Pancreatic Ductal Adenocarcinoma Mice Lacking Mucin 1 Have a Profound Defect in Tumor Growth and Metastasis

被引:113
作者
Besmer, Dahlia M. [1 ]
Curry, Jennifer M. [1 ]
Roy, Lopamudra D. [1 ]
Tinder, Teresa L. [1 ]
Sahraei, Mahnaz [1 ]
Schettini, Jorge [1 ]
Hwang, Sun-Il [2 ]
Lee, Yong Y. [2 ]
Gendler, Sandra J. [3 ]
Mukherjee, Pinku [1 ]
机构
[1] Univ N Carolina, Dept Biol, Charlotte, NC 28223 USA
[2] Carolinas Hlth Care Ctr, Dept Prote, Charlotte, NC USA
[3] Mayo Clin Arizona, Dept Biochem & Mol Biol, Scottsdale, AZ USA
关键词
PROSTAGLANDIN E-2; PROGENITOR CELLS; CANCER; EXPRESSION; PROGRESSION; NEOPLASIA; MOUSE;
D O I
10.1158/0008-5472.CAN-10-4439
中图分类号
R73 [肿瘤学];
学科分类号
100214 [肿瘤学];
摘要
MUC1 is overexpressed and aberrantly glycosylated in more than 60% of pancreatic ductal adenocarcinomas. The functional role of MUC1 in pancreatic cancer has yet to be fully elucidated due to a dearth of appropriate models. In this study, we have generated mouse models that spontaneously develop pancreatic ductal adenocarcinoma (KC), which are either Muc1-null (KCKO) or express human MUC1 (KCM). We show that KCKO mice have significantly slower tumor progression and rates of secondary metastasis, compared with both KC and KCM. Cell lines derived from KCKO tumors have significantly less tumorigenic capacity compared with cells from KCM tumors. Therefore, mice with KCKO tumors had a significant survival benefit compared with mice with KCM tumors. In vitro, KCKO cells have reduced proliferation and invasion and failed to respond to epidermal growth factor, platelet-derived growth factor, or matrix metalloproteinase 9. Further, significantly less KCKO cells entered the G(2)-M phase of the cell cycle compared with the KCM cells. Proteomics and Western blotting analysis revealed a complete loss of cdc-25c expression, phosphorylation of mitogen-activated protein kinase (MAPK), as well as a significant decrease in nestin and tubulin-alpha 2 chain expression in KCKO cells. Treatment with a MEK1/2 inhibitor, U0126, abrogated the enhanced proliferation of the KCM cells but had minimal effect on KCKO cells, suggesting that MUC1 is necessary for MAPK activity and oncogenic signaling. This is the first study to utilize a Muc1-null PDA mouse to fully elucidate the oncogenic role of MUC1, both in vivo and in vitro. Cancer Res; 71(13); 4432-42. (C) 2011 AACR.
引用
收藏
页码:4432 / 4442
页数:11
相关论文
共 23 条
[1]
MUC1 as a target antigen for cancer immunotherapy [J].
Acres, B ;
Limacher, JM .
EXPERT REVIEW OF VACCINES, 2005, 4 (04) :493-502
[2]
Fluorescence Spectroscopy of the Retina for Diagnosis of Transmissible Spongiform Encephalopathies [J].
Adhikary, Ramkrishna ;
Mukherjee, Prasun ;
Krishnamoorthy, Govindarajan ;
Kunkle, Robert A. ;
Casey, Thomas A. ;
Rasmussen, Mark A. ;
Petricht, Jacob W. .
ANALYTICAL CHEMISTRY, 2010, 82 (10) :4097-4101
[3]
Ductal neoplasia of the pancreas: Nosologic, clinicopathologic, and biologic aspects [J].
Adsay, NV ;
Basturk, C ;
Cheng, JD ;
Andea, AA .
SEMINARS IN RADIATION ONCOLOGY, 2005, 15 (04) :254-264
[4]
The dichotomy in the preinvasive neoplasia to invasive carcinoma sequence in the pancreas: Differential expression of MUC1 and MUC2 supports the existence of two separate pathways of carcinogenesis [J].
Adsay, NV ;
Merati, K ;
Andea, A ;
Sarkar, F ;
Hruban, RH ;
Wilentz, RE ;
Goggins, M ;
Iocobuzio-Donahue, C ;
Longnecker, DS ;
Klimstra, DS .
MODERN PATHOLOGY, 2002, 15 (10) :1087-1095
[5]
Beckers T, 2002, CANCER RES, V62, P3113
[6]
MUC1 and MUC2 expression in pancreatic ductal carcinoma obtained by fine-needle aspiration [J].
Chhieng, DC ;
Benson, E ;
Eltoum, I ;
Eloubeidi, MA ;
Jhala, N ;
Jhala, D ;
Siegal, GP ;
Grizzle, WE ;
Manne, U .
CANCER CYTOPATHOLOGY, 2003, 99 (06) :365-371
[7]
MUC1, the renaissance molecule [J].
Gendler, SJ .
JOURNAL OF MAMMARY GLAND BIOLOGY AND NEOPLASIA, 2001, 6 (03) :339-353
[8]
Preinvasive and invasive ductal pancreatic cancer and its early detection in the mouse [J].
Hingorani, SR ;
Petricoin, EF ;
Maitra, A ;
Rajapakse, V ;
King, C ;
Jacobetz, MA ;
Ross, S ;
Conrads, TP ;
Veenstra, TD ;
Hitt, BA ;
Kawaguchi, Y ;
Johann, D ;
Liotta, LA ;
Crawford, HC ;
Putt, ME ;
Jacks, T ;
Wright, CVE ;
Hruban, RH ;
Lowy, AM ;
Tuveson, DA .
CANCER CELL, 2003, 4 (06) :437-450
[9]
Cdc42-mediated inhibition of GSK-3β improves angio-architecture and lumen formation during VEGF-driven pathological angiogenesis [J].
Hoang, Mien V. ;
Nagy, Janice A. ;
Senger, Donald R. .
MICROVASCULAR RESEARCH, 2011, 81 (01) :34-43
[10]
Mechanism of insulin-like growth factor I-mediated proliferation of adult neural progenitor cells: role of Akt [J].
Kalluri, Haviryaji S. G. ;
Vemuganti, Raghu ;
Dempsey, Robert J. .
EUROPEAN JOURNAL OF NEUROSCIENCE, 2007, 25 (04) :1041-1048