PubMed Health⌕ Search

PubMed · 15172457

CMV-specific immunotherapy.

Abstract

Considerable progress has been made in our understanding of the immunobiology of infections in immunocompromised hosts. Insights derived from animal model and human studies have provided the rationale to investigate immunotherapy with alphabeta+ T cells to restore responses considered essential for protective immunity to cytomegalovirus infection. Future studies will address the role of adoptive immunotherapy using different immunoeffector cell populations to improve control of virus infection. The use of genetically modified T cells has already been evaluated clinically and offers the potential for improving safety and efficacy and removing obstacles to successful immunotherapy. Although these studies are in the early stages and present considerable technical challenges, the results suggest that cellular immunotherapy will be a fruitful area for investigation in future years.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Hermann Einsele, Holger Hebart. 2004. CMV-specific immunotherapy.. https://doi.org/10.1016/j.humimm.2004.02.003

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

MicroRNA-directed program of cytotoxic CD8+ T-cell differentiation.

Acquisition of effector properties is a key step in the generation of cytotoxic T lymphocytes (CTLs). Here we show that inflammatory signals regulate Dicer expression in CTLs, and that deletion or depletion of Dicer in mouse or human activated CD8(+) T cells causes up-regulation of perforin, granzymes, and effector cytokines. Genome-wide analysis of microRNA (miR, miRNA) changes induced by exposure of differentiating CTLs to IL-2 and inflammatory signals identifies miR-139 and miR-150 as components of an miRNA network that controls perforin, eomesodermin, and IL-2Rα expression in differentiating CTLs and whose activity is modulated by IL-2, inflammation, and antigenic stimulation. Overall, our data show that strong IL-2R and inflammatory signals act through Dicer and miRNAs to control the cytolytic program and other aspects of effector CTL differentiation.

Adoptive Transfer↗

T-cell recognition of a prostate specific antigen is not sufficient to induce prostate tissue destruction.

METHODS: The ability of CD8(+) T-cells to induce prostate inflammation was examined using a prostate ovalbumin expressing transgenic mouse (POET) and/or adoptive transfer of T-cell receptor (TCR) transgenic T-cells (OT-I) that specifically recognize ovalbumin. Localization of inflammatory cells to prostate tissue was examined following T-cell activation via endogenous prostatic antigen, recombinant type 5 adenovirus carrying the gene coding ovalbumin (Ad5-mOVA), or adoptive transfer of in vitro antigen stimulated OT-I cells. RESULTS: Ovalbumin specific OT-I cells were activated by autologous prostate antigen and trafficked to the prostate, but did not induce inflammation unless present in overwhelming numbers ( approximately 65% of CD8(+) T-cells). Activation of antigen specific CD8(+) T-cells in vitro (peptide pulsed antigen presenting cells) or in vivo (Ad5-mOVA) induced transitory prostate inflammation, without induction of prostate pathology, regardless of CD4(+) T-cell availability. Inflammation also was observed in OT-I x POET mice but again, pathological effects were not observed. CONCLUSIONS: T lymphocytes specific for a prostate antigen are capable of inducing inflammatory infiltration of prostatic tissue rapidly following activation, but do not produce pathological prostate injury.

Adoptive Transfer↗

Telomerase-specific T-cells kill pancreatic tumor cells in vitro and in vivo.

BACKGROUND: Adoptive cell transfer is described as an innovative and challenging option for the treatment of malignant melanoma. In the current study, the generation and expansion of telomerase-specific T-cells for adoptive cell transfer and their use in a syngeneic pancreatic carcinoma mouse model was investigated. METHODS: Telomerase-specific T-cells were generated either in vitro by coculture of human lymphocytes with telomerase-peptide-pulsed dendritic cells or in vivo by injection of peptide plus adjuvant into C57BL/6 mice. Spleens were harvested after immunization and lymphocytes were expanded in the presence of feeder cells. T-cells were tested in vitro against human leukocyte antigen (HLA)-matched, telomerase-positive pancreatic carcinoma cells. Tumor-bearing (subcutaneous) mice pretreated with cyclophosphamide were injected intravenously with the expanded cells. RESULTS: It was possible to generate and expand telomerase-specific T-cells with cytotoxic activity. The protocol did not work as well in the murine setting. However, adoptive cell transfer with murine antigen-specific T-cells delayed disease progression in tumor-bearing mice significantly. CONCLUSIONS: Generation of antigen-specific T-cells is feasible; the expansion of these cells could be accomplished without loss of function. Antigen-specific T-cells demonstrated significant cytotoxic activity in a syngeneic, subcutaneous mouse model. However, further optimization of the expansion protocol is warranted.

Adoptive Transfer↗