PO.TB10.12 · 肿瘤生物学
可调控三维类器官模型揭示胰腺癌中硬度依赖性的基质激活和细胞因子信号
A tunable 3D organoid model reveals stiffness-dependent stromal activation and cytokine signaling in pancreatic cancer
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摘要 Abstract
中文摘要
胰腺导管腺癌(PDAC)以致密的纤维化间质和坚硬的细胞外基质(ECM)为特征,二者共同塑造驱动疾病进展的肿瘤微环境(TME)。机械硬度通过机械转导调控成纤维细胞激活和炎症信号,但其对肿瘤-间质串扰的贡献仍未完全阐明。为研究这一问题,我们通过将PDAC细胞单独或与基质细胞联合包埋于软或硬的胶原基基质中,建立了一种可调控的三维共培养类器官模型。接种一周后收集条件培养基,采用ELISA分析TNF-alpha、IL-1beta和IL-6。使用CellTiter-Glo评估细胞活力,并通过RT-PCR定量成纤维细胞激活标志物(alpha-SMA、IL-6)。最后,进行免疫染色以评估类器官形态。我们的结果显示,PDAC细胞在软基质中分泌升高的TNF-alpha,提示早期由细胞因子驱动的重塑。硬基质中的成纤维细胞表现出CAF样表型,伴强烈的IL-1beta分泌,而成纤维细胞和MSCs在硬条件下均产生显著更高的IL-6,且在PDAC共培养中进一步放大。硬ECM增强了基质活力并诱导alpha-SMA和IL-6上调,证实了机械转导性激活。形态学分析显示,PDAC类器官在硬条件下形成更大、组织良好的三维结构,提示基质依赖性的生长和适应。我们得出结论,ECM硬度是PDAC中基质激活和炎症性细胞因子信号的强效调控因子,建立了一个维持纤维化和炎症的促肿瘤反馈环。未来研究将纳入机械转导抑制剂(如TGF-beta或整合素阻断剂)和延长的时间进程,以进一步阐明PDAC微环境中硬度驱动的炎症和重塑的动态过程。
查看英文原文 English abstract
Pancreatic ductal adenocarcinoma (PDAC) is characterized by a dense fibrotic stroma and stiff extracellular matrix (ECM) that together shape the tumor microenvironment (TME) driving disease progression. Mechanical stiffness regulates fibroblast activation and inflammatory signaling through mechanotransduction, yet its contribution to tumor-stroma crosstalk remains incompletely understood. To investigate this, we developed a tunable 3D co-culture organoid model by embedding PDAC cells alone or in combination with stromal cells within soft or stiff collagen-based matrices. Conditioned media were collected one week post-seeding and analyzed via ELISA for TNF-alpha, IL-1beta, and IL-6. Cell viability was assessed using CellTiter-Glo, and fibroblast activation markers (alpha-SMA, IL-6) were quantified by RT-PCR. Finally, immunostaining was performed to evaluate organoid morphology. Our results show that PDAC cells secreted elevated TNF-alpha in soft matrices, suggesting early cytokine-driven remodeling. Fibroblasts in stiff matrices exhibited a CAF-like phenotype with strong IL-1beta secretion, while both fibroblasts and MSCs produced significantly higher IL-6 under stiff conditions, further amplified in PDAC co-cultures. Stiff ECM enhanced stromal viability and induced alpha-SMA and IL-6 upregulation, confirming mechanotransductive activation. Morphological analysis revealed that PDAC organoids formed larger, well-organized 3D structures under stiff conditions, indicating matrix-dependent growth and adaptation. We conclude that ECM stiffness acts as a potent regulator of stromal activation and inflammatory cytokine signaling in PDAC, establishing a tumor-promoting feedback loop that sustains fibrosis and inflammation. Future studies will incorporate mechanotransduction inhibitors (e.g., TGF-beta or integrin blockers) and extended time courses to further define the dynamics of stiffness-driven inflammation and remodeling in the PDAC microenvironment.
利益披露 Disclosure
C. M. Ruiz-Rivera, None..
B. X. Hoang, None..
J. Ali, None..
T. D. Schmittgen, None..
B. Han, None.