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DHRS2 as a Novel Thalidomide Target Regulating Mitophagyand Inflammation in Head and Neck Squamous Cell Carcinoma

基因敲除 头颈部鳞状细胞癌 癌症研究 粒体自噬 自噬 炎症 细胞凋亡 头颈部癌 生物 医学 沙利度胺 细胞生长 转移 细胞 基因 基因表达谱 癌症 小RNA 平方毫米 基因表达 肿瘤科 癌变 表型 微阵列分析技术 程序性细胞死亡 细胞培养 肿瘤进展
作者
Yinghui Wu,姚庆文,Y L Li,Zixiao Song,Mei Gan,Jinghua Zhong,Leifeng Liang
出处
期刊:Current Medicinal Chemistry [Bentham Science Publishers]
卷期号:33
标识
DOI:10.2174/0109298673457941260609055708
摘要

Background: Radiation Therapy (RT) in Head and Neck Squamous Cell Carcinoma (HNSCC) often induces inflammation. Here, we examined the relationship between mitophagy and inflammation in HNSCC. Methods: The Cancer Genome Atlas and Gene Expression Omnibus were analyzed to identify genes associated with HNSCC, mitophagy, inflammation, and Thalidomide (THD). Differentially Expressed Genes (DEGs) were evaluated for functional enrichment. A prognostic model was constructed using LASSO and COX regression and evaluated using Kaplan-Meier analysis. Based on its reported role in alleviating Radiation-Induced Oral Mucositis (RIOM) and inflammation, THD was assessed using molecular docking to further investigate its potential mechanism. Knockdown cell lines were generated to examine the function of dehydrogenase/reductase 2 (DHRS2). results: In this study, mitochondrial autophagy and inflammatory related differentially expressed genes (MIRDEGs) were used to construct a prognostic model in HNSCC. Through rigorous Kaplan–Meier curve analysis, we demonstrated the exceptional accuracy of our prognostic model over both 3- and 5-year intervals. DHRS2 knockdown suppressed cell proliferation, migration, and invasion in HNSCC, and enhanced apoptosis. Results: In total, 535 related genes were identified, and a 26-gene prognostic model was established, effectively stratifying patients into high- and low-risk groups (AUC: 0.7-0.9). DHRS2 was identified as a key gene of interest, with molecular docking indicating strong binding affinity to THD. in vitro, DHRS2 knockdown significantly inhibited HNSCC cell proliferation, migration, and invasion while promoting apoptosis (p<0.05). THD reduced DHRS2 expression and increased PINK1/Parkin-related mitophagy. Discussion: These findings suggest that dysregulation of mitophagy and inflammation contributes to HNSCC progression and may underlie radiation-induced inflammatory injury. DHRS2 was identified as a potential THD-responsive target, linking bioinformatics findings with pharmacological intervention. These findings also provide a basis for exploring therapeutic strategies targeting mitophagy and inflammation in HNSCC. Conclusion: We developed a prognostic model based on mitophagy- and inflammation-related genes in HNSCC and identified DHRS2 as a potential THD target. These results highlight the interplay between mitophagy and inflammation in HNSCC, offering insights for the prognosis and management of inflammation.
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