ArticlePloS one2024
Parotid glands have a dysregulated immune response following radiation therapy.
Article in PloS one, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed, 7 citations in OpenAlex.
- High-resolution spatial transcriptomics of irradiated submandibular glands treated with fortified fibrin hydrogels.iScience · 2026Article
- Radiomitigators: Breakthroughs in Post-Radiation Recovery.Antioxidants (Basel, Switzerland) · 2026Review
- Role of FDG-PET/CT in detecting metabolic changes in parotid glands following photon versus proton therapy.American journal of nuclear medicine and molecular imaging · 2026Article
- IFNγ and TNFα optimize salivary gland mesenchymal stromal cells: an alternative to marrow- and adipose-MSCs for radiation xerostomia.Regenerative therapy · 2025Article
- The Evaluation of Blood Prooxidant-Antioxidant Balance Indicators and Cortisol Pre- and Post-Surgery in Patients with Benign Parotid Gland Tumors: A Preliminary Study.Journal of clinical medicine · 2025Article
- Impact of Minimally Manipulated Cell Therapy on Immune Responses in Radiation-Induced Skin Wound Healing.International journal of molecular sciences · 2025Article
- Parotid preservation or immune protection? The dual dilemma in head and neck cancer radiotherapy.Frontiers in immunology · 2025Review
- Chronic Phenotypes Underlying Radiation-Induced Salivary Gland Dysfunction.Journal of dental research · 2024Review
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Authors and funding
5 authors at 1 institution in 1 country.
Funding
Abstract
Head and neck cancer treatment often consists of surgical resection of the tumor followed by ionizing radiation (IR), which can damage surrounding tissues and cause adverse side effects. The underlying mechanisms of radiation-induced salivary gland dysfunction are not fully understood, and treatment options are scarce and ineffective. The wound healing process is a necessary response to tissue injury, and broadly consists of inflammatory, proliferative, and redifferentiation phases with immune cells playing key roles in all three phases. In this study, select immune cells were phenotyped and quantified, and certain cytokine and chemokine concentrations were measured in mouse parotid glands after IR. Further, we used a model where glandular function is restored to assess the immune phenotype in a regenerative response. These data suggest that irradiated parotid tissue does not progress through a typical inflammatory response observed in wounds that heal. Specifically, total immune cells (CD45+) decrease at days 2 and 5 following IR, macrophages (F4/80+CD11b+) decrease at day 2 and 5 and increase at day 30, while neutrophils (Ly6G+CD11b+) significantly increase at day 30 following IR. Additionally, radiation treatment reduces CD3- cells at all time points, significantly increases CD3+/CD4+CD8+ double positive cells, and significantly reduces CD3+/CD4-CD8- double negative cells at day 30 after IR. Previous data indicate that post-IR treatment with IGF-1 restores salivary gland function at day 30, and IGF-1 injections attenuate the increase in macrophages, neutrophils, and CD4+CD8+ T cells observed at day 30 following IR. Taken together, these data indicate that parotid salivary tissue exhibits a dysregulated immune response following radiation treatment which may contribute to chronic loss of function phenotype in head and neck cancer survivors.
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Registered trials
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