genetically defined mouse model of lung adenocarcinoma. Endocr Relat Cancer. 2008, 15: 475-483. 10.1677/ERC-08-0002.CrossRefPubMed
26.
go back to reference Hruban RH, Adsay NV, Albores-Saavedra J, Anver MR, Biankin AV, Boivin GP, Furth EE, Furukawa T, Klein A, Klimstra DS: Pathology of genetically engineered mouse models of pancreatic exocrine cancer: consensus report and recommendations. Cancer Res. 2006, 66: 95-106. 10.1158/0008-5472.CAN-05-2168.CrossRefPubMed Hruban RH, Adsay NV, Albores-Saavedra J, Anver MR, Biankin AV, Boivin GP, Furth EE, Furukawa T, Klein A, Klimstra DS: Pathology of genetically engineered mouse models of pancreatic exocrine cancer: consensus report and recommendations. Cancer Res. 2006, 66: 95-106. 10.1158/0008-5472.CAN-05-2168.CrossRefPubMed
27.
go back to reference Hruban RH, Takaori K, Klimstra DS, Adsay NV, Albores-Saavedra J, Biankin AV, Biankin SA, Compton C, Fukushima N, Furukawa T: An illustrated consensus on the classification of pancreatic intraepithelial neoplasia and intraductal papillary mucinous neoplasms. Am J Surg Pathol. 2004, 28: 977-987. 10.1097/01.pas.0000126675.59108.80.CrossRefPubMed Hruban RH, Takaori K, Klimstra DS, Adsay NV, Albores-Saavedra J, Biankin AV, Biankin SA, Compton C, Fukushima N, Furukawa T: An illustrated consensus on the classification of pancreatic intraepithelial neoplasia and intraductal papillary mucinous neoplasms. Am J Surg Pathol. 2004, 28: 977-987. 10.1097/01.pas.0000126675.59108.80.CrossRefPubMed
28.
go back to reference Guzman ML, Rossi RM, Neelakantan S, Li X, Corbett CA, Hassane DC, Becker MW, Bennett JM, Sullivan E, Lachowicz JL: An orally bioavailable parthenolide analog selectively eradicates acute myelogenous leukemia stem and progenitor cells. Blood. 2007, 110: 4427-4435. 10.1182/blood-2007-05-090621.CrossRefPubMedPubMedCentral Guzman ML, Rossi RM, Neelakantan S, Li X, Corbett CA, Hassane DC, Becker MW, Bennett JM, Sullivan E, Lachowicz JL: An orally bioavailable parthenolide analog selectively eradicates acute myelogenous leukemia stem and progenitor cells. Blood. 2007, 110: 4427-4435. 10.1182/blood-2007-05-090621.CrossRefPubMedPubMedCentral
29.
go back to reference Reagan-Shaw S, Nihal M, Ahmad N: Dose translation from animal to human studies revisited. FASEB J. 2008, 22: 659-661.CrossRefPubMed Reagan-Shaw S, Nihal M, Ahmad N: Dose translation from animal to human studies revisited. FASEB J. 2008, 22: 659-661.CrossRefPubMed
30.
go back to reference Sakamoto H, Kitano M, Suetomi Y, Takeyama Y, Ohyanagi H, Nakai T, Yasuda C, Kudo M: Comparison of standard-dose and low-dose gemcitabine regimens in pancreatic adenocarcinoma patients: a prospective randomized trial. J Gastroenterol. 2006, 41: 70-76. 10.1007/s00535-005-1724-7.CrossRefPubMed Sakamoto H, Kitano M, Suetomi Y, Takeyama Y, Ohyanagi H, Nakai T, Yasuda C, Kudo M: Comparison of standard-dose and low-dose gemcitabine regimens in pancreatic adenocarcinoma patients: a prospective randomized trial. J Gastroenterol. 2006, 41: 70-76. 10.1007/s00535-005-1724-7.CrossRefPubMed
31.
go back to reference Clouser CL, Holtz CM, Mullett M, Crankshaw DL, Briggs JE, Chauhan J, VanHoutan IM, Patterson SE, Mansky LM: Analysis of the ex vivo and in vivo antiretroviral activity of gemcitabine. PLoS One. 2011, 6: e15840-10.1371/journal.pone.0015840.CrossRefPubMedPubMedCentral Clouser CL, Holtz CM, Mullett M, Crankshaw DL, Briggs JE, Chauhan J, VanHoutan IM, Patterson SE, Mansky LM: Analysis of the ex vivo and in vivo antiretroviral activity of gemcitabine. PLoS One. 2011, 6: e15840-10.1371/journal.pone.0015840.CrossRefPubMedPubMedCentral
32.
go back to reference Hruban RH, Adsay NV, Albores-Saavedra J, Compton C, Garrett ES, Goodman SN, Kern SE, Klimstra DS, Kloppel G, Longnecker DS: Pancreatic intraepithelial neoplasia: a new nomenclature and classification system for pancreatic duct lesions. Am J Surg Pathol. 2001, 25: 579-586. 10.1097/00000478-200105000-00003.CrossRefPubMed Hruban RH, Adsay NV, Albores-Saavedra J, Compton C, Garrett ES, Goodman SN, Kern SE, Klimstra DS, Kloppel G, Longnecker DS: Pancreatic intraepithelial neoplasia: a new nomenclature and classification system for pancreatic duct lesions. Am J Surg Pathol. 2001, 25: 579-586. 10.1097/00000478-200105000-00003.CrossRefPubMed
33.
go back to reference Yip-Schneider MT, Nakshatri H, Sweeney CJ, Marshall MS, Wiebke EA, Schmidt CM: Parthenolide and sulindac cooperate to mediate growth suppression and inhibit the nuclear factor-kappa B pathway in pancreatic carcinoma cells. Mol Cancer Ther. 2005, 4: 587-594. 10.1158/1535-7163.MCT-04-0215.CrossRefPubMed Yip-Schneider MT, Nakshatri H, Sweeney CJ, Marshall MS, Wiebke EA, Schmidt CM: Parthenolide and sulindac cooperate to mediate growth suppression and inhibit the nuclear factor-kappa B pathway in pancreatic carcinoma cells. Mol Cancer Ther. 2005, 4: 587-594. 10.1158/1535-7163.MCT-04-0215.CrossRefPubMed
34.
go back to reference Pahl HL: Activators and target genes of Rel/NF-kappaB transcription factors. Oncogene. 1999, 18: 6853-6866. 10.1038/sj.onc.1203239.CrossRefPubMed Pahl HL: Activators and target genes of Rel/NF-kappaB transcription factors. Oncogene. 1999, 18: 6853-6866. 10.1038/sj.onc.1203239.CrossRefPubMed
35.
go back to reference Powolny-Budnicka I, Riemann M, Tanzer S, Schmid RM, Hehlgans T, Weih F: RelA and RelB transcription factors in distinct thymocyte populations control lymphotoxin-dependent interleukin-17 production in gammadelta T cells. Immunity. 2011, 34: 364-374. 10.1016/j.immuni.2011.02.019.CrossRefPubMed Powolny-Budnicka I, Riemann M, Tanzer S, Schmid RM, Hehlgans T, Weih F: RelA and RelB transcription factors in distinct thymocyte populations control lymphotoxin-dependent interleukin-17 production in gammadelta T cells. Immunity. 2011, 34: 364-374. 10.1016/j.immuni.2011.02.019.CrossRefPubMed
36.
go back to reference Fendrich V, Chen NM, Neef M, Waldmann J, Buchholz M, Feldmann G, Slater EP, Maitra A, Bartsch DK: The angiotensin-I-converting enzyme inhibitor enalapril and aspirin delay progression of pancreatic intraepithelial neoplasia and cancer formation in a genetically engineered mouse model of pancreatic cancer. Gut. 2010, 59: 630-637. 10.1136/gut.2009.188961.CrossRefPubMed Fendrich V, Chen NM, Neef M, Waldmann J, Buchholz M, Feldmann G, Slater EP, Maitra A, Bartsch DK: The angiotensin-I-converting enzyme inhibitor enalapril and aspirin delay progression of pancreatic intraepithelial neoplasia and cancer formation in a genetically engineered mouse model of pancreatic cancer. Gut. 2010, 59: 630-637. 10.1136/gut.2009.188961.CrossRefPubMed
37.
go back to reference Olive KP, Jacobetz MA, Davidson CJ, Gopinathan A, McIntyre D, Honess D, Madhu B, Goldgraben MA, Caldwell ME, Allard D: Inhibition of Hedgehog signaling enhances delivery of chemotherapy in a mouse model of pancreatic cancer. Science. 2009, 324: 1457-1461. 10.1126/science.1171362.CrossRefPubMedPubMedCentral Olive KP, Jacobetz MA, Davidson CJ, Gopinathan A, McIntyre D, Honess D, Madhu B, Goldgraben MA, Caldwell ME, Allard D: Inhibition of Hedgehog signaling enhances delivery of chemotherapy in a mouse model of pancreatic cancer. Science. 2009, 324: 1457-1461. 10.1126/science.1171362.CrossRefPubMedPubMedCentral
38.
go back to reference Logsdon CD, Abbruzzese JL: Chemoprevention of pancreatic cancer: ready for the clinic?. Cancer Prev Res (Phila). 2010, 3: 1375-1378. 10.1158/1940-6207.CAPR-10-0216.CrossRef Logsdon CD, Abbruzzese JL: Chemoprevention of pancreatic cancer: ready for the clinic?. Cancer Prev Res (Phila). 2010, 3: 1375-1378. 10.1158/1940-6207.CAPR-10-0216.CrossRef
Metadata
Title
Dimethylaminoparthenolide and gemcitabine: a survival study using a genetically engineered mouse model of pancreatic cancer
Authors
Michele T Yip-Schneider
Huangbing Wu
Keith Stantz
Narasimhan Agaram
Peter A Crooks
C Max Schmidt
Publication date
01-12-2013
Publisher
BioMed Central
Published in
BMC Cancer / Issue 1/2013
Electronic ISSN: 1471-2407
DOI
https://doi.org/10.1186/1471-2407-13-194

Other articles of this Issue 1/2013

BMC Cancer 1/2013 Go to the issue
Webinar | 19-02-2024 | 17:30 (CET)

Keynote webinar | Spotlight on antibody–drug conjugates in cancer

Antibody–drug conjugates (ADCs) are novel agents that have shown promise across multiple tumor types. Explore the current landscape of ADCs in breast and lung cancer with our experts, and gain insights into the mechanism of action, key clinical trials data, existing challenges, and future directions.

Dr. Véronique Diéras
Prof. Fabrice Barlesi
Developed by: Springer Medicine