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February 9, 2026Frontiers in Immunology4 citationsOpen Access

Synergistic effects of radiotherapy and immunotherapy: improving oncological outcomes

XCXueqin ChenWLW. LiuYWYuzhu Wang

Key Points

  • The aim is to elucidate the mechanisms behind the synergy of radiotherapy and immunotherapy and propose optimization strategies.
  • Reviewed mechanisms of radiotherapy and immunotherapy synergy
  • Examined the dose-immune window hypothesis
  • Discussed artificial intelligence applications in treatment planning
  • Highlighted inconsistencies in survival outcomes from RT-immunotherapy combinations
  • Identified potential for dose optimization to enhance immune responses
  • Showcased AI advancements for predicting treatment efficacy and toxicity

Abstract

Radiotherapy (RT) and immunotherapy, which are cornerstone modalities in the realm of oncology, involve distinct mechanistic pathways and possess unique therapeutic potential. RT achieves localized tumor control by inducing DNA damage and disrupting the tumor microenvironment (TME), whereas immunotherapy—particularly immune checkpoint inhibitors (ICIs)—reactivates dormant antitumor immune responses to exert systemic effects. Across randomized evaluations, evidence for RT–immunotherapy superiority over standard regimens remains inconsistent, with multiple studies failing to show improvement in primary survival endpoints. This result highlights the need for the refined optimization of combinatorial strategies. In this review, we summarize the underlying mechanisms of RT–immunotherapy synergy and actionable strategies to increase therapeutic efficacy. Notably, we elaborate on the dose–immune window hypothesis, which delineates how distinct radiation doses modulate immune responses to achieve synergy with immunotherapy, and we highlight recent advances in artificial intelligence (AI) for optimizing treatment planning, patient stratification, and toxicity predictions. Overall, this review underscores the potential of RT–immunotherapy combinations and provides a framework for precision-based optimization, aiming to guide clinical practice and inspire future research in improving oncological outcomes.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/698978dff0ec2af6756e7154https://doi.org/10.3389/fimmu.2026.1771355
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