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Published on: August 15, 2019
OX40/OX40 ligand and its role in precision immune oncology
Bicky Thapa1, Shumei Kato2, Daisuke Nishizaki2
1Division of Hematology and Oncology, Medical College of Wisconsin, Milwaukee, WI, USA. bithapa@mcw.edu.
Abstract:
Immune checkpoint inhibitors have changed the treatment landscape for various malignancies; however, their benefit is limited to a subset of patients. The immune machinery includes both mediators of suppression/immune evasion, such as PD-1, PD-L1, CTLA-4, and LAG-3, all of which can be inhibited by specific antibodies, and immune-stimulatory molecules, such as T-cell co-stimulatory receptors that belong to the tumor necrosis factor receptor superfamily (TNFRSF), including OX40 receptor (CD134; TNFRSF4), 4-1BB (CD137; TNFRSF9), and glucocorticoid-induced TNFR-related (GITR) protein (CD357; TNFRSF18). In particular, OX40 and its binding ligand OX40L (CD134L; TNFSF4; CD252) are critical for immunoregulation. When OX40 on activated T cells binds OX40L on antigen-presenting cells, T-cell activation and immune stimulation are initiated via enhanced T-cell survival, proliferation and cytotoxicity, memory T-cell formation, and abrogation of regulatory T cell (Treg) immunosuppressive functions. OX40 agonists are in clinical trials both as monotherapy and in combination with other immunotherapy agents, in particular specific checkpoint inhibitors, for cancer treatment. To date, however, only a minority of patients respond. Transcriptomic profiling reveals that OX40 and OX40L expression vary between and within tumor types, and that only ~ 17% of cancer patients have high OX40 and low OX40L, one of the expression patterns that might be theoretically amenable to OX40 agonist enhancement. Taken together, the data suggest that the OX40/OX40L machinery is a critical part of the immune stimulatory system and that understanding endogenous expression patterns of these molecules and co-existing checkpoints merits further investigation in the context of a precision immunotherapy strategy for cancer therapy.
Insights
Immune checkpoint inhibitors show promise but benefit a limited patient subset. Understanding OX40 and OX40L expression patterns is crucial for developing effective OX40 agonist immunotherapies for cancer.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Immune checkpoint inhibitors (ICIs) have revolutionized cancer treatment but are effective only in a subset of patients.
- Immune evasion is mediated by targets like PD-1 and CTLA-4, while immune stimulation involves T-cell co-stimulatory receptors such as OX40 (CD134; TNFRSF4).
- OX40 receptor and its ligand OX40L are critical for T-cell activation, proliferation, survival, memory formation, and Treg suppression.
Purpose of the Study:
- To investigate the role of the OX40/OX40L axis in cancer immunotherapy.
- To explore the potential of OX40 agonists as a therapeutic strategy.
- To understand the endogenous expression patterns of OX40 and OX40L in cancer patients.
Main Methods:
- Review of immune checkpoint inhibitors and immune-stimulatory molecules.
- Analysis of OX40 and OX40L function in T-cell activation and immunoregulation.
- Transcriptomic profiling to assess OX40 and OX40L expression in cancer patients.
Main Results:
- OX40 agonists are being evaluated in clinical trials, alone and with ICIs, for cancer treatment.
- Only a minority of patients currently respond to OX40 agonist therapy.
- Transcriptomic data indicate variable OX40 and OX40L expression across and within tumor types; only ~17% of patients show high OX40/low OX40L, a potentially responsive profile.
Conclusions:
- The OX40/OX40L pathway is a key component of the immune stimulatory system in cancer.
- Understanding the expression patterns of OX40, OX40L, and co-existing checkpoints is essential for precision immunotherapy.
- Further investigation into these expression patterns may guide the development of more effective OX40-based cancer therapies.
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