|A balanced review of the status T cell-based therapy against cancer.|
|Jump to Full Text|
|PMID: 15831096 Owner: NLM Status: Publisher|
|A recent commentary stirred intense controversy over the status of anti-cancer immunotherapy. The commentary suggested moving beyond current anti-cancer vaccines since active-specific immunization failed to match expectations toward a more aggressive approach involving the adoptive transfer of in vitro expanded tumor antigen-specific T cells. Although the same authors clarified their position in response to others' rebuttal more discussion needs to be devoted to the current status of T cell-based anti-cancer therapy. The accompanying publications review the status of adoptive transfer of cancer vaccines on one hand and active-specific immunization on the other. Hopefully, reading these articles will offer a balanced view of the current status of antigen-specific ant-cancer therapies and suggest future strategies to foster unified efforts to complement either approach with the other according to specific biological principles.|
|Francesco M Marincola|
Related Documents :
|23886196 - Potential therapeutic efficacy of curcumin in liver cancer.
23955026 - Burden among partner caregivers of patients diagnosed with localized prostate cancer wi...
23307506 - Robotic total mesorectal excision: operative technique and review of the literature.
9594966 - The emerging role of the dendritic cell in novel cancer therapies.
17551536 - Mechanisms of disease: high-grade prostatic intraepithelial neoplasia and other propose...
21881876 - Despite aggressive histopathology survival is not impaired in young patients with color...
|Type: EDITORIAL Date: 2005-4-14|
|Title: Journal of translational medicine Volume: 3 ISSN: 1479-5876 ISO Abbreviation: J Transl Med Publication Date: 2005 Apr|
|Created Date: 2005-5-9 Completed Date: - Revised Date: -|
Medline Journal Info:
|Nlm Unique ID: 101190741 Medline TA: J Transl Med Country: -|
|Languages: ENG Pagination: 16 Citation Subset: -|
|Immunogenetics Section, Department of Transfusion Medicine, Clinical Center, National Institutes of Health, Bethesda, Maryland, 20892, USA. firstname.lastname@example.org.|
|APA/MLA Format Download EndNote Download BibTex|
Journal ID (nlm-ta): J Transl Med
Publisher: BioMed Central, London
Copyright © 2005 Marincola; licensee BioMed Central Ltd.
open-access: This is an Open Access article distributed under the terms of the Creative Commons Attribution License (), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Received Day: 5 Month: 1 Year: 2005
Accepted Day: 14 Month: 4 Year: 2005
collection publication date: Year: 2005
Electronic publication date: Day: 14 Month: 4 Year: 2005
Volume: 3First Page: 16 Last Page: 16
Publisher Id: 1479-5876-3-16
PubMed Id: 15831096
|A balanced review of the status T cell-based therapy against cancer|
|Francesco M Marincola1||Email: email@example.com|
1Immunogenetics Section, Department of Transfusion Medicine, Clinical Center, National Institutes of Health, Bethesda, Maryland, 20892, USA
A recent commentary stirred intense controversy over the status of anti-cancer immunotherapy. The commentary suggested moving beyond current anti-cancer vaccines since active-specific immunization failed to match expectations . Although subsequently mitigated [2-4] the statement requires clarifications.
In the commentary the adoptive transfer of tumor antigens-specific T cells was promoted in alternative to active-specific immunization as if the two modalities were distinct biological entities rather than two extreme manifestations of the same phenomenon . In fact, both exploit acquired cellular immunity in recognition of autologous cancer cells. Active-specific immunization consistently induces increments in circulating tumor antigen-specific T cell in vivo that are rarely sufficient to induced cancer regression . We have recently argued that this observation does not represent a failure of immunization but simply a successful first step among those required to induce cancer regression . In particular, circulating immunization-induced T cells physiologically display a quiescent phenotype close to memory C8+ T cells and require antigen recall plus co-stimulation in the target tissue to develop into activate effector cell . Adoptive transfer of tumor antigen-specific T cells combined with nonmyeloablative chemotherapy and the systemic administration of interleukin-2 relies in the administration of ex vivo activated T cells and appears to be associated with enhanced clinical response rates at least in the subgroup of patients in which successful expansion is possible [1,8]. Interestingly, it was recently reported that persistence of adoptively transferred lymphocyte clonotypes significantly correlates with cancer regression . This finding suggests that either ex vivo manipulation or in vivo conditions in different patients may differentially influence T cell persistence and, possibly, function. Interestingly, however, T cell persistence in itself does not clearly explain therapeutic effectiveness since other ex vivo expansion protocols are associated with long term persistence of adoptively transferred T cells which is not associated as tightly with tumor regression as discussed by the accompanying Yee's manuscript. In between these two extreme treatment modalities lies the combination of active-specific immunization with the systemic administration of interleukin-2 that has been associated with intermediate clinical response rates . Although in the absence of prospective randomized studies it remains to be confirmed whether active-specific immunization adds to the systemic administration of interleukin-2 alone, it is reasonable to conceive the working hypothesis that the mere presence of circulating, cancer-specific T cells is not sufficient to induce cancer regression and other factors need to be added to induce their in vivo activation as an alternative to the ex vivo activation utilized for adoptive transfer. It is, therefore, our conclusion that the dichotomy between the two strategies is quite arbitrary and is merely symptomatic of our limited understanding of the requirement for effective T cell localization and activation in target tissues .
The surprising conclusion that anti-cancer immunization failed to yield the results anticipated by pre-clinical and early clinical studies [1,10-12] may be unduly pessimistic . However, the strongest argument against a premature disposal of active-specific immunization is the recognition that our discontent comes from the naive haste in which clinical protocols have been designed in the previous decade looking primarily at clinical end-points and by-passing the more realistic goal of understanding the biology of the immune response under those conditions . Rather than discarding the impressive results obtained by immunization, we should recite an introspective mea culpa for our failure to pay enough attention to the process of immunization at the systemic as well as at the tumor level . In fairness, this negligence is due to the extreme difficulty that clinical scientists confront when studying human material and, possibly, most questions related to the understanding of human tumor immune responsiveness remain answered simply because it is exceedingly difficult to analyze tumor/host interactions in the tumor-microenvironment . We have recently summarized novel strategies that could be applied to by-pass such difficulty [14-16].
In the accompanying Point-Counter Point series published in the Journal of Translational Medicine Craig Slingluff and Cassian Yee engage in a balanced discussion over the advantages and disadvantages of active specific immunization on one side and adoptive transfer of tumor antigen-specific T cells on the other. Future opportunities are presented with special emphasis on the complementarily and biological similarity of the two approaches. It is hoped that lessons learned from either approach will enable better design of future clinical studies combining the simplicity and safety of active-specific immunization with the power of adoptive immune therapy.
|Rosenberg SA,Yang JC,Restifo NP. Cancer immunotherapy: moving beyond current vaccinesNat Med 2004;10:909–915. [pmid: 15340416] [doi: 10.1038/nm1100]|
|Rosenberg SA,Yang JC,Restifo NP. Reply to "Cancer vaccines: pessimism in check"Nat Med 2004;10:1279–1280. [pmid: 15682512] [doi: 10.1038/nm1204-1279b]|
|Mocellin S,Mandruzzato S,Bronte V,Marincola FM. Correspondence 1: Cancer vaccines: pessimism in checkNat Med 2004;10:1278–1279. [pmid: 15580242] [doi: 10.1038/nm1204-1278]|
|Timmerman JM,Levy R. Correspondence 2: Cancer vaccines: pessimism in checkNat Med 2004;10:1279. [pmid: 15682512] [doi: 10.1038/nm1204-1279a]|
|Marincola FM,Ferrone S. Immunotherapy of melanoma: the good news, the bad news and what to do nextSemin Cancer Biol 2003;13:387–389. [pmid: 15001156] [doi: 10.1016/j.semcancer.2003.09.002]|
|Monsurro' V,Wang E,Panelli MC,Nagorsen D,Jin P,Smith K,et al. Active-specific immunization against cancer: is the problem at the receiving end?Semin Cancer Biol 2003;13:473–480. [pmid: 15001166] [doi: 10.1016/j.semcancer.2003.09.011]|
|Monsurro' V,Wang E,Yamano Y,Migueles SA,Panelli MC,Smith K,et al. Quiescent phenotype of tumor-specific CD8+ T cells following immunizationBlood 2004;104:1970–1978. [pmid: 15187028] [doi: 10.1182/blood-2004-02-0525]|
|Dudley ME,Wunderlich JR,Robbins PF,Yang JC,Hwu P,Schwartzentruber D,et al. Cancer regression and autoimmunity in patients after clonal repopulation wiht antitumor lymphocytesScience 2002;298:850–854. [pmid: 12242449] [doi: 10.1126/science.1076514]|
|Robbins PF,Dudley ME,Wunderlich J,el Gamil M,Li YF,Zhou J,et al. Cutting edge: Persistence of transferred lymphocyte clonotypes correlates with cancer regression in patients receiving cell transfer therapyJ Immunol 2004;173:7125–7130. [pmid: 15585832]|
|Rosenberg SA,Yang JC,Schwartzentruber D,Hwu P,Marincola FM,Topalian SL,et al. Immunologic and therapeutic evaluation of a synthetic tumor associated peptide vaccine for the treatment of patients with metastatic melanomaNat Med 1998;4:321–327. [pmid: 9500606] [doi: 10.1038/nm0398-321]|
|Rosenberg SA. A new era for cancer immunotherapy based on the genes that encode cancer antigensImmunity 1999;10:281–287. [pmid: 10204484] [doi: 10.1016/S1074-7613(00)80028-X]|
|Nestle FO,Alijagic S,Gilliet M,Sun Y,Grabbe S,Dummer R,et al. Vaccination of melanoma patients with peptide- or tumor lysate-pulsed dendritic cellsNat Med 1998;4:328–332. [pmid: 9500607] [doi: 10.1038/nm0398-328]|
|Marincola FM,Wang E,Herlyn M,Seliger B,Ferrone S. Tumors as elusive targets of T cell-directed immunotherapyTrends Immunol 2003;24:335–342. [pmid: 12810110] [doi: 10.1016/S1471-4906(03)00116-9]|
|Wang E,Marincola FM. A natural history of melanoma: serial gene expression analysisImmunol Today 2000;21:619–623. [pmid: 11114422] [doi: 10.1016/S0167-5699(00)01724-2]|
|Wang E,Panelli MC,Marincola FM. Genomic analysis of cancerPrinc Pract Oncol 2003;17:1–16. [doi: 10.1159/000071805]|
|Wang E,Panelli MC,Monsurro' V,Marincola FM. Gene expression profiling of anti-cancer immune responsesCurr Opin Mol Ther 2004;6:288–295. [pmid: 15264431]|
Previous Document: Subfunctionalization of duplicated genes as a transition state to neofunctionalization.
Next Document: Immune function biomarkers in children exposed to lead and organochlorine compounds: a cross-section...