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1.
Nature ; 630(8016): 457-465, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38750365

ABSTRACT

Adoptively transferred T cells and agents designed to block the CD47-SIRPα axis are promising cancer therapeutics that activate distinct arms of the immune system1,2. Here we administered anti-CD47 antibodies in combination with adoptively transferred T cells with the goal of enhancing antitumour efficacy but observed abrogated therapeutic benefit due to rapid macrophage-mediated clearance of T cells expressing chimeric antigen receptors (CARs) or engineered T cell receptors. Anti-CD47-antibody-mediated CAR T cell clearance was potent and rapid enough to serve as an effective safety switch. To overcome this challenge, we engineered the CD47 variant CD47(Q31P) (47E), which engages SIRPα and provides a 'don't eat me' signal that is not blocked by anti-CD47 antibodies. TCR or CAR T cells expressing 47E are resistant to clearance by macrophages after treatment with anti-CD47 antibodies, and mediate substantial, sustained macrophage recruitment to the tumour microenvironment. Although many of the recruited macrophages manifested an M2-like profile3, the combined therapy synergistically enhanced antitumour efficacy. Our study identifies macrophages as major regulators of T cell persistence and illustrates the fundamental challenge of combining T-cell-directed therapeutics with those designed to activate macrophages. It delivers a therapeutic approach that is capable of simultaneously harnessing the antitumour effects of T cells and macrophages, offering enhanced potency against solid tumours.


Subject(s)
CD47 Antigen , Immunotherapy, Adoptive , Neoplasms , T-Lymphocytes , Animals , Female , Humans , Male , Mice , Antigens, Differentiation/immunology , Antigens, Differentiation/metabolism , CD47 Antigen/genetics , CD47 Antigen/immunology , CD47 Antigen/metabolism , Cell Line, Tumor , Immunotherapy, Adoptive/methods , Macrophages/cytology , Macrophages/immunology , Neoplasms/immunology , Neoplasms/metabolism , Neoplasms/therapy , Receptors, Antigen, T-Cell/genetics , Receptors, Antigen, T-Cell/immunology , Receptors, Antigen, T-Cell/metabolism , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/metabolism , Receptors, Immunologic/immunology , Receptors, Immunologic/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , T-Lymphocytes/transplantation , Tumor Microenvironment/immunology , Antibodies/immunology , Antibodies/therapeutic use , Macrophage Activation
2.
Haematologica ; 104(4): 738-748, 2019 04.
Article in English | MEDLINE | ID: mdl-30381299

ABSTRACT

Translocation t(12;21), resulting in the ETV6-RUNX1 (or TEL-AML1) fusion protein, is present in 25% of pediatric patients with B-cell precursor acute lymphoblastic leukemia and is considered a first hit in leukemogenesis. A targeted therapy approach is not available for children with this subtype of leukemia. To identify the molecular mechanisms underlying ETV6-RUNX1-driven leukemia, we performed gene expression profiling of healthy hematopoietic progenitors in which we ectopically expressed ETV6-RUNX1. We reveal an ETV6-RUNX1-driven transcriptional network that induces proliferation, survival and cellular homeostasis. In addition, Vps34, an important regulator of autophagy, was found to be induced by ETV6-RUNX1 and up-regulated in ETV6-RUNX1-positive leukemic patient cells. We show that induction of Vps34 was transcriptionally regulated by ETV6-RUNX1 and correlated with high levels of autophagy. Knockdown of Vps34 in ETV6-RUNX1-positive cell lines severely reduced proliferation and survival. Inhibition of autophagy by hydroxychloroquine, a well-tolerated autophagy inhibitor, reduced cell viability in both ETV6-RUNX1-positive cell lines and primary acute lymphoblastic leukemia samples, and selectively sensitized primary ETV6-RUNX1-positive leukemia samples to L asparaginase. These findings reveal a causal relationship between ETV6-RUNX1 and autophagy, and provide pre-clinical evidence for the efficacy of autophagy inhibitors in ETV6-RUNX1-driven leukemia.


Subject(s)
Asparaginase/pharmacology , Autophagic Cell Death/drug effects , Core Binding Factor Alpha 2 Subunit/metabolism , Drug Delivery Systems , Oncogene Proteins, Fusion/metabolism , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/drug therapy , Autophagic Cell Death/genetics , Child , Child, Preschool , Class III Phosphatidylinositol 3-Kinases/genetics , Class III Phosphatidylinositol 3-Kinases/metabolism , Core Binding Factor Alpha 2 Subunit/genetics , Female , Humans , Male , Oncogene Proteins, Fusion/genetics , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/genetics , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/metabolism , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/pathology
3.
Blood ; 126(21): 2404-14, 2015 Nov 19.
Article in English | MEDLINE | ID: mdl-26297738

ABSTRACT

Acute lymphoblastic leukemia (ALL) cells reside in the bone marrow microenvironment which nurtures and protects cells from chemotherapeutic drugs. The disruption of cell-cell communication within the leukemic niche may offer an important new therapeutic strategy. Tunneling nanotubes (TNTs) have been described as a novel mode of intercellular communication, but their presence and importance in the leukemic niche are currently unknown. Here, we show for the first time that primary B-cell precursor ALL (BCP-ALL) cells use TNTs to signal to primary mesenchymal stromal cells (MSCs). This signaling results in secretion of prosurvival cytokines, such as interferon-γ-inducible protein 10/CXC chemokine ligand 10, interleukin 8, and monocyte chemotactic protein-1/CC chemokine ligand 2. A combination of TNT-disrupting conditions allows us to analyze the functional importance of TNTs in an ex vivo model. Our results indicate that TNT signaling is important for the viability of patient-derived B-cell precursor ALL cells and induces stroma-mediated prednisolone resistance. Disruption of TNTs significantly inhibits these leukemogenic processes and resensitizes B-cell precursor ALL cells to prednisolone. Our findings establish TNTs as a novel communication mechanism by which ALL cells modulate their bone marrow microenvironment. The identification of TNT signaling in ALL-MSC communication gives insight into the pathobiology of ALL and opens new avenues to develop more effective therapies that interfere with the leukemic niche.


Subject(s)
Cell Communication , Drug Resistance, Neoplasm , Mesenchymal Stem Cells/metabolism , Nanotubes , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/metabolism , Tumor Microenvironment , Adolescent , Cell Line, Tumor , Child , Child, Preschool , Cytokines/metabolism , Female , Humans , Male , Mesenchymal Stem Cells/pathology , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/pathology , Prednisolone/pharmacology
4.
Blood ; 119(4): 911-23, 2012 Jan 26.
Article in English | MEDLINE | ID: mdl-22065598

ABSTRACT

An important mediator of cytokine signaling implicated in regulation of hematopoiesis is the PI3K/protein kinase B (PKB/c-Akt) signaling module. Constitutive activation of this signaling module has been observed in a large group of leukemias. Because activation of this signaling pathway has been demonstrated to be sufficient to induce hematologic malignancies and is thought to correlate with poor prognosis and enhanced drug resistance, it is considered to be a promising target for therapy. A high number of pharmacologic inhibitors directed against either individual or multiple components of this pathway have already been developed to improve therapy. In this review, the safety and efficacy of both single and dual-specificity inhibitors will be discussed as well as the potential of combination therapy with either inhibitors directed against other signal transduction molecules or classic chemotherapy.


Subject(s)
Class I Phosphatidylinositol 3-Kinases/metabolism , Hematopoiesis , Leukemia/enzymology , Proto-Oncogene Proteins c-akt/metabolism , Signal Transduction , Animals , Antineoplastic Agents/administration & dosage , Antineoplastic Agents/adverse effects , Antineoplastic Agents/therapeutic use , Antineoplastic Combined Chemotherapy Protocols/adverse effects , Antineoplastic Combined Chemotherapy Protocols/therapeutic use , Cell Lineage , Cell Proliferation/drug effects , Class I Phosphatidylinositol 3-Kinases/antagonists & inhibitors , Enzyme Inhibitors/administration & dosage , Enzyme Inhibitors/adverse effects , Enzyme Inhibitors/therapeutic use , Hematopoietic Stem Cells/enzymology , Hematopoietic Stem Cells/metabolism , Humans , Leukemia/drug therapy , Leukemia/metabolism , Molecular Targeted Therapy , Neoplasm Proteins/antagonists & inhibitors , Neoplasm Proteins/metabolism , Proto-Oncogene Proteins c-akt/antagonists & inhibitors , Signal Transduction/drug effects
6.
PLoS One ; 13(4): e0196400, 2018.
Article in English | MEDLINE | ID: mdl-29698469

ABSTRACT

Treatment with lysine deacetylase inhibitors (KDACi) for haematological malignancies, is accompanied by haematological side effects including thrombocytopenia, suggesting that modulation of protein acetylation affects normal myeloid development, and specifically megakaryocyte development. In the current study, utilising ex-vivo differentiation of human CD34+ haematopoietic progenitor cells, we investigated the effects of two functionally distinct KDACi, valproic acid (VPA), and nicotinamide (NAM), on megakaryocyte differentiation, and lineage choice decisions. Treatment with VPA increased the number of megakaryocyte/erythroid progenitors (MEP), accompanied by inhibition of megakaryocyte differentiation, whereas treatment with NAM accelerated megakaryocyte development, and stimulated polyploidisation. Treatment with both KDACi resulted in no significant effects on erythrocyte differentiation, suggesting that the effects of KDACi primarily affect megakaryocyte lineage development. H3K27Ac ChIP-sequencing analysis revealed that genes involved in myeloid development, as well as megakaryocyte/erythroid (ME)-lineage differentiation are uniquely modulated by specific KDACi treatment. Taken together, our data reveal distinct effects of specific KDACi on megakaryocyte development, and ME-lineage decisions, which can be partially explained by direct effects on promoter acetylation of genes involved in myeloid differentiation.


Subject(s)
Cell Differentiation/drug effects , Histone Deacetylase Inhibitors/pharmacology , Histones/metabolism , Megakaryocytes/cytology , Acetylation , Antigens, CD34/metabolism , Blood Platelets/cytology , Blood Platelets/metabolism , Cell Lineage , Cells, Cultured , Erythroid Cells/cytology , Erythroid Cells/metabolism , Hematopoietic Stem Cells/cytology , Hematopoietic Stem Cells/drug effects , Hematopoietic Stem Cells/metabolism , Histones/genetics , Humans , Megakaryocytes/metabolism , Niacinamide/pharmacology , Promoter Regions, Genetic , Valproic Acid/blood , Valproic Acid/pharmacology
7.
Front Mol Neurosci ; 10: 333, 2017.
Article in English | MEDLINE | ID: mdl-29089870

ABSTRACT

Cell-to-cell communication is essential for the organization, coordination, and development of cellular networks and multi-cellular systems. Intercellular communication is mediated by soluble factors (including growth factors, neurotransmitters, and cytokines/chemokines), gap junctions, exosomes and recently described tunneling nanotubes (TNTs). It is unknown whether a combination of these communication mechanisms such as TNTs and gap junctions may be important, but further research is required. TNTs are long cytoplasmic bridges that enable long-range, directed communication between connected cells. The proposed functions of TNTs are diverse and not well understood but have been shown to include the cell-to-cell transfer of vesicles, organelles, electrical stimuli and small molecules. However, the exact role of TNTs and gap junctions for intercellular communication and their impact on disease is still uncertain and thus, the subject of much debate. The combined data from numerous laboratories indicate that some TNT mediate a long-range gap junctional communication to coordinate metabolism and signaling, in relation to infectious, genetic, metabolic, cancer, and age-related diseases. This review aims to describe the current knowledge, challenges and future perspectives to characterize and explore this new intercellular communication system and to design TNT-based therapeutic strategies.

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