T regulatory cells (Tregs) play a key role in modulating T cell responses. Clinical trials showed that Tregs modulate graft-versus-host disease (GvHD) after allogeneic hematopoietic stem cell transplantation (allo-HSCT). However, their ability to mediate anti-leukemic activity (graft-versus-leukemia [GvL]) is largely unknown. Enforced interleukin-10 (IL-10) expression converts human CD4+ T cells into T regulatory type 1 (Tr1)-like (CD4IL-10) cells that suppress effector T cells in vitro and xenoGvHD in humanized mouse models. In the present study, we show that CD4IL-10 cells mediate anti-leukemic effects in vitro and in vivo in a human leukocyte antigen (HLA) class I-dependent but antigen-independent manner. The cytotoxicity mediated by CD4IL-10 cells is granzyme B (GzB) dependent, is specific for CD13+ target cells, and requires CD54 and CD112 expression on primary leukemic target blasts. CD4IL-10 cells adoptively transferred in humanized mouse models directly mediate anti-tumor and anti-leukemic effects. In addition, when co-transferred with peripheral blood mononuclear cells (PBMCs), CD4IL-10 cells contribute to the GvL activity but suppress xenoGvHD mediated by the PBMCs. These findings provide for the first time a strong rationale for CD4IL-10 cell immunotherapy to prevent GvHD and promote GvL in allo-HSCT for myeloid malignancies. Tr1 cells are generated by overexpressing IL-10 in CD4+ T cells (CD4IL-10). In this issue of Molecular Therapy, Locafaro et al. (2017) show that CD4IL-10 cells kill myeloid leukemia in an HLA class I-dependent mechanism, mediate anti-tumor and anti-leukemic effects, and contribute to GvL while preventing GvHD in humanized mice.

IL-10-Engineered Human CD4+ Tr1 Cells Eliminate Myeloid Leukemia in an HLA Class I-Dependent Mechanism / Locafaro, Grazia; Andolfi, Grazia; Russo, Fabio; Cesana, Luca; Spinelli, Antonello; Camisa, Barbara; Ciceri, Fabio; Lombardo, ANGELO LEONE; Bondanza, Attilio; Roncarolo, MARIA GRAZIA; Gregori, Silvia. - In: MOLECULAR THERAPY. - ISSN 1525-0016. - 25:10(2017), pp. 2254-2269. [10.1016/j.ymthe.2017.06.029]

IL-10-Engineered Human CD4+ Tr1 Cells Eliminate Myeloid Leukemia in an HLA Class I-Dependent Mechanism

CICERI, FABIO;LOMBARDO, ANGELO LEONE;BONDANZA, ATTILIO;RONCAROLO, MARIA GRAZIA
Penultimo
;
2017-01-01

Abstract

T regulatory cells (Tregs) play a key role in modulating T cell responses. Clinical trials showed that Tregs modulate graft-versus-host disease (GvHD) after allogeneic hematopoietic stem cell transplantation (allo-HSCT). However, their ability to mediate anti-leukemic activity (graft-versus-leukemia [GvL]) is largely unknown. Enforced interleukin-10 (IL-10) expression converts human CD4+ T cells into T regulatory type 1 (Tr1)-like (CD4IL-10) cells that suppress effector T cells in vitro and xenoGvHD in humanized mouse models. In the present study, we show that CD4IL-10 cells mediate anti-leukemic effects in vitro and in vivo in a human leukocyte antigen (HLA) class I-dependent but antigen-independent manner. The cytotoxicity mediated by CD4IL-10 cells is granzyme B (GzB) dependent, is specific for CD13+ target cells, and requires CD54 and CD112 expression on primary leukemic target blasts. CD4IL-10 cells adoptively transferred in humanized mouse models directly mediate anti-tumor and anti-leukemic effects. In addition, when co-transferred with peripheral blood mononuclear cells (PBMCs), CD4IL-10 cells contribute to the GvL activity but suppress xenoGvHD mediated by the PBMCs. These findings provide for the first time a strong rationale for CD4IL-10 cell immunotherapy to prevent GvHD and promote GvL in allo-HSCT for myeloid malignancies. Tr1 cells are generated by overexpressing IL-10 in CD4+ T cells (CD4IL-10). In this issue of Molecular Therapy, Locafaro et al. (2017) show that CD4IL-10 cells kill myeloid leukemia in an HLA class I-dependent mechanism, mediate anti-tumor and anti-leukemic effects, and contribute to GvL while preventing GvHD in humanized mice.
2017
Gene transfer; Immunotherapy; Tolerance; Molecular Medicine; Molecular Biology; Genetics; Pharmacology; Drug Discovery3003 Pharmaceutical Science
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.11768/61242
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