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Mechanobiological Ultrasound Simulation Reveals Suppression of Epithelial-to-Mesenchymal Transition and Stemness Programs in Colorectal Cancer

结直肠癌 超声波 医学 癌症研究 转录组 过渡(遗传学) 上皮-间质转换 癌症 肿瘤科 治疗性超声 聚焦超声 内科学
作者
Pei Nan Wen,Ming shu Lin,Jianzhong Chen
出处
期刊:Cancer Biotherapy and Radiopharmaceuticals [Mary Ann Liebert, Inc.]
卷期号:: 10849785261422983-10849785261422983 被引量:1
标识
DOI:10.1177/10849785261422983
摘要

BACKGROUND: Dynamic characteristics such as cancer stemness and the epithelial-to-mesenchymal transition (EMT) cause the spread of colorectal cancer (CRC). Although there are now few pharmaceutical approaches, therapeutically correcting these conditions may improve prognosis. Acoustic radiation force and other mechanical ultrasonic forces have become new, noninvasive methods for modifying tumor biology. Nevertheless, little is known about their molecular influence on CRC EMT-stemness pathways. MATERIALS AND METHODS: The authors created a simulation pipeline to predict the effects of ultrasound-induced mechanical stress on CRC samples enriched for tumor-infiltrating T cells using transcriptome datasets (GSE108989). Heatmap visualizations, differential expression, pathway enrichment, principal component analysis (PCA), and EMT and stemness scores were computed using bulk RNA-seq. To evaluate mechanistic suppression, signaling axes such as TGF-β, Wnt/β-catenin, Notch, and yes-associated protein (YAP)/transcriptional coactivator with PDZ-binding motif (TAZ) were investigated. The potential ultrasonic sensitivity of key gene modules was assessed. RESULTS: Mesenchymal and stemness-associated transcriptional pathways were found to be downregulated in response to simulated acoustic modulation. Coherent clustering of decreased EMT/stemness genes was shown via heatmaps. Modified tumor groupings were identified by PCA. In the simulated postultrasound condition, canonical pathways associated with invasion, immunological evasion, and stemness maintenance were diminished. These results lend credence to the theory that CRC cellular plasticity may be reprogrammed by mechanical ultrasonic force. CONCLUSIONS: validation.
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