Literature DB >> 9820526

CD4+ lymphocytes provide MUC1-specific tumor immunity in vivo that is undetectable in vitro and is absent in MUC1 transgenic mice.

R M Tempero1, M L VanLith, K Morikane, G J Rowse, S J Gendler, M A Hollingsworth.   

Abstract

A C57BL/6 mouse transgenic for human MUC1 (MUC1.Tg) was developed to evaluate MUC1-specific tumor immunity in an animal that expresses MUC1 as a normal self protein. Previous studies showed that MUC1.Tg mice, challenged with syngeneic tumors expressing MUC1 (B16.MUC1), developed progressively growing MUC1-positive tumors, whereas wild-type C57BL/6 (wt) mice developed MUC1-negative tumors at a significantly slower rate. The results of a limiting dilution CTL frequency assay were not informative, in that similar numbers of MUC1-specific CTL precursors (CTL) were detected in MUC1.Tg and wt mice. Tumor immunity in vivo was characterized by an adoptive transfer method to evaluate the degree of MUC1 or non-MUC1 tumor immunity in wt or MUC1.Tg mice. The results revealed that wt mice developed protective tumor immunity mediated by MUC1-specific CD4+ lymphocytes, while MUC1.Tg mice were functionally tolerant to MUC1 in vivo. The potential of adoptive immunotherapy to provide immunity to tumors expressing MUC1 and to produce undesirable autoimmunity in recipient MUC1.Tg mice expressing MUC1 as a self Ag was evaluated. Adoptive transfer of immune cells from wt mice primed in vivo with B16.MUC1 tumor cells into MUC1.Tg recipients resulted in significant increases in the survival of MUC1.Tg recipients compared with unmanipulated control MUC .Tg mice challenged with B16.MUC1 tumor cells. This response was specific for MUC1 since control tumors developed at equivalent rates in recipient or control MUC1.Tg mice. No gross or histologic evidence of autoimmunity was observed in recipient MUC1.Tg mice, indicating that tumor immune responses mediated by MUC1-specific CD4+ lymphocytes spare nontransformed epithelia-expressing MUC1.

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Year:  1998        PMID: 9820526

Source DB:  PubMed          Journal:  J Immunol        ISSN: 0022-1767            Impact factor:   5.422


  22 in total

1.  Form and pattern of MUC1 expression on T cells activated in vivo or in vitro suggests a function in T-cell migration.

Authors:  Isabel Correa; Tim Plunkett; Anda Vlad; Arron Mungul; Jessica Candelora-Kettel; Joy M Burchell; Joyce Taylor-Papadimitriou; Olivera J Finn
Journal:  Immunology       Date:  2003-01       Impact factor: 7.397

2.  Protective Epitope Discovery and Design of MUC1-based Vaccine for Effective Tumor Protections in Immunotolerant Mice.

Authors:  Xuanjun Wu; Zhaojun Yin; Craig McKay; Christian Pett; Jin Yu; Manuel Schorlemer; Trevor Gohl; Suttipun Sungsuwan; Sherif Ramadan; Claire Baniel; Anthony Allmon; Rupali Das; Ulrika Westerlind; M G Finn; Xuefei Huang
Journal:  J Am Chem Soc       Date:  2018-11-19       Impact factor: 15.419

Review 3.  CD4 T cells in tumor immunity.

Authors:  Mara Gerloni; Maurizio Zanetti
Journal:  Springer Semin Immunopathol       Date:  2005-03-15

Review 4.  Mucin-based targeted pancreatic cancer therapy.

Authors:  Maria P Torres; Subhankar Chakraborty; Joshua Souchek; Surinder K Batra
Journal:  Curr Pharm Des       Date:  2012       Impact factor: 3.116

5.  Combination of mAb-AR20.5, anti-PD-L1 and PolyICLC inhibits tumor progression and prolongs survival of MUC1.Tg mice challenged with pancreatic tumors.

Authors:  Kamiya Mehla; Jarrod Tremayne; James A Grunkemeyer; Kelly A O'Connell; Maria M Steele; Thomas C Caffrey; Xinyi Zhu; Fang Yu; Pankaj K Singh; Birgit C Schultes; Ragupathy Madiyalakan; Christopher F Nicodemus; Michael A Hollingsworth
Journal:  Cancer Immunol Immunother       Date:  2017-12-04       Impact factor: 6.968

6.  Synthesis and Immunological Evaluation of a Multicomponent Cancer Vaccine Candidate Containing a Long MUC1 Glycopeptide.

Authors:  Nitin T Supekar; Vani Lakshminarayanan; Chantelle J Capicciotti; Anju Sirohiwal; Cathy S Madsen; Margreet A Wolfert; Peter A Cohen; Sandra J Gendler; Geert-Jan Boons
Journal:  Chembiochem       Date:  2017-11-30       Impact factor: 3.164

7.  Targeting of antigens to B cells augments antigen-specific T-cell responses and breaks immune tolerance to tumor-associated antigen MUC1.

Authors:  Chuanlin Ding; Li Wang; Jose Marroquin; Jun Yan
Journal:  Blood       Date:  2008-07-31       Impact factor: 22.113

8.  Antigen choice determines vaccine-induced generation of immunogenic versus tolerogenic dendritic cells that are marked by differential expression of pancreatic enzymes.

Authors:  Adam M Farkas; Douglas M Marvel; Olivera J Finn
Journal:  J Immunol       Date:  2013-02-18       Impact factor: 5.422

9.  Tn-MUC1 DC Vaccination of Rhesus Macaques and a Phase I/II Trial in Patients with Nonmetastatic Castrate-Resistant Prostate Cancer.

Authors:  Elizabeth Scheid; Pierre Major; Alain Bergeron; Olivera J Finn; Russell D Salter; Robin Eady; Bader Yassine-Diab; David Favre; Yoav Peretz; Claire Landry; Sebastien Hotte; Som D Mukherjee; Gregory A Dekaban; Corby Fink; Paula J Foster; Jeffery Gaudet; Jean Gariepy; Rafick-Pierre Sekaly; Louis Lacombe; Yves Fradet; Ronan Foley
Journal:  Cancer Immunol Res       Date:  2016-09-07       Impact factor: 11.151

10.  Vaccination of mice with MUC1 cDNA suppresses the development of lung metastases.

Authors:  Mika Kamata; Kaori Denda-Nagai; Nobuyoshi Kubota; Satoshi Aida; Kazuyoshi Takeda; Tatsuro Irimura
Journal:  Clin Exp Metastasis       Date:  2002       Impact factor: 5.150

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