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1.
Nat Immunol ; 25(6): 1020-1032, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38831106

ABSTRACT

The efficacy of T cell-based immunotherapies is limited by immunosuppressive pressures in the tumor microenvironment. Here we show a predominant role for the interaction between BTLA on effector T cells and HVEM (TNFRSF14) on immunosuppressive tumor microenvironment cells, namely regulatory T cells. High BTLA expression in chimeric antigen receptor (CAR) T cells correlated with poor clinical response to treatment. Therefore, we deleted BTLA in CAR T cells and show improved tumor control and persistence in models of lymphoma and solid malignancies. Mechanistically, BTLA inhibits CAR T cells via recruitment of tyrosine phosphatases SHP-1 and SHP-2, upon trans engagement with HVEM. BTLA knockout thus promotes CAR signaling and subsequently enhances effector function. Overall, these data indicate that the BTLA-HVEM axis is a crucial immune checkpoint in CAR T cell immunotherapy and warrants the use of strategies to overcome this barrier.


Subject(s)
Immunotherapy, Adoptive , Receptors, Chimeric Antigen , Receptors, Immunologic , Receptors, Tumor Necrosis Factor, Member 14 , Tumor Microenvironment , Animals , Humans , Immunotherapy, Adoptive/methods , Receptors, Tumor Necrosis Factor, Member 14/metabolism , Receptors, Tumor Necrosis Factor, Member 14/immunology , Receptors, Tumor Necrosis Factor, Member 14/genetics , Mice , Tumor Microenvironment/immunology , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/metabolism , Receptors, Chimeric Antigen/genetics , Receptors, Immunologic/metabolism , Receptors, Immunologic/genetics , T-Lymphocytes, Regulatory/immunology , Signal Transduction , Cell Line, Tumor , Neoplasms/immunology , Neoplasms/therapy , Mice, Knockout
2.
Mol Cancer ; 23(1): 117, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38824567

ABSTRACT

Significant advancements have been made in the application of chimeric antigen receptor (CAR)-T treatment for blood cancers during the previous ten years. However, its effectiveness in treating solid tumors is still lacking, necessitating the exploration of alternative immunotherapies that can overcome the significant challenges faced by current CAR-T cells. CAR-based immunotherapy against solid tumors shows promise with the emergence of macrophages, which possess robust phagocytic abilities, antigen-presenting functions, and the ability to modify the tumor microenvironment and stimulate adaptive responses. This paper presents a thorough examination of the latest progress in CAR-M therapy, covering both basic scientific studies and clinical trials. This study examines the primary obstacles hindering the realization of the complete potential of CAR-M therapy, as well as the potential strategies that can be employed to overcome these hurdles. With the emergence of revolutionary technologies like in situ genetic modification, synthetic biology techniques, and biomaterial-supported gene transfer, which provide a wider array of resources for manipulating tumor-associated macrophages, we suggest that combining these advanced methods will result in the creation of a new era of CAR-M therapy that demonstrates improved efficacy, safety, and availability.


Subject(s)
Immunotherapy, Adoptive , Neoplasms , Receptors, Chimeric Antigen , Tumor Microenvironment , Humans , Neoplasms/therapy , Neoplasms/immunology , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Immunotherapy, Adoptive/methods , Tumor Microenvironment/immunology , Animals , Immunotherapy/methods
3.
Haematologica ; 109(6): 1689-1699, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38832424

ABSTRACT

Chimeric antigen receptor (CAR) T-cell therapy has emerged as a breakthrough cancer therapy over the past decade. Remarkable outcomes in B-cell lymphoproliferative disorders and multiple myeloma have been reported in both pivotal trials and real-word studies. Traditionally, the use of a patient's own (autologous) T cells to manufacture CAR products has been the standard practice. Nevertheless, this approach has some drawbacks, including manufacturing delays, dependence on the functional fitness of the patient's T cells, which can be compromised by both the disease and prior therapies, and contamination of the product with blasts. A promising alternative is offered by the development of allogeneic CAR-cell products. This approach has the potential to yield more efficient drug products and enables the use of effector cells with negligible alloreactive potential and a significant CAR-independent antitumor activity through their innate receptors (i.e., natural killer cells, γδ T cells and cytokine induced killer cells). In addition, recent advances in genome editing tools offer the potential to overcome the primary challenges associated with allogeneic CAR T-cell products, namely graft-versus-host disease and host allo-rejection, generating universal, off-the-shelf products. In this review, we summarize the current pre-clinical and clinical approaches based on allogeneic CAR T cells, as well as on alternative effector cells, which represent exciting opportunities for multivalent approaches and optimized antitumor activity.


Subject(s)
Immunotherapy, Adoptive , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma , Receptors, Chimeric Antigen , Humans , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Immunotherapy, Adoptive/methods , Immunotherapy, Adoptive/adverse effects , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/therapy , Precursor B-Cell Lymphoblastic Leukemia-Lymphoma/immunology , Child , Transplantation, Homologous , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Treatment Outcome
4.
Front Immunol ; 15: 1389018, 2024.
Article in English | MEDLINE | ID: mdl-38720898

ABSTRACT

Introduction: Multiple myeloma (MM) remains incurable, despite the advent of chimeric antigen receptor (CAR)-T cell therapy. This unfulfilled potential can be attributed to two untackled issues: the lack of suitable CAR targets and formats. In relation to the former, the target should be highly expressed and reluctant to shedding; two characteristics that are attributed to the CS1-antigen. Furthermore, conventional CARs rely on scFvs for antigen recognition, yet this withholds disadvantages, mainly caused by the intrinsic instability of this format. VHHs have been proposed as valid scFv alternatives. We therefore intended to develop VHH-based CAR-T cells, targeting CS1, and to identify VHHs that induce optimal CAR-T cell activation together with the VHH parameters required to achieve this. Methods: CS1-specific VHHs were generated, identified and fully characterized, in vitro and in vivo. Next, they were incorporated into second-generation CARs that only differ in their antigen-binding moiety. Reporter T-cell lines were lentivirally transduced with the different VHH-CARs and CAR-T cell activation kinetics were evaluated side-by-side. Affinity, cell-binding capacity, epitope location, in vivo behavior, binding distance, and orientation of the CAR-T:MM cell interaction pair were investigated as predictive parameters for CAR-T cell activation. Results: Our data show that the VHHs affinity for its target antigen is relatively predictive for its in vivo tumor-tracing capacity, as tumor uptake generally decreased with decreasing affinity in an in vivo model of MM. This does not hold true for their CAR-T cell activation potential, as some intermediate affinity-binding VHHs proved surprisingly potent, while some higher affinity VHHs failed to induce equal levels of T-cell activation. This could not be attributed to cell-binding capacity, in vivo VHH behavior, epitope location, cell-to-cell distance or binding orientation. Hence, none of the investigated parameters proved to have significant predictive value for the extent of CAR-T cell activation. Conclusions: We gained insight into the predictive parameters of VHHs in the CAR-context using a VHH library against CS1, a highly relevant MM antigen. As none of the studied VHH parameters had predictive value, defining VHHs for optimal CAR-T cell activation remains bound to serendipity. These findings highlight the importance of screening multiple candidates.


Subject(s)
Immunotherapy, Adoptive , Multiple Myeloma , Receptors, Chimeric Antigen , Single-Domain Antibodies , Multiple Myeloma/immunology , Multiple Myeloma/therapy , Humans , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/metabolism , Single-Domain Antibodies/immunology , Immunotherapy, Adoptive/methods , Animals , Cell Line, Tumor , Mice , Lymphocyte Activation/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Signaling Lymphocytic Activation Molecule Family/immunology , Signaling Lymphocytic Activation Molecule Family/metabolism , Single-Chain Antibodies/immunology , Xenograft Model Antitumor Assays
5.
Methods Mol Biol ; 2800: 55-66, 2024.
Article in English | MEDLINE | ID: mdl-38709477

ABSTRACT

The ability of biological systems to convert inputs from their environment into information to guide future decisions is central to life and a matter of great importance. While we know the components of many of the signaling networks that make these decisions, our understanding of the dynamic flow of information between these parts remains far more limited. T cells are an essential white blood cell type of an adaptive immune response and can discriminate between healthy and infected cells with remarkable sensitivity. This chapter describes the use of a synthetic T-cell receptor (OptoCAR) that is optically tunable within cell conjugates, providing control over the duration, and intensity of intracellular T-cell signaling dynamics. Optical control can also provide control over signaling with high spatial precision, and the OptoCAR is likely to find application more generally when modulating T-cell function with imaging approaches.


Subject(s)
Lymphocyte Activation , Receptors, Chimeric Antigen , T-Lymphocytes , Lymphocyte Activation/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Humans , Receptors, Chimeric Antigen/metabolism , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Receptors, Antigen, T-Cell/metabolism , Receptors, Antigen, T-Cell/immunology , Signal Transduction , Animals
6.
Front Immunol ; 15: 1340619, 2024.
Article in English | MEDLINE | ID: mdl-38711498

ABSTRACT

To design new CARs targeting hepatitis B virus (HBV), we isolated human monoclonal antibodies recognizing the HBV envelope proteins from single B cells of a patient with a resolved infection. HBV-specific memory B cells were isolated by incubating peripheral blood mononuclear cells with biotinylated hepatitis B surface antigen (HBsAg), followed by single-cell flow cytometry-based sorting of live, CD19+ IgG+ HBsAg+ cells. Amplification and sequencing of immunoglobulin genes from single memory B cells identified variable heavy and light chain sequences. Corresponding immunoglobulin chains were cloned into IgG1 expression vectors and expressed in mammalian cells. Two antibodies named 4D06 and 4D08 were found to be highly specific for HBsAg, recognized a conformational and a linear epitope, respectively, and showed broad reactivity and neutralization capacity against all major HBV genotypes. 4D06 and 4D08 variable chain fragments were cloned into a 2nd generation CAR format with CD28 and CD3zeta intracellular signaling domains. The new CAR constructs displayed a high functional avidity when expressed on primary human T cells. CAR-grafted T cells proved to be polyfunctional regarding cytokine secretion and killed HBV-positive target cells. Interestingly, background activation of the 4D08-CAR recognizing a linear instead of a conformational epitope was consistently low. In a preclinical model of chronic HBV infection, murine T cells grafted with the 4D06 and the 4D08 CAR showed on target activity indicated by a transient increase in serum transaminases, and a lower number of HBV-positive hepatocytes in the mice treated. This study demonstrates an efficient and fast approach to identifying pathogen-specific monoclonal human antibodies from small donor cell numbers for the subsequent generation of new CARs.


Subject(s)
Hepatitis B Surface Antigens , Hepatitis B virus , Humans , Hepatitis B virus/immunology , Hepatitis B virus/genetics , Animals , Mice , Hepatitis B Surface Antigens/immunology , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/metabolism , Antibodies, Monoclonal/immunology , Immunotherapy, Adoptive , Hepatitis B/immunology , Hepatitis B/virology , Broadly Neutralizing Antibodies/immunology , B-Lymphocytes/immunology , T-Lymphocytes/immunology
7.
Methods Mol Biol ; 2807: 287-298, 2024.
Article in English | MEDLINE | ID: mdl-38743236

ABSTRACT

The inability of people living with HIV (PLWH) to eradicate human immunodeficiency virus (HIV) infection is due in part to the inadequate HIV-specific cellular immune response. The antiviral function of cytotoxic CD8+ T cells, which are crucial for HIV control, is impaired during chronic viral infection because of viral escape mutations, immune exhaustion, HIV antigen downregulation, inflammation, and apoptosis. In addition, some HIV-infected cells either localize to tissue sanctuaries inaccessible to CD8+ T cells or are intrinsically resistant to CD8+ T cell killing. The novel design of synthetic chimeric antigen receptors (CARs) that enable T cells to target specific antigens has led to the development of potent and effective CAR-T cell therapies. While initial clinical trials using anti-HIV CAR-T cells performed over 20 years ago showed limited anti-HIV effects, the improved CAR-T cell design, which enabled its success in treating cancer, has reinstated CAR-T cell therapy as a strategy for HIV cure with notable progress being made in the recent decade.Effective CAR-T cell therapy against HIV infection requires the generation of anti-HIV CAR-T cells with potent in vivo activity against HIV-infected cells. Preclinical evaluation of anti-HIV efficacy of CAR-T cells and their safety is fundamental for supporting the initiation of subsequent clinical trials in PLWH. For these preclinical studies, we developed a novel humanized mouse model supporting in vivo HIV infection, the development of viremia, and the evaluation of novel HIV therapeutics. Preclinical assessment of anti-HIV CAR-T cells using this mouse model involves a multistep process including peripheral blood mononuclear cells (PBMCs) harvested from human donors, T cell purification, ex vivo T cell activation, transduction with lentiviral vectors encoding an anti-HIV CAR, CAR-T cell expansion and infusion in mice intrasplenically injected with autologous PBMCs followed by the determination of CAR-T cell capacity for HIV suppression. Each of the steps described in the following protocol were optimized in the lab to maximize the quantity and quality of the final anti-HIV CAR-T cell products.


Subject(s)
HIV Infections , Immunotherapy, Adoptive , Receptors, Chimeric Antigen , Humans , Animals , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/metabolism , Mice , HIV Infections/immunology , HIV Infections/therapy , HIV Infections/virology , Immunotherapy, Adoptive/methods , Receptors, Antigen, T-Cell/immunology , Receptors, Antigen, T-Cell/genetics , Receptors, Antigen, T-Cell/metabolism , CD8-Positive T-Lymphocytes/immunology , HIV-1/immunology , T-Lymphocytes/immunology , Transduction, Genetic
8.
Front Immunol ; 15: 1386856, 2024.
Article in English | MEDLINE | ID: mdl-38779672

ABSTRACT

Adoptive T cellular immunotherapies have emerged as relevant approaches for treating cancer patients who have relapsed or become refractory (R/R) to traditional cancer treatments. Chimeric antigen receptor (CAR) T-cell therapy has improved survival in various hematological malignancies. However, significant limitations still impede the widespread adoption of these therapies in most cancers. To advance in this field, six research groups have created the "NEXT Generation CART MAD Consortium" (NEXT CART) in Madrid's Community, which aims to develop novel cell-based immunotherapies for R/R and poor prognosis cancers. At NEXT CART, various basic and translational research groups and hospitals in Madrid concur to share and synergize their basic expertise in immunotherapy, gene therapy, and immunological synapse, and clinical expertise in pediatric and adult oncology. NEXT CART goal is to develop new cell engineering approaches and treatments for R/R adult and pediatric neoplasms to evaluate in multicenter clinical trials. Here, we discuss the current limitations of T cell-based therapies and introduce our perspective on future developments. Advancement opportunities include developing allogeneic products, optimizing CAR signaling domains, combining cellular immunotherapies, multi-targeting strategies, and improving tumor-infiltrating lymphocytes (TILs)/T cell receptor (TCR) therapy. Furthermore, basic studies aim to identify novel tumor targets, tumor molecules in the tumor microenvironment that impact CAR efficacy, and strategies to enhance the efficiency of the immunological synapse between immune and tumor cells. Our perspective of current cellular immunotherapy underscores the potential of these treatments while acknowledging the existing hurdles that demand innovative solutions to develop their potential for cancer treatment fully.


Subject(s)
Immunotherapy, Adoptive , Neoplasms , Receptors, Chimeric Antigen , Humans , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Immunotherapy, Adoptive/methods , Neoplasms/therapy , Neoplasms/immunology , T-Lymphocytes/immunology , Animals
9.
Front Immunol ; 15: 1392933, 2024.
Article in English | MEDLINE | ID: mdl-38779683

ABSTRACT

Introduction: Antigen binding to the T cell antigen receptor (TCR) leads to the phosphorylation of the immunoreceptor tyrosine-based activation motifs (ITAMs) of the CD3 complex, and thereby to T cell activation. The CD3ε subunit plays a unique role in TCR activation by recruiting the kinase LCK and the adaptor protein NCK prior to ITAM phosphorylation. Here, we aimed to investigate how phosphorylation of the individual CD3ε ITAM tyrosines impacts the CD3ε signalosome. Methods: We mimicked irreversible tyrosine phosphorylation by substituting glutamic acid for the tyrosine residues in the CD3ε ITAM. Results: Integrating CD3ε phospho-mimetic variants into the complete TCR-CD3 complex resulted in reduced TCR signal transduction, which was partially compensated by the involvement of the other TCR-CD3 ITAMs. By using novel CD3ε phospho-mimetic Chimeric Antigen Receptor (CAR) variants, we avoided any compensatory effects of other ITAMs in the TCR-CD3 complex. We demonstrated that irreversible CD3ε phosphorylation prevented signal transduction upon CAR engagement. Mechanistically, we demonstrated that glutamic acid substitution at the N-terminal tyrosine residue of the CD3ε ITAM (Y39E) significantly reduces NCK binding to the TCR. In contrast, mutation at the C-terminal tyrosine of the CD3ε ITAM (Y50E) abolished LCK recruitment to the TCR, while increasing NCK binding. Double mutation at the C- and N-terminal tyrosines (Y39/50E) allowed ZAP70 to bind, but reduced the interaction with LCK and NCK. Conclusions: The data demonstrate that the dynamic phosphorylation of the CD3ε ITAM tyrosines is essential for CD3ε to orchestrate optimal TCR and CAR signaling and highlights the key role of CD3ε signalosome to tune signal transduction.


Subject(s)
CD3 Complex , Receptors, Antigen, T-Cell , Receptors, Chimeric Antigen , Signal Transduction , CD3 Complex/metabolism , CD3 Complex/immunology , Phosphorylation , Humans , Receptors, Antigen, T-Cell/metabolism , Receptors, Antigen, T-Cell/immunology , Receptors, Chimeric Antigen/metabolism , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Lymphocyte Activation/immunology , Lymphocyte Specific Protein Tyrosine Kinase p56(lck)/metabolism , Lymphocyte Specific Protein Tyrosine Kinase p56(lck)/genetics , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Adaptor Proteins, Signal Transducing/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Receptor-CD3 Complex, Antigen, T-Cell/metabolism , Receptor-CD3 Complex, Antigen, T-Cell/immunology , Receptor-CD3 Complex, Antigen, T-Cell/genetics , HEK293 Cells , ZAP-70 Protein-Tyrosine Kinase/metabolism , ZAP-70 Protein-Tyrosine Kinase/genetics , Immunoreceptor Tyrosine-Based Activation Motif , Protein Binding , Jurkat Cells , Oncogene Proteins
10.
Sheng Wu Gong Cheng Xue Bao ; 40(5): 1338-1351, 2024 May 25.
Article in Chinese | MEDLINE | ID: mdl-38783801

ABSTRACT

Chimeric antigen receptor T cells (CAR-T) immunotherapy, which activates immunity specific to the system in order to achieve antitumor effects, has experienced exciting progress in recent years. mRNA nano-delivery systems, which encapsulate tumor immunotherapy-related antigen mRNA with nanoparticles, have shown great potential in CAR-T tumor immunotherapy. On one hand, these systems can directly target T cells to generate CAR-T cells that directly act upon the corresponding tumor cells. On the other hand, they can be delivered to antigen-presenting cells through targeting, thereby enhancing the function of CAR-T cells and further inducing specific immune responses against tumor cells. This review summarizes the synthesis of mRNA nano-delivery systems and their application in CAR-T tumor immunotherapy.


Subject(s)
Immunotherapy, Adoptive , Nanoparticles , Neoplasms , RNA, Messenger , Receptors, Chimeric Antigen , Humans , Neoplasms/therapy , Neoplasms/immunology , RNA, Messenger/genetics , RNA, Messenger/immunology , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Nanoparticles/chemistry , Immunotherapy , T-Lymphocytes/immunology , Receptors, Antigen, T-Cell/immunology , Receptors, Antigen, T-Cell/genetics , Animals
11.
Front Immunol ; 15: 1384039, 2024.
Article in English | MEDLINE | ID: mdl-38726000

ABSTRACT

Chimeric antigen receptor-natural killer (CAR-NK) cell therapy is a novel immunotherapy targeting cancer cells via the generation of chimeric antigen receptors on NK cells which recognize specific cancer antigens. CAR-NK cell therapy is gaining attention nowadays owing to the ability of CAR-NK cells to release potent cytotoxicity against cancer cells without side effects such as cytokine release syndrome (CRS), neurotoxicity and graft-versus-host disease (GvHD). CAR-NK cells do not require antigen priming, thus enabling them to be used as "off-the-shelf" therapy. Nonetheless, CAR-NK cell therapy still possesses several challenges in eliminating cancer cells which reside in hypoxic and immunosuppressive tumor microenvironment. Therefore, this review is envisioned to explore the current advancements and limitations of CAR-NK cell therapy as well as discuss strategies to overcome the challenges faced by CAR-NK cell therapy. This review also aims to dissect the current status of clinical trials on CAR-NK cells and future recommendations for improving the effectiveness and safety of CAR-NK cell therapy.


Subject(s)
Immunotherapy, Adoptive , Killer Cells, Natural , Neoplasms , Receptors, Chimeric Antigen , Humans , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Immunotherapy, Adoptive/methods , Immunotherapy, Adoptive/adverse effects , Killer Cells, Natural/immunology , Neoplasms/therapy , Neoplasms/immunology , Animals , Tumor Microenvironment/immunology , Clinical Trials as Topic , Antigens, Neoplasm/immunology
12.
Life Sci ; 348: 122683, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38702027

ABSTRACT

Although CAR-T cell therapy has emerged as a game-changer in cancer immunotherapy several bottlenecks limit its widespread use as a front-line therapy. Current protocols for the production of CAR-T cells rely mainly on the use of lentiviral/retroviral vectors. Nevertheless, according to the safety concerns around the use of viral vectors, there are several regulatory hurdles to their clinical use. Large-scale production of viral vectors under "Current Good Manufacturing Practice" (cGMP) involves rigorous quality control assessments and regulatory requirements that impose exorbitant costs on suppliers and as a result, lead to a significant increase in the cost of treatment. Pursuing an efficient non-viral method for genetic modification of immune cells is a hot topic in cell-based gene therapy. This study aims to investigate the current state-of-the-art in non-viral methods of CAR-T cell manufacturing. In the first part of this study, after reviewing the advantages and disadvantages of the clinical use of viral vectors, different non-viral vectors and the path of their clinical translation are discussed. These vectors include transposons (sleeping beauty, piggyBac, Tol2, and Tc Buster), programmable nucleases (ZFNs, TALENs, and CRISPR/Cas9), mRNA, plasmids, minicircles, and nanoplasmids. Afterward, various methods for efficient delivery of non-viral vectors into the cells are reviewed.


Subject(s)
Genetic Vectors , Immunotherapy, Adoptive , Receptors, Chimeric Antigen , Humans , Immunotherapy, Adoptive/methods , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Animals , T-Lymphocytes/immunology , Genetic Therapy/methods , Neoplasms/therapy
13.
Nat Commun ; 15(1): 3732, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38702309

ABSTRACT

Immunotherapy with chimeric antigen receptor T cells for pediatric solid and brain tumors is constrained by available targetable antigens. Cancer-specific exons present a promising reservoir of targets; however, these have not been explored and validated systematically in a pan-cancer fashion. To identify cancer specific exon targets, here we analyze 1532 RNA-seq datasets from 16 types of pediatric solid and brain tumors for comparison with normal tissues using a newly developed workflow. We find 2933 exons in 157 genes encoding proteins of the surfaceome or matrisome with high cancer specificity either at the gene (n = 148) or the alternatively spliced isoform (n = 9) level. Expression of selected alternatively spliced targets, including the EDB domain of fibronectin 1, and gene targets, such as COL11A1, are validated in pediatric patient derived xenograft tumors. We generate T cells expressing chimeric antigen receptors specific for the EDB domain or COL11A1 and demonstrate that these have antitumor activity. The full target list, explorable via an interactive web portal ( https://cseminer.stjude.org/ ), provides a rich resource for developing immunotherapy of pediatric solid and brain tumors using gene or AS targets with high expression specificity in cancer.


Subject(s)
Brain Neoplasms , Exons , Receptors, Chimeric Antigen , Humans , Brain Neoplasms/immunology , Brain Neoplasms/therapy , Brain Neoplasms/genetics , Animals , Exons/genetics , Child , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/metabolism , Mice , Immunotherapy/methods , Alternative Splicing , Fibronectins/genetics , Fibronectins/metabolism , Fibronectins/immunology , Xenograft Model Antitumor Assays , Gene Expression Regulation, Neoplastic , RNA-Seq , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Cell Line, Tumor , Immunotherapy, Adoptive/methods
14.
Mol Cancer ; 23(1): 98, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730483

ABSTRACT

The efficacy of Adoptive Cell Transfer Therapy (ACT) in combating hematological tumors has been well-documented, yet its application to solid tumors faces formidable hurdles, chief among them being the suboptimal therapeutic response and the immunosuppressive milieu within the tumor microenvironment (TME). Recently, Garcia, J. et al. present compelling findings shedding light on potential breakthroughs in this domain. Their investigation reveals the pronounced augmentation of anti-tumor activity in CAR T cells through the introduction of a T cell neoplasm fusion gene, CARD11-PIK3R3. The incorporation of this gene into engineered T cell therapy holds promise as a formidable tool in the arsenal of cancer immunotherapy. The innovative strategy outlined not only mitigates the requirement for high doses of CAR T cells but also enhances tumor control while exhibiting encouraging safety profiles. The exploration of the CARD11-PIK3R3 fusion gene represents an advancement in our approach to bolstering the anti-tumor efficacy of immunotherapeutic interventions. Nonetheless, the imperative for further inquiry to ascertain its transfection efficiency and long-term safety cannot be overstated. Nevertheless, this seminal investigation offers a beacon of hope in surmounting the formidable treatment impediments posed by solid tumors, paving the way for a transformative era in cancer therapeutics.


Subject(s)
Immunotherapy, Adoptive , Neoplasms , Receptors, Chimeric Antigen , Humans , Neoplasms/therapy , Neoplasms/genetics , Neoplasms/immunology , Immunotherapy, Adoptive/methods , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/metabolism , Tumor Microenvironment/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals
15.
Front Immunol ; 15: 1390498, 2024.
Article in English | MEDLINE | ID: mdl-38694508

ABSTRACT

Recent advancements in genetic engineering have made it possible to modify Natural Killer (NK) cells to enhance their ability to fight against various cancers, including solid tumors. This comprehensive overview discusses the current status of genetically engineered chimeric antigen receptor NK-cell therapies and their potential for treating solid tumors. We explore the inherent characteristics of NK cells and their role in immune regulation and tumor surveillance. Moreover, we examine the strategies used to genetically engineer NK cells in terms of efficacy, safety profile, and potential clinical applications. Our investigation suggests CAR-NK cells can effectively target and regress non-hematological malignancies, demonstrating enhanced antitumor efficacy. This implies excellent promise for treating tumors using genetically modified NK cells. Notably, NK cells exhibit low graft versus host disease (GvHD) potential and rarely induce significant toxicities, making them an ideal platform for CAR engineering. The adoptive transfer of allogeneic NK cells into patients further emphasizes the versatility of NK cells for various applications. We also address challenges and limitations associated with the clinical translation of genetically engineered NK-cell therapies, such as off-target effects, immune escape mechanisms, and manufacturing scalability. We provide strategies to overcome these obstacles through combination therapies and delivery optimization. Overall, we believe this review contributes to advancing NK-cell-based immunotherapy as a promising approach for cancer treatment by elucidating the underlying mechanisms, evaluating preclinical and clinical evidence, and addressing remaining challenges.


Subject(s)
Genetic Engineering , Immunotherapy, Adoptive , Killer Cells, Natural , Neoplasms , Receptors, Chimeric Antigen , Killer Cells, Natural/immunology , Killer Cells, Natural/transplantation , Humans , Neoplasms/therapy , Neoplasms/immunology , Immunotherapy, Adoptive/methods , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Animals
16.
J Immunother Cancer ; 12(5)2024 May 31.
Article in English | MEDLINE | ID: mdl-38821719

ABSTRACT

BACKGROUND: To accelerate the translation of novel immunotherapeutic treatment approaches, the development of analytic methods to assess their efficacy at early in vitro stages is necessary. Using a droplet-based microfluidic platform, we have established a method for multiparameter quantifiable phenotypic and genomic observations of immunotherapies. Chimeric antigen receptor (CAR) natural killer (NK) cells are of increased interest in the current immunotherapy landscape and thus provide an optimal model for evaluating our novel methodology. METHODS: For this approach, NK cells transduced with a CD19 CAR were compared with non-transduced NK cells in their ability to kill a lymphoma cell line. Using our microfluidic platform, we were able to quantify the increase in cytotoxicity and synaptic contact formation of CAR NK cells over non-transduced NK cells. We then optimized our droplet sorter and successfully used it to separate NK cells based on target cell killing to perform transcriptomic analyses. RESULTS: Our data revealed expected improvement in cytotoxicity with the CD19 CAR but more importantly, provided unique insights into the factors involved in the cytotoxic mechanisms of CAR NK cells. This demonstrates a novel, improved system for accelerating the pre-clinical screening of future immunotherapy treatments. CONCLUSIONS: This study provides a new potential approach for enhanced early screening of immunotherapies to improve their development, with a highly relevant cell model to demonstrate. Additionally, our validation studies provided some potential insights into transcriptomic determinants influencing CAR NK cytotoxicity.


Subject(s)
Killer Cells, Natural , Receptors, Chimeric Antigen , Single-Cell Analysis , Killer Cells, Natural/immunology , Killer Cells, Natural/metabolism , Humans , Single-Cell Analysis/methods , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/metabolism , Immunotherapy, Adoptive/methods , Phenotype , Cytotoxicity, Immunologic , Genotype , Cell Line, Tumor
18.
J Immunol Methods ; 529: 113682, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38705372

ABSTRACT

BACKGROUND: The measurement of antigen-specific serum IgE is common in clinical assessments of type I allergies. However, the interaction between antigens and IgE won't invariably trigger mast cell activation. We previously developed the IgE crosslinking-induced luciferase expression (EXiLE) method using the RS-ATL8 mast cell line; however, the method may not be sensitive enough in some cases. METHODS: In this study, we introduced an NF-AT-regulated luciferase reporter gene into the RBL-2H3 rat mast cell line and expressed a chimeric high-affinity IgE receptor (FcεRI) α chain gene, comprising an extracellular domain from humans and transmembrane/intracellular domains from rats. RESULTS: We generated multiple clones expressing the chimeric receptor. Based on their responsiveness and proliferation, we selected the HuRa-40 clone. This cell line exhibited significantly elevated human α chain expression compared to RS-ATL8 cells, demonstrating a 10-fold enhancement of antigen-specific reactivity. Reproducibility across different batches and operators was excellent. Moreover, we observed a detectable response inhibition by an anti-allergy drugs (omalizumab and cyclosporin A). CONCLUSIONS: HuRa-40 cells-which carry the human-rat chimeric IgE receptor-comprise a valuable reporter cell line for the EXiLE method. Their versatility extends to various applications and facilitates high-throughput screening of anti-allergy drugs.


Subject(s)
Immunoglobulin E , Luciferases , Mast Cells , Receptors, IgE , Receptors, IgE/metabolism , Receptors, IgE/genetics , Receptors, IgE/immunology , Animals , Humans , Mast Cells/immunology , Mast Cells/metabolism , Rats , Immunoglobulin E/immunology , Luciferases/genetics , Luciferases/metabolism , Cell Line , Genes, Reporter , Reproducibility of Results , Receptors, Chimeric Antigen/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/metabolism
19.
Adv Protein Chem Struct Biol ; 140: 91-156, 2024.
Article in English | MEDLINE | ID: mdl-38762281

ABSTRACT

This book chapter highlights a comprehensive exploration of the transformative innovations in the field of cancer immunotherapy. CAR (Chimeric Antigen Receptor) T-cell therapy represents a groundbreaking approach to treat cancer by reprogramming a patient immune cells to recognize and destroy cancer cells. This chapter underscores the critical role of synthetic biology in enhancing the safety and effectiveness of CAR T-cell therapies. It begins by emphasizing the growing importance of personalized medicine in cancer treatment, emphasizing the shift from one-size-fits-all approaches to patient-specific solutions. Synthetic biology, a multidisciplinary field, has been instrumental in customizing CAR T-cell therapies, allowing for fine-tuned precision and minimizing unwanted side effects. The chapter highlights recent advances in gene editing, synthetic gene circuits, and molecular engineering, showcasing how these technologies are optimizing CAR T-cell function. In summary, this book chapter sheds light on the remarkable progress made in the development of CAR T-cell therapies using synthetic biology, providing hope for cancer patients and hinting at a future where highly personalized and effective cancer treatments are the norm.


Subject(s)
Neoplasms , Receptors, Chimeric Antigen , Synthetic Biology , Humans , Neoplasms/therapy , Neoplasms/immunology , Neoplasms/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Immunotherapy, Adoptive/methods , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Gene Editing , Cell Engineering
20.
Front Immunol ; 15: 1389971, 2024.
Article in English | MEDLINE | ID: mdl-38799440

ABSTRACT

Currently, therapies such as chimeric antigen receptor-T Cell (CAR-T) and immune checkpoint inhibitors like programmed cell death protein-1 (PD-1) blockers are showing promising results for numerous cancer patients. However, significant advancements are required before CAR-T therapies become readily available as off-the-shelf treatments, particularly for solid tumors and lymphomas. In this review, we have systematically analyzed the combination therapy involving engineered CAR-T cells and anti PD-1 agents. This approach aims at overcoming the limitations of current treatments and offers potential advantages such as enhanced tumor inhibition, alleviated T-cell exhaustion, heightened T-cell activation, and minimized toxicity. The integration of CAR-T therapy, which targets tumor-associated antigens, with PD-1 blockade augments T-cell function and mitigates immune suppression within the tumor microenvironment. To assess the impact of combination therapy on various tumors and lymphomas, we categorized them based on six major tumor-associated antigens: mesothelin, disialoganglioside GD-2, CD-19, CD-22, CD-133, and CD-30, which are present in different tumor types. We evaluated the efficacy, complete and partial responses, and progression-free survival in both pre-clinical and clinical models. Additionally, we discussed potential implications, including the feasibility of combination immunotherapies, emphasizing the importance of ongoing research to optimize treatment strategies and improve outcomes for cancer patients. Overall, we believe combining CAR-T therapy with PD-1 blockade holds promise for the next generation of cancer immunotherapy.


Subject(s)
Immune Checkpoint Inhibitors , Immunotherapy, Adoptive , Lymphoma , Programmed Cell Death 1 Receptor , Receptors, Chimeric Antigen , Humans , Programmed Cell Death 1 Receptor/antagonists & inhibitors , Programmed Cell Death 1 Receptor/immunology , Immunotherapy, Adoptive/methods , Lymphoma/therapy , Lymphoma/immunology , Immune Checkpoint Inhibitors/therapeutic use , Immune Checkpoint Inhibitors/pharmacology , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Animals , Neoplasms/therapy , Neoplasms/immunology , Combined Modality Therapy , Tumor Microenvironment/immunology , Antigens, Neoplasm/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism
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