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Recent Advances in Lung Cancer Immunotherapy: Input of T-Cell Epitopes Associated With Impaired Peptide Processing
Marine Leclerc1, Laura Mezquita2, Guillaume Guillebot De Nerville1
1INSERM UMR 1186, Integrative Tumor Immunology and Genetic Oncology, Gustave Roussy, EPHE, PSL, Faculté de Médecine - Université Paris-Sud, Université Paris-Saclay, Villejuif, France.
Abstract:
Recent advances in lung cancer treatment are emerging from new immunotherapies that target T-cell inhibitory receptors, such as programmed cell death-1 (PD-1). However, responses to anti-PD-1 antibodies as single agents are observed in fewer than 20% of non-small-cell lung cancer (NSCLC) patients, and immune mechanisms involved in the response to these therapeutic interventions remain poorly elucidated. Accumulating evidence indicates that effective anti-tumor immunity is associated with the presence of T cells directed toward cancer neoepitopes, a class of major histocompatibility complex (MHC)-bound peptides that arise from tumor-specific mutations. Nevertheless, tumors frequently use multiple pathways to escape T-cell recognition and destruction. In this regard, primary and acquired resistance to immune checkpoint blockade (ICB) therapy was associated with alterations in genes relevant to antigen presentation by MHC-class I/beta-2-microglobulin (MHC-I/β2m) complexes to CD8 T lymphocytes. Among additional known mechanisms involved in tumor resistance to CD8 T-cell immunity, alterations in transporter associated with antigen processing (TAP) play a major role by inducing a sharp decrease in surface expression of MHC-I/β2m-peptide complexes, enabling malignant cells to evade cytotoxic T lymphocyte (CTL)-mediated killing. Therefore, development of novel immunotherapies based on tumor neoantigens, that are selectively presented by cancer cells carrying defects in antigen processing and presentation, and that are capable of inducing destruction of such transformed cells, is a major challenge in translational research for application in treatment of lung cancer. In this context, we previously identified a non-mutant tumor neoepitope, ppCT16-25, derived from the preprocalcitonin (ppCT) leader sequence and processed independently of proteasomes/TAP by a mechanism involving signal peptidase (SP) and signal peptide peptidase (SPP). We also provided in vitro and in vivo proof of the concept of active immunotherapy based on ppCT-derived peptides capable of controlling growth of immune-escaped tumors expressing low levels of MHC-I molecules. Thus, non-mutant and mutant neoepitopes are promising T-cell targets for therapeutic cancer vaccines in combination with ICB. In this review, we summarize current treatments for lung cancer and discuss the promises that conserved neoantigens offer for more effective immunotherapies targeting immune-escaped tumor variants.
Insights
New lung cancer immunotherapies targeting programmed cell death-1 (PD-1) show limited response. Research highlights conserved neoantigens as promising targets for overcoming resistance in non-small-cell lung cancer (NSCLC) treatment.
Area of Science:
- Immunology and Oncology
- Cancer Therapeutics
- Translational Research
Background:
- Current immunotherapies like anti-programmed cell death-1 (PD-1) antibodies are effective in less than 20% of non-small-cell lung cancer (NSCLC) patients.
- Tumor resistance to immune checkpoint blockade (ICB) is linked to defects in antigen presentation, specifically involving MHC-class I/beta-2-microglobulin (MHC-I/β2m) complexes and transporter associated with antigen processing (TAP).
- Effective anti-tumor immunity relies on T cells recognizing cancer neoepitopes, but tumors employ multiple escape mechanisms.
Purpose of the Study:
- To explore novel immunotherapeutic strategies for lung cancer, particularly focusing on overcoming resistance mechanisms.
- To investigate the potential of conserved neoantigens, including non-mutant neoepitopes, as targets for effective cancer vaccines.
- To summarize current lung cancer treatments and discuss the promise of neoantigens in targeting immune-escaped tumor variants.
Main Methods:
- Review of current lung cancer treatments and immunotherapies.
- Analysis of immune mechanisms underlying response and resistance to anti-PD-1 therapy.
- Identification and characterization of a non-mutant neoepitope (ppCT16-25) processed independently of proteasomes/TAP.
Main Results:
- A non-mutant neoepitope, ppCT16-25, derived from preprocalcitonin (ppCT) leader sequence, was identified.
- This neoepitope is processed via signal peptidase (SP) and signal peptide peptidase (SPP), bypassing the proteasome/TAP pathway.
- Preclinical studies demonstrated the efficacy of ppCT-derived peptides in controlling tumors with low MHC-I expression, suggesting potential for active immunotherapy.
Conclusions:
- Conserved neoantigens, both mutant and non-mutant, represent promising targets for therapeutic cancer vaccines.
- Targeting these neoantigens may offer a strategy to overcome resistance to current immune checkpoint blockade therapies in NSCLC.
- Further research into neoantigen-based immunotherapies holds significant promise for treating immune-escaped lung cancer variants.
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Overview of Advanced Functional Groups
Functional groups are groups of atoms with specific chemical properties that occur within organic molecules and are sometimes denoted as “R”. Functional groups can “functionalize” a compound by enabling it to adopt different physical and chemical properties.
Types of Advanced Functional Groups
The table below summarizes some of the major functional groups in organic chemistry.

