Exosomal circular RNAs in the tumor immune microenvironment: From regulatory mechanisms to therapeutic opportunities and translational hurdles (Review)

Immune checkpoint inhibitors have changed cancer treatment, although durable benefit remains limited because malignant, immune and stromal cells sustain suppression within the tumor immune microenvironment. Extracellular vesicles (EVs), including small EVs, can transfer circular RNAs (circRNAs) between defined donor and recipient cells. The relevant steps extend from circRNA biogenesis and entry into EV populations to delivery, intracellular activity, immune phenotype and clinical use. Incomplete transfer experiments, tumor‑intrinsic circRNA activity and engineered RNA platforms differ from direct EV‑mediated transfer. Direct transfer has been linked to tumor‑associated macrophages, myeloid‑derived suppressor cells, natural killer cells, CD8+ T cells and regulatory T cells. Within recipient cells, circRNAs can regulate microRNA availability, assemble RNA‑binding protein complexes, alter protein or RNA stability and produce functional peptides. Donor state, recipient identity, tissue site, EV subpopulation and delivered dose can change the resulting phenotype. Cancer‑associated fibroblasts further connect EV‑associated circRNAs with matrix remodeling, immune‑cell access and treatment tolerance. Biological support is classified from E0 to E3, while EV methods are considered separately through source definition, separation, characterization, RNA protection, uptake controls and quantitative dose. Translation will require full‑length circRNA identification, absolute measurement in EVs and recipient cells, spatial localization, prospective treatment cohorts and repeated‑dose safety testing. These requirements distinguish circulating associations from transferred molecules and identify the experiments needed for biomarker or therapeutic development.

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Publication Details

Journal
International Journal of Molecular Medicine
Published
2026-09-17
DOI
https://doi.org/10.3892/ijmm.2026.5989
Primary Topic
Circular RNAs in diseases
Type
article
Field-Weighted Citation Impact
0.00

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article

Exosomal circular RNAs in the tumor immune microenvironment: From regulatory mechanisms to therapeutic opportunities and translational hurdles (Review)

Shuixing Zhang, Hui Shen, Luxuan Liu, Zhe Jin et al.
International Journal of Molecular Medicine
Circular RNAs in diseases
article

Exosomal circular RNAs in the tumor immune microenvironment: From regulatory mechanisms to therapeutic opportunities and translational hurdles (Review)

Shuixing Zhang, Hui Shen, Luxuan Liu, Zhe Jin, Xin Liu, Bin Zhang, Wenlong Zhang, Xue Han, Yu Dong, Liya Gong, Nuo Chen, Liaoyuan Wang, Jie Sun
article en

Abstract

Immune checkpoint inhibitors have changed cancer treatment, although durable benefit remains limited because malignant, immune and stromal cells sustain suppression within the tumor immune microenvironment. Extracellular vesicles (EVs), including small EVs, can transfer circular RNAs (circRNAs) between defined donor and recipient cells. The relevant steps extend from circRNA biogenesis and entry into EV populations to delivery, intracellular activity, immune phenotype and clinical use. Incomplete transfer experiments, tumor‑intrinsic circRNA activity and engineered RNA platforms differ from direct EV‑mediated transfer. Direct transfer has been linked to tumor‑associated macrophages, myeloid‑derived suppressor cells, natural killer cells, CD8+ T cells and regulatory T cells. Within recipient cells, circRNAs can regulate microRNA availability, assemble RNA‑binding protein complexes, alter protein or RNA stability and produce functional peptides. Donor state, recipient identity, tissue site, EV subpopulation and delivered dose can change the resulting phenotype. Cancer‑associated fibroblasts further connect EV‑associated circRNAs with matrix remodeling, immune‑cell access and treatment tolerance. Biological support is classified from E0 to E3, while EV methods are considered separately through source definition, separation, characterization, RNA protection, uptake controls and quantitative dose. Translation will require full‑length circRNA identification, absolute measurement in EVs and recipient cells, spatial localization, prospective treatment cohorts and repeated‑dose safety testing. These requirements distinguish circulating associations from transferred molecules and identify the experiments needed for biomarker or therapeutic development.

International Journal of Molecular MedicineVol. 58(5)
First Affiliated Hospital of Jinan University (CN)
National Natural Science Foundation of China, National Key Research and Development Program of China
Zero hunger
Openalex Percentile: Top 19%
Circular RNAs in diseases
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