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PMID: 19451549 Published · ppublish English Clinical Trial, Phase II Journal Article

Gene therapy with human and mouse T-cell receptors mediates cancer regression and targets normal tissues expressing cognate antigen.

Blood ·Vol. 114 ·No. 3 ·2009-07-16 ·Pages 535-46

Johnson LA, Morgan RA, Dudley ME, Cassard L, Yang JC, Hughes MS, Kammula US, Royal RE, Sherry RM, Wunderlich JR, Lee CC, Restifo NP, Schwarz SL, Cogdill AP, Bishop RJ, Kim H, Brewer CC, Rudy SF, VanWaes C, Davis JL, Mathur A, Ripley RT, Nathan DA, Laurencot CM, Rosenberg SA

Abstract

Gene therapy of human cancer using genetically engineered lymphocytes is dependent on the identification of highly reactive T-cell receptors (TCRs) with antitumor activity. We immunized transgenic mice and also conducted high-throughput screening of human lymphocytes to generate TCRs highly reactive to melanoma/melanocyte antigens. Genes encoding these TCRs were engineered into retroviral vectors and used to transduce autologous peripheral lymphocytes administered to 36 patients with metastatic melanoma. Transduced patient lymphocytes were CD45RA(-) and CD45RO(+) after ex vivo expansion. After infusion, the persisting cells displayed a CD45RA(+) and CD45RO(-) phenotype. Gene-engineered cells persisted at high levels in the blood of all patients 1 month after treatment, responding patients with higher ex vivo antitumor reactivity than nonresponders. Objective cancer regressions were seen in 30% and 19% of patients who received the human or mouse TCR, respectively. However, patients exhibited destruction of normal melanocytes in the skin, eye, and ear, and sometimes required local steroid administration to treat uveitis and hearing loss. Thus, T cells expressing highly reactive TCRs mediate cancer regression in humans and target rare cognate-antigen-containing cells throughout the body, a finding with important implications for the gene therapy of cancer. This trial was registered at www.ClinicalTrials.gov as NCI-07-C-0174 and NCI-07-C-0175.

MeSH Terms
Adoptive Transfer/adverse effects,methods Adult Animals Antigens, Neoplasm/immunology Autoantigens/immunology Female Genetic Therapy/methods Genetic Vectors Hearing Loss/etiology Humans Lymphocyte Transfusion/adverse effects,methods Lymphocytes/metabolism Male Melanocytes/immunology Melanoma/complications,therapy Mice Mice, Transgenic Middle Aged Receptors, Antigen, T-Cell/administration & dosage,genetics,immunology T-Cell Antigen Receptor Specificity Transduction, Genetic Transplantation, Autologous Treatment Outcome Uveitis/etiology
Chemicals
Antigens, Neoplasm Autoantigens Receptors, Antigen, T-Cell
Authors & Affiliations
25 authors, click to expand affiliations / ORCID
Johnson Laura A
Surgery Branch, Hatfield Clinical Research Center, National Cancer Institute/NIH, Bethesda, MD 20892, USA.
Morgan Richard A
Dudley Mark E
Cassard Lydie
Yang James C
Hughes Marybeth S
Kammula Udai S
Royal Richard E
Sherry Richard M
Wunderlich John R
Lee Chyi-Chia R
Restifo Nicholas P
Schwarz Susan L
Cogdill Alexandria P
Bishop Rachel J
Kim Hung
Brewer Carmen C
Rudy Susan F
VanWaes Carter
Davis Jeremy L
Mathur Aarti
Ripley Robert T
Nathan Debbie A
Laurencot Carolyn M
Rosenberg Steven A
References (32)
32 references, click to expand
  1. Targeting tumours with genetically enhanced T lymphocytes.
    Nat Rev Cancer. 2003 Jan;3(1):35-45 PMID: 12509765
  2. Virus-specific T cells engineered to coexpress tumor-specific receptors: persistence and antitumor activity in individuals with neuroblastoma.
    Nat Med. 2008 Nov;14(11):1264-70 PMID: 18978797
  3. Cutting edge: persistence of transferred lymphocyte clonotypes correlates with cancer regression in patients receiving cell transfer therapy.
    J Immunol. 2004 Dec 15;173(12):7125-30 PMID: 15585832
  4. Adoptive cell transfer: a clinical path to effective cancer immunotherapy.
    Nat Rev Cancer. 2008 Apr;8(4):299-308 PMID: 18354418
  5. Adoptive immunotherapy of prostate cancer bone lesions using redirected effector lymphocytes.
    J Clin Invest. 2004 Dec;114(12):1774-81 PMID: 15599402
  6. Development of optimal bicistronic lentiviral vectors facilitates high-level TCR gene expression and robust tumor cell recognition.
    Gene Ther. 2008 Nov;15(21):1411-23 PMID: 18496571
  7. Central tolerance: good but imperfect.
    Immunol Rev. 2006 Feb;209:290-6 PMID: 16448550
  8. Vogt-koyanagi-harada syndrome.
    Curr Eye Res. 2008 Jul;33(7):517-23 PMID: 18600484
  9. Transfer of a TCR gene derived from a patient with a marked antitumor response conveys highly active T-cell effector functions.
    Hum Gene Ther. 2005 Apr;16(4):457-72 PMID: 15871677
  10. 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. 2000 Feb 2;92(3):205-16 PMID: 10655437
  11. Adoptive cell therapy for patients with metastatic melanoma: evaluation of intensive myeloablative chemoradiation preparative regimens.
    J Clin Oncol. 2008 Nov 10;26(32):5233-9 PMID: 18809613
  12. Immunologic potential of donor lymphocytes expressing a suicide gene for early immune reconstitution after hematopoietic T-cell-depleted stem cell transplantation.
    Blood. 2003 Feb 15;101(4):1290-8 PMID: 12393508
  13. Genetically targeted T cells eradicate systemic acute lymphoblastic leukemia xenografts.
    Clin Cancer Res. 2007 Sep 15;13(18 Pt 1):5426-35 PMID: 17855649
  14. Cloning of the gene coding for a shared human melanoma antigen recognized by autologous T cells infiltrating into tumor.
    Proc Natl Acad Sci U S A. 1994 Apr 26;91(9):3515-9 PMID: 8170938
  15. Cancer regression and autoimmunity in patients after clonal repopulation with antitumor lymphocytes.
    Science. 2002 Oct 25;298(5594):850-4 PMID: 12242449
  16. Adoptive cell transfer therapy following non-myeloablative but lymphodepleting chemotherapy for the treatment of patients with refractory metastatic melanoma.
    J Clin Oncol. 2005 Apr 1;23(10):2346-57 PMID: 15800326
  17. Cancer/testis antigens, gametogenesis and cancer.
    Nat Rev Cancer. 2005 Aug;5(8):615-25 PMID: 16034368
  18. Identification of a human melanoma antigen recognized by tumor-infiltrating lymphocytes associated with in vivo tumor rejection.
    Proc Natl Acad Sci U S A. 1994 Jul 5;91(14):6458-62 PMID: 8022805
  19. Improving T cell therapy for cancer.
    Annu Rev Immunol. 2007;25:243-65 PMID: 17129181
  20. Primary human lymphocytes transduced with NY-ESO-1 antigen-specific TCR genes recognize and kill diverse human tumor cell lines.
    J Immunol. 2005 Apr 1;174(7):4415-23 PMID: 15778407
  21. Increased intensity lymphodepletion and adoptive immunotherapy--how far can we go?
    Nat Clin Pract Oncol. 2006 Dec;3(12):668-81 PMID: 17139318
  22. Targeting p53 as a general tumor antigen.
    Proc Natl Acad Sci U S A. 1995 Dec 19;92(26):11993-7 PMID: 8618830
  23. Effective tumor treatment targeting a melanoma/melanocyte-associated antigen triggers severe ocular autoimmunity.
    Proc Natl Acad Sci U S A. 2008 Jun 10;105(23):8061-6 PMID: 18523011
  24. Generation of tumor-infiltrating lymphocyte cultures for use in adoptive transfer therapy for melanoma patients.
    J Immunother. 2003 Jul-Aug;26(4):332-42 PMID: 12843795
  25. Adoptive immunotherapy for cancer: building on success.
    Nat Rev Immunol. 2006 May;6(5):383-93 PMID: 16622476
  26. Recognition of fresh human tumor by human peripheral blood lymphocytes transduced with a bicistronic retroviral vector encoding a murine anti-p53 TCR.
    J Immunol. 2005 Nov 1;175(9):5799-808 PMID: 16237072
  27. Characterization of genetically modified T-cell receptors that recognize the CEA:691-699 peptide in the context of HLA-A2.1 on human colorectal cancer cells.
    Clin Cancer Res. 2009 Jan 1;15(1):169-80 PMID: 19118044
  28. Progress in human tumour immunology and immunotherapy.
    Nature. 2001 May 17;411(6835):380-4 PMID: 11357146
  29. Gene transfer of tumor-reactive TCR confers both high avidity and tumor reactivity to nonreactive peripheral blood mononuclear cells and tumor-infiltrating lymphocytes.
    J Immunol. 2006 Nov 1;177(9):6548-59 PMID: 17056587
  30. Specific activation and targeting of cytotoxic lymphocytes through chimeric single chains consisting of antibody-binding domains and the gamma or zeta subunits of the immunoglobulin and T-cell receptors.
    Proc Natl Acad Sci U S A. 1993 Jan 15;90(2):720-4 PMID: 8421711
  31. Epstein Barr virus specific cytotoxic T lymphocytes expressing the anti-CD30zeta artificial chimeric T-cell receptor for immunotherapy of Hodgkin disease.
    Blood. 2007 Oct 1;110(7):2620-30 PMID: 17507664
  32. Cancer regression in patients after transfer of genetically engineered lymphocytes.
    Science. 2006 Oct 6;314(5796):126-9 PMID: 16946036
Article Info
Journal
Blood
Abbr.
Blood
ISSN
1528-0020
Published
2009-07-16
Epub
2009-00-18
Pages
535-46
Language
English
Region
United States
NLM ID
7603509
PMCID
PMC2929689
Subset
IM
Corrections
CommentIn
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