Skip to main content
Top
Published in: Journal of Clinical Immunology 1/2007

01-01-2007

Potent Systemic Antitumor Immunity Induced by Vaccination with Chemotactic-Prostate Tumor Associated Antigen Gene-Modified Tumor Cell and Blockade of B7-H1

Authors: NING LI, HANJUN QIN, XIAOZHU LI, CHUNXIA ZHOU, DONGMEI WANG, WENBO MA, CHEN LIN, YOUHUI ZHANG, SHENGDIAN WANG, SHUREN ZHANG

Published in: Journal of Clinical Immunology | Issue 1/2007

Login to get access

Abstract

We previously reported that several DNA fragments from human prostate-specific membrane antigen (hPSM), mouse prostatic acid phosphatase (mPAP), and human prostate-specific antigen (hPSA) genes were selected and fused to create a novel hPSM-mPAP-hPSA fusion gene (named 3P gene), and human secondary lymphoid tissue chemokine (SLC), 3P, and human IgG Fc genes were inserted into pcDNA3.1 to construct a DNA vaccine, designated pSLC-3P-Fc. In this report, to establish a more efficient treatment for immunotherapy against prostate cancer, the construct was transfected into B16F10 to generate gene-modified tumor cell vaccine (named B16F10-SLC-3P-Fc). In poorly immunogenic B16F10 mouse melanoma model, the immunization with B16F10-SLC-3P-Fc resulted in a strong antitumor response and 50% of tumor-bearing mice achieved long-term survival (>120 days). In vivo depletion of lymphocytes indicated that CD8+ T cells were involved in the direct tumor killing, whereas CD4+ T lymphocytes were required for the induction of CD8+ CTL response in B16F10-SLC-3P-Fc-immunized mice. Splenocytes from B16F10-SLC-3P-Fc-immunized mice specifically recognized and lysed PSM, PAP, PSA, and 3P expressing tumor cells. The combined therapy of B16F10-SLC-3P-Fc plus anti-B7-H1 MAbs further enhanced the immune response. Rechallenge experiment showed that a persistent memory response was successfully induced by the combined therapy. These observations suggest pSLC-3P-Fc-modified tumor cells could serve as a vaccine against prostate cancer, and the therapy combined with anti-B7-H1 MAbs further enhanced the antitumor immune response.
Literature
1.
go back to reference Tarassoff CP, Arlen PM, Gulley JL: Therapeutic vaccines for prostate cancer. Oncologist 11(5):451–462, 2006PubMedCrossRef Tarassoff CP, Arlen PM, Gulley JL: Therapeutic vaccines for prostate cancer. Oncologist 11(5):451–462, 2006PubMedCrossRef
2.
go back to reference Qin H, Zhou C, Wang D, Ma W, Liang X, Lin C, Zhang Y, Zhang S: Specific antitumor immune response induced by a novel DNA vaccine composed of multiple CTL and T helper cell epitopes of prostate cancer associated antigens. Immunol Lett 99(1):85–93, 2005PubMedCrossRef Qin H, Zhou C, Wang D, Ma W, Liang X, Lin C, Zhang Y, Zhang S: Specific antitumor immune response induced by a novel DNA vaccine composed of multiple CTL and T helper cell epitopes of prostate cancer associated antigens. Immunol Lett 99(1):85–93, 2005PubMedCrossRef
3.
go back to reference Qin H, Zhou C, Wang D, Ma W, Liang X, Lin C, Zhang Y, Zhang S: Enhancement of antitumour immunity by a novel chemotactic antigen DNA vaccine encoding chemokines and multiepitopes of prostate-tumour-associated antigens. Immunology 117(3):419–430, 2006PubMedCrossRef Qin H, Zhou C, Wang D, Ma W, Liang X, Lin C, Zhang Y, Zhang S: Enhancement of antitumour immunity by a novel chemotactic antigen DNA vaccine encoding chemokines and multiepitopes of prostate-tumour-associated antigens. Immunology 117(3):419–430, 2006PubMedCrossRef
4.
go back to reference Fong L, Small EJ: Immunotherapy for prostate cancer. Curr Urol Rep 7(3):239–246, 2006PubMed Fong L, Small EJ: Immunotherapy for prostate cancer. Curr Urol Rep 7(3):239–246, 2006PubMed
5.
go back to reference Velders MP, Weijzen S, Eiben GL, Elmishad AG, Kloetzel PM, Higgins T, Ciccarelli RB, Evans M, Man S, Smith L, Kast WM: Defined flanking spacers and enhanced proteolysis is essential for eradication of established tumors by an epitope string DNA vaccine. J Immunol 166(9):5366–5373, 2001PubMed Velders MP, Weijzen S, Eiben GL, Elmishad AG, Kloetzel PM, Higgins T, Ciccarelli RB, Evans M, Man S, Smith L, Kast WM: Defined flanking spacers and enhanced proteolysis is essential for eradication of established tumors by an epitope string DNA vaccine. J Immunol 166(9):5366–5373, 2001PubMed
6.
go back to reference Willimann K, Legler DF, Loetscher M, Roos RS, Delgado MB, Clark-Lewis I, Baggiolini M, Moser B: The chemokine SLC is expressed in T cell areas of lymph nodes and mucosal lymphoid tissues and attracts activated T cells via CCR7. Eur J Immunol 28:2025–2034, 1998PubMedCrossRef Willimann K, Legler DF, Loetscher M, Roos RS, Delgado MB, Clark-Lewis I, Baggiolini M, Moser B: The chemokine SLC is expressed in T cell areas of lymph nodes and mucosal lymphoid tissues and attracts activated T cells via CCR7. Eur J Immunol 28:2025–2034, 1998PubMedCrossRef
7.
go back to reference Cyster JG: Chemokines and the homing of dendritic cells to the T cell areas of lymphoid organs. J Exp Med 189:447–450, 1999PubMedCrossRef Cyster JG: Chemokines and the homing of dendritic cells to the T cell areas of lymphoid organs. J Exp Med 189:447–450, 1999PubMedCrossRef
8.
go back to reference Yang SC, Hillinger S, Riedl K, Zhang L, Zhu L, Huang M, Atianzar K, Kuo BY, Gardner B, Batra RK, Striter RM, Dubinett SM: Intratumoral administration of dendritic cells overexpressing CCL21 generates systemic antitumor responses and confers tumor immunity. Clin Cancer Res 10:2891–2901, 2004PubMedCrossRef Yang SC, Hillinger S, Riedl K, Zhang L, Zhu L, Huang M, Atianzar K, Kuo BY, Gardner B, Batra RK, Striter RM, Dubinett SM: Intratumoral administration of dendritic cells overexpressing CCL21 generates systemic antitumor responses and confers tumor immunity. Clin Cancer Res 10:2891–2901, 2004PubMedCrossRef
9.
go back to reference Gunn MD, Tangemann K, Tam C, Cyster JG, Rosen SD, Williams LT: A chemokine expressed in lymphoid high endothelial venules promotes the adhesion and chemotaxis of naive T lymphocytes. Proc Natl Acad Sci USA 95:258–263, 1998PubMedCrossRef Gunn MD, Tangemann K, Tam C, Cyster JG, Rosen SD, Williams LT: A chemokine expressed in lymphoid high endothelial venules promotes the adhesion and chemotaxis of naive T lymphocytes. Proc Natl Acad Sci USA 95:258–263, 1998PubMedCrossRef
11.
go back to reference Regnault A, Lankar D, Lacabanne V, Rodriguez A, Thery C, Rescigno M, Saito T, Verbeek S, Bonnerot C, Ricciardi-Castagnoli P, Amigorena S: Fcγ receptor-mediated induction of dendritic cell maturation and major histocompatibility complex class I-restricted antigen presentation after immune complex internalization. J Exp Med 189:371–380, 1999PubMedCrossRef Regnault A, Lankar D, Lacabanne V, Rodriguez A, Thery C, Rescigno M, Saito T, Verbeek S, Bonnerot C, Ricciardi-Castagnoli P, Amigorena S: Fcγ receptor-mediated induction of dendritic cell maturation and major histocompatibility complex class I-restricted antigen presentation after immune complex internalization. J Exp Med 189:371–380, 1999PubMedCrossRef
12.
go back to reference Albert ML, Sauter B, Bhardwaj N: Dendritic cells acquire antigen from apoptotic cells and induce class I-restricted CTLs. Nature 392:86–89, 1998PubMedCrossRef Albert ML, Sauter B, Bhardwaj N: Dendritic cells acquire antigen from apoptotic cells and induce class I-restricted CTLs. Nature 392:86–89, 1998PubMedCrossRef
13.
go back to reference Rothstein DM, Sayegh MH: T-cell costimulatory pathways in allograft rejection and tolerance. Immunol Rev 196:85–108, 2003PubMedCrossRef Rothstein DM, Sayegh MH: T-cell costimulatory pathways in allograft rejection and tolerance. Immunol Rev 196:85–108, 2003PubMedCrossRef
14.
go back to reference Agata Y, Kawasaki A, Nishimura H, Ishida Y, Tsubata T, Yagita H, Honjo T: Expression of the PD-1 antigen on the surface of stimulated mouse T and B lymphocytes. Int Immunol 8(5):765–772, 1996PubMedCrossRef Agata Y, Kawasaki A, Nishimura H, Ishida Y, Tsubata T, Yagita H, Honjo T: Expression of the PD-1 antigen on the surface of stimulated mouse T and B lymphocytes. Int Immunol 8(5):765–772, 1996PubMedCrossRef
15.
go back to reference Nishimura H, Agata Y, Kawasaki A, Sato M, Imamura S, Minato N, Yagita H, Nakano T, Honjo T: Developmentally regulated expression of the PD-1 protein on the surface of double-negative (CD4-CD8-) thymocytes. Int Immunol 8(5):773–780, 1996PubMedCrossRef Nishimura H, Agata Y, Kawasaki A, Sato M, Imamura S, Minato N, Yagita H, Nakano T, Honjo T: Developmentally regulated expression of the PD-1 protein on the surface of double-negative (CD4-CD8-) thymocytes. Int Immunol 8(5):773–780, 1996PubMedCrossRef
16.
go back to reference Liang SC, Latchman YE, Buhlmann JE, Tomczak MF, Horwitz BH, Freeman GJ, Sharpe AH: Regulation of PD-1, PD-L1, and PD-L2 expression during normal and autoimmune responses. Eur J Immunol 33(10):2706–2716, 2003PubMedCrossRef Liang SC, Latchman YE, Buhlmann JE, Tomczak MF, Horwitz BH, Freeman GJ, Sharpe AH: Regulation of PD-1, PD-L1, and PD-L2 expression during normal and autoimmune responses. Eur J Immunol 33(10):2706–2716, 2003PubMedCrossRef
17.
go back to reference Nishimura H, Nose M, Hiai H, Minato N, Honjo T: Development of lupus-like autoimmune diseases by disruption of the PD-1 gene encoding an ITIM motif-carrying immunoreceptor. Immunity 11(2):141–151, 1999PubMedCrossRef Nishimura H, Nose M, Hiai H, Minato N, Honjo T: Development of lupus-like autoimmune diseases by disruption of the PD-1 gene encoding an ITIM motif-carrying immunoreceptor. Immunity 11(2):141–151, 1999PubMedCrossRef
18.
go back to reference Nishimura H, Okazaki T, Tanaka Y, Nakatani K, Hara M, Matsumori A, Sasayama S, Mizoguchi A, Hiai H, Minato N, Honjo T: Autoimmune dilated cardiomyopathy in PD-1 receptor-deficient mice. Science 291(5502):319–322, 2001PubMedCrossRef Nishimura H, Okazaki T, Tanaka Y, Nakatani K, Hara M, Matsumori A, Sasayama S, Mizoguchi A, Hiai H, Minato N, Honjo T: Autoimmune dilated cardiomyopathy in PD-1 receptor-deficient mice. Science 291(5502):319–322, 2001PubMedCrossRef
19.
go back to reference Freeman GJ, Long AJ, Iwai Y, Bourque K, Chernova T, Nishimura H, Fitz LJ, Malenkovich N, Okazaki T, Byrne MC, Horton HF, Fouser L, Carter L, Ling V, Bowman MR, Carreno BM, Collins M, Wood CR, Honjo T: Engagement of the PD-1 immunoinhibitory receptor by a novel B7 family member leads to negative regulation of lymphocyte activation. J Exp Med. 192(7):1027–1034, 2000PubMedCrossRef Freeman GJ, Long AJ, Iwai Y, Bourque K, Chernova T, Nishimura H, Fitz LJ, Malenkovich N, Okazaki T, Byrne MC, Horton HF, Fouser L, Carter L, Ling V, Bowman MR, Carreno BM, Collins M, Wood CR, Honjo T: Engagement of the PD-1 immunoinhibitory receptor by a novel B7 family member leads to negative regulation of lymphocyte activation. J Exp Med. 192(7):1027–1034, 2000PubMedCrossRef
20.
go back to reference Latchman Y, Wood CR, Chernova T, Chaudhary D, Borde M, Chernova I, Iwai Y, Long AJ, Brown JA, Nunes R, Greenfield EA, Bourque K, Boussiotis VA, Carter LL, Carreno BM, Malenkovich N, Nishimura H, Okazaki T, Honjo T, Sharpe AH, Freeman GJ: PD-L2 is a second ligand for PD-1 and inhibits T cell activation. Nat Immunol 2(3):261–268, 2001PubMedCrossRef Latchman Y, Wood CR, Chernova T, Chaudhary D, Borde M, Chernova I, Iwai Y, Long AJ, Brown JA, Nunes R, Greenfield EA, Bourque K, Boussiotis VA, Carter LL, Carreno BM, Malenkovich N, Nishimura H, Okazaki T, Honjo T, Sharpe AH, Freeman GJ: PD-L2 is a second ligand for PD-1 and inhibits T cell activation. Nat Immunol 2(3):261–268, 2001PubMedCrossRef
21.
go back to reference Wang S, Bajorath J, Flies DB, Dong H, Honjo T, Chen L: Molecular modeling and functional mapping of B7-H1 and B7-DC uncouple costimulatory function from PD-1 interaction. J Exp Med 197(9):1083–1091, 2003PubMedCrossRef Wang S, Bajorath J, Flies DB, Dong H, Honjo T, Chen L: Molecular modeling and functional mapping of B7-H1 and B7-DC uncouple costimulatory function from PD-1 interaction. J Exp Med 197(9):1083–1091, 2003PubMedCrossRef
22.
go back to reference Brown JA, Dorfman DM, Ma FR, Sullivan EL, Munoz O, Wood CR, Greenfield EA, Freeman GJ: Blockade of programmed death-1 ligands on dendritic cells enhances T cell activation and cytokine production. J Immunol 170(3):1257–1266, 2003PubMed Brown JA, Dorfman DM, Ma FR, Sullivan EL, Munoz O, Wood CR, Greenfield EA, Freeman GJ: Blockade of programmed death-1 ligands on dendritic cells enhances T cell activation and cytokine production. J Immunol 170(3):1257–1266, 2003PubMed
23.
go back to reference Lu J, Celis E: Recognition of prostate tumor cells by cytotoxic T lymphocytes specific for prostate-specific membrane antigen. Cancer Res 62(20):5807–5812, 2002PubMed Lu J, Celis E: Recognition of prostate tumor cells by cytotoxic T lymphocytes specific for prostate-specific membrane antigen. Cancer Res 62(20):5807–5812, 2002PubMed
24.
go back to reference Lin KY, Guarnieri FG, Staveley-O’Carroll KF, Levitsky HI, August JT, Pardoll DM, Wu TC: Treatment of established tumors with a novel vaccine that enhances major histocompatibility class II presentation of tumor antigen. Cancer Res. 56(1):21–26, 1996PubMed Lin KY, Guarnieri FG, Staveley-O’Carroll KF, Levitsky HI, August JT, Pardoll DM, Wu TC: Treatment of established tumors with a novel vaccine that enhances major histocompatibility class II presentation of tumor antigen. Cancer Res. 56(1):21–26, 1996PubMed
25.
go back to reference Horton HM, Anderson D, Hernandez P, Barnhart KM, Norman JA, Parker SE: A gene therapy for cancer using intramuscular injection of plasmid DNA encoding interferon alpha. Proc Natl Acad Sci USA 96(4):1553–1558, 1999PubMedCrossRef Horton HM, Anderson D, Hernandez P, Barnhart KM, Norman JA, Parker SE: A gene therapy for cancer using intramuscular injection of plasmid DNA encoding interferon alpha. Proc Natl Acad Sci USA 96(4):1553–1558, 1999PubMedCrossRef
26.
go back to reference Klebanoff CA, Khong HT, Antony PA, Palmer DC, Restifo NP. Sinks: Suppressors and antigen presenters: how lymphodepletion enhances T cell-mediated tumor immunotherapy. Trends Immunol 26(2):111–117, 2005PubMedCrossRef Klebanoff CA, Khong HT, Antony PA, Palmer DC, Restifo NP. Sinks: Suppressors and antigen presenters: how lymphodepletion enhances T cell-mediated tumor immunotherapy. Trends Immunol 26(2):111–117, 2005PubMedCrossRef
27.
28.
go back to reference Banchereau J, Palucka AK: Dendritic cells as therapeutic vaccines against cancer. Nat Rev Immunol 5(4):296–306, 2005PubMedCrossRef Banchereau J, Palucka AK: Dendritic cells as therapeutic vaccines against cancer. Nat Rev Immunol 5(4):296–306, 2005PubMedCrossRef
29.
go back to reference Latchman YE, Liang SC, Wu Y, Chernova T, Sobel RA, Klemm M, Kuchroo VK, Freeman GJ, Sharpe AH: PD-L1-deficient mice show that PD-L1 on T cells, antigen-presenting cells, and host tissues negatively regulates T cells. Proc Natl Acad Sci USA 101(29):10691–10696, 2004PubMedCrossRef Latchman YE, Liang SC, Wu Y, Chernova T, Sobel RA, Klemm M, Kuchroo VK, Freeman GJ, Sharpe AH: PD-L1-deficient mice show that PD-L1 on T cells, antigen-presenting cells, and host tissues negatively regulates T cells. Proc Natl Acad Sci USA 101(29):10691–10696, 2004PubMedCrossRef
30.
go back to reference Hu HM, Winter H, Urba WJ, Fox BA: Divergent roles for CD4+ T cells in the priming and effector/memory phases of adoptive immunotherapy. J Immunol 165(8):4246–4253, 2000PubMed Hu HM, Winter H, Urba WJ, Fox BA: Divergent roles for CD4+ T cells in the priming and effector/memory phases of adoptive immunotherapy. J Immunol 165(8):4246–4253, 2000PubMed
31.
go back to reference Pardoll DM, Topalian SL: The role of CD4+ T cell responses in antitumor immunity. Curr Opin Immunol 10(5):588–594, 1998PubMedCrossRef Pardoll DM, Topalian SL: The role of CD4+ T cell responses in antitumor immunity. Curr Opin Immunol 10(5):588–594, 1998PubMedCrossRef
32.
go back to reference Hung K, Hayashi R, Lafond-Walker A, Lowenstein C, Pardoll D, Levitsky H: The central role of CD4(+) T cells in the antitumor immune response. J Exp Med. 188(12):2357–2368, 1998PubMedCrossRef Hung K, Hayashi R, Lafond-Walker A, Lowenstein C, Pardoll D, Levitsky H: The central role of CD4(+) T cells in the antitumor immune response. J Exp Med. 188(12):2357–2368, 1998PubMedCrossRef
33.
go back to reference Bennett SR, Carbone FR, Karamalis F, Miller JF, Heath WR: Induction of a CD8+ cytotoxic T lymphocyte response by cross-priming requires cognate CD4+ T cell help. J Exp Med 186(1):65–70, 1997PubMedCrossRef Bennett SR, Carbone FR, Karamalis F, Miller JF, Heath WR: Induction of a CD8+ cytotoxic T lymphocyte response by cross-priming requires cognate CD4+ T cell help. J Exp Med 186(1):65–70, 1997PubMedCrossRef
34.
go back to reference Toes RE, Ossendorp F, Offringa R, Melief CJ: CD4 T cells and their role in antitumor immune responses. J Exp Med 189(5):753–756, 1999PubMedCrossRef Toes RE, Ossendorp F, Offringa R, Melief CJ: CD4 T cells and their role in antitumor immune responses. J Exp Med 189(5):753–756, 1999PubMedCrossRef
35.
go back to reference Ossendorp F, Mengede E, Camps M, Filius R, Melief CJ: Specific T helper cell requirement for optimal induction of cytotoxic T lymphocytes against major histocompatibility complex class II negative tumors.J Exp Med 187(5):693–702, 1998PubMedCrossRef Ossendorp F, Mengede E, Camps M, Filius R, Melief CJ: Specific T helper cell requirement for optimal induction of cytotoxic T lymphocytes against major histocompatibility complex class II negative tumors.J Exp Med 187(5):693–702, 1998PubMedCrossRef
36.
go back to reference Carbone FR, Kurts C, Bennett SR, Miller JF, Heath WR: Cross-presentation: A general mechanism for CTL immunity and tolerance. Immunol Today 19(8):368–373, 1998PubMedCrossRef Carbone FR, Kurts C, Bennett SR, Miller JF, Heath WR: Cross-presentation: A general mechanism for CTL immunity and tolerance. Immunol Today 19(8):368–373, 1998PubMedCrossRef
37.
go back to reference Manjili MH, Wang XY, Chen X, Martin T, Repasky EA, Henderson R, Subjeck JR: HSP110-HER2/neu chaperone complex vaccine induces protective immunity against spontaneous mammary tumors in HER-2/neu transgenic mice. J Immunol 171(8):4054–4061, 2003PubMed Manjili MH, Wang XY, Chen X, Martin T, Repasky EA, Henderson R, Subjeck JR: HSP110-HER2/neu chaperone complex vaccine induces protective immunity against spontaneous mammary tumors in HER-2/neu transgenic mice. J Immunol 171(8):4054–4061, 2003PubMed
Metadata
Title
Potent Systemic Antitumor Immunity Induced by Vaccination with Chemotactic-Prostate Tumor Associated Antigen Gene-Modified Tumor Cell and Blockade of B7-H1
Authors
NING LI
HANJUN QIN
XIAOZHU LI
CHUNXIA ZHOU
DONGMEI WANG
WENBO MA
CHEN LIN
YOUHUI ZHANG
SHENGDIAN WANG
SHUREN ZHANG
Publication date
01-01-2007
Published in
Journal of Clinical Immunology / Issue 1/2007
Print ISSN: 0271-9142
Electronic ISSN: 1573-2592
DOI
https://doi.org/10.1007/s10875-006-9053-z

Other articles of this Issue 1/2007

Journal of Clinical Immunology 1/2007 Go to the issue