RNA epitranscriptomic regulation of tumor immune evasion: mechanisms, context-dependent roles, and therapeutic

Yanni Ma1,2, Wenzhi Deng3, Xiulin Jiang4

  • 1Department of Lymphoma and Hematology, Hunan Cancer Hospital, Changsha, China.

Insights

RNA epitranscriptomic modifications regulate cancer immunity by influencing tumor visibility and immune cell function. Targeting these RNA modifications offers a promising, yet challenging, therapeutic strategy for cancer immunotherapy.

Area of Science:

  • Oncology
  • Immunology
  • Molecular Biology

Background:

  • Tumor immune evasion is a major hurdle in cancer progression and immunotherapy.
  • RNA epitranscriptomic modifications are crucial post-transcriptional regulators impacting RNA fate and tumor immune remodeling.
  • These modifications dynamically influence RNA stability, splicing, translation, and immune recognition.

Purpose of the Study:

  • To explore the multifaceted roles of RNA epitranscriptomic modifications in cancer immune evasion and antitumor immunity.
  • To elucidate the mechanisms by which RNA modifications impact tumor immune visibility and the tumor immune microenvironment.
  • To assess the clinical potential and challenges of targeting RNA modification regulators in cancer therapy.

Main Methods:

  • Review and synthesis of current literature on RNA epitranscriptomic modifications in cancer immunology.
  • Analysis of how specific modifications (e.g., m6A, m5C, ac4C) and their regulators (writers, erasers, readers) affect immune processes.
  • Examination of clinical data and emerging therapeutic strategies involving RNA modification regulators.

Main Results:

  • RNA modifications critically regulate tumor immune visibility, antigen presentation, interferon signaling, and immune checkpoint expression (e.g., PD-1/PD-L1).
  • These modifications influence immune cell recruitment, exhaustion, and metabolic suppression within the tumor microenvironment.
  • RNA modification regulators exhibit context-dependent functions, potentially promoting either immune escape or antitumor responses.
  • RNA modification-based biomarkers show promise for predicting prognosis and response to immune checkpoint blockade.
  • Targeting RNA modification regulators is an emerging therapeutic strategy, often in combination with other treatments.

Conclusions:

  • RNA epitranscriptomic modifications are key players in shaping the tumor immune landscape, offering novel therapeutic targets.
  • Clinical translation of RNA modification-based therapies faces challenges including specificity, heterogeneity, and delivery.
  • Future research integrating multi-omics and single-cell technologies is vital for developing precise RNA epitranscriptomic biomarkers and therapies for cancer immunotherapy.

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