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.

PubMed

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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