SPI1/VSIG4/THBS1通过调节PI3K/AKT通路对胶质母细胞瘤进展的作用

Jie Shen, Lihui Zhou, Ke Ye, Jiangbiao Gong, Fan Wu, Kangnan Mo, Yu Zhu, Chao Chen, Renya Zhan
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引用次数: 0

摘要

简介:多形性胶质母细胞瘤(GBM多形性胶质母细胞瘤(GBM)因其恶性程度高,对治疗构成了巨大挑战,因此有必要确定更多的分子靶点。VSIG4 是一种致癌基因,在各种癌症类型中参与肿瘤的生长和迁移。然而,VSIG4 促进胶质瘤恶性进展的确切过程仍有待阐明:本研究旨在探索 VSIG4 在胶质瘤恶性进展中的功能和分子机制:方法:采用 qPCR、Western 印迹和免疫组化技术检测 VSIG4 的含量。慢病毒感染用于上调或下调胶质瘤细胞内的分子。应用 5-乙炔基-20-脱氧尿苷结合、Transwell、细胞计数试剂盒-8 和克隆形成实验来评估分子对胶质瘤细胞的生物学功能。利用双荧光素酶报告基因、RNA免疫沉淀和染色质免疫沉淀实验探讨了相关分子之间的功能关系:结果:在GBM组织中观察到VSIG4上调,表明预后不良。在胶质瘤细胞中沉默 VSIG4 会导致细胞活力、侵袭、增殖和肿瘤发生下降,细胞凋亡增加,细胞周期进展停滞在 G0/G1 期。从机理上讲,SPI1 介导的 VSIG4 表达上调导致 VSIG4 与 THBS1 蛋白结合,最终通过激活 PI3K/AKT 通路促进胶质瘤细胞的恶性进展。在敲除 VSIG4 后,通过过表达 THBS1 逆转了胶质瘤细胞被抑制的增殖和侵袭能力:我们的研究结果为 VSIG4 作为促癌基因的作用提供了证据,并揭示了 SPI1/VSIG4/THBS1 轴在胶质瘤恶性发展过程中的作用,而这一作用此前尚未被发现。这一信号级联通过调节 PI3K/AKT 通路来增强肿瘤的生长和侵袭。VSIG4作为一种潜在的生物标记物,可能是开发针对GBM的定制分子疗法的一种可行策略。
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The role of SPI1/VSIG4/THBS1 on glioblastoma progression through modulation of the PI3K/AKT pathway.

Introduction: Glioblastoma multiforme (GBM) poses a significant challenge in terms of treatment due to its high malignancy, necessitating the identification of additional molecular targets. VSIG4, an oncogenic gene participates in tumor growth and migration in various cancer types. Nevertheless, the precise process through which VSIG4 facilitates the malignant progression of glioma remains to be elucidated.

Objectives: This research aims to explore the function and molecular mechanism involving VSIG4 in the malignant progression of glioma.

Methods: The amount of VSIG4 was measured using qPCR, western blotting, and immunohistochemistry. Lentivirus infections were applied for upregulating or downregulating molecules within glioma cells. The incorporation of 5-ethynyl-20-deoxyuridine, Transwell, cell counting kit-8, and clone formation experiments, were applied to assess the biological functions of molecules on glioma cells. Dual luciferase reporter gene, RNA immunoprecipitation, and chromatin immunoprecipitation assays were used to explore the functional relationship among relevant molecules.

Results: The upregulation of VSIG4 was observed in GBM tissues, indicating an adverse prognosis. Silencing VSIG4 in glioma cells resulted in a decrease in cell viability, invasion, proliferation, and tumorigenesis, an increase in cell apoptosis, and a stagnation in the cell cycle progression at the G0/G1 phase. Mechanistically, SPI1-mediated upregulation of VSIG4 expression led to binding between VSIG4 and THBS1 protein, ultimately facilitating the malignant progression of glioma cells through the activation of the PI3K/AKT pathway. The inhibited proliferative and invasive capabilities of glioma cells were reversed by overexpressing THBS1 following the knockdown of VSIG4.

Conclusion: Our findings provide evidence for the role of VSIG4 as an oncogene and reveal the previously unidentified contribution of the SPI1/VSIG4/THBS1 axis in the malignant progression of glioma. This signaling cascade enhances tumor growth and invasion by modulating the PI3K/AKT pathway. VSIG4 as a potential biomarker may be a viable strategy in the development of tailored molecular therapies for GBM.

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