利用有效的小分子在体外和体内快速有效地转化人胶质母细胞瘤的神经元。

IF 5.9 1区 生物学 Q2 CELL BIOLOGY
Ya'nan Hu, Jinming Liu, Jian Tu, Min Yang, Qisheng He, Fei Li, Xiaojing Xu, Zhongqing Ji, Jianwei Xu, Wentao Zhong, Mengwen Yan, Ying Yang, Huanxiang Zhang
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引用次数: 0

摘要

探索有效、及时、普遍适用的方法诱导胶质母细胞瘤(GBM)向停止细胞分裂的星形胶质细胞或神经元等终末分化细胞分化,是GBM分化治疗成功的关键。在这项研究中,神经元特异性启动子报告系统被用来筛选促进神经分化的小分子。鸡尾酒YFSS由Y27632、Forskolin、SB431542和SP600125组成,分别选择性靶向ROCK、cAMP、TGF-β和JNK信号通路,可有效触发人GBM细胞的分化。该过程在7天内产生了神经元样细胞,抑制了GBM细胞的增殖,降低了恶性肿瘤特征,如干性、迁移和侵袭能力。转录组测序揭示了YFSS改变的通路,揭示了其在阻止细胞增殖和启动神经元分化中的双重作用。在细胞分化过程中,细胞周期和神经元分化调控的关键分子CEND1的表达显著增加。然而,单独使用CEND1无法复制YFSS的高转化效率,其耗散降低了GBM细胞的分化,恢复了细胞的增殖。在体内,在患者来源的异种移植小鼠模型中,长期和局部应用YFSS可显著抑制肿瘤生长并延长生存期。综上所述,我们的研究结果表明,小分子鸡尾酒YFSS是诱导GBM细胞神经元分化的有效手段,代表了一种新的和有前景的GBM治疗途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid and Effective Neuronal Conversion of Human Glioblastoma In Vitro and In Vivo Using Potent Small Molecules.

Exploring effective, prompt and universally applicable approaches for inducing the differentiation of glioblastoma (GBM) into terminally differentiated cells, such as astrocytes or neurons that cease cell division, is pivotal for the success of GBM differentiation therapy. In this study, a neuronal-specific promoter-reporter system was employed to screen small molecules that promote neural differentiation. The cocktail YFSS, consisting of Y27632, Forskolin, SB431542 and SP600125, which selectively targets the ROCK, cAMP, TGF-β and JNK signalling pathways, respectively, was found to effectively trigger differentiation in human GBM cells. This process yielded neuron-like cells within 7 days, inhibited GBM cell proliferation and reduced malignancy traits, such as stemness, migratory and invasive capabilities. Transcriptome sequencing revealed the pathways altered by YFSS, shedding light on its dual role in halting cell proliferation and initiating neuronal differentiation. A notable increase in CEND1 expression, a key molecule in cell cycle and neuronal differentiation regulation, was observed during differentiation. However, CEND1 alone could not replicate YFSS's high conversion efficiency and its depletion reduced the differentiation and restored proliferation of the GBM cells. In vivo, prolonged and localised YFSS application significantly curtailed tumour growth and extended survival in patient-derived xenograft mice models. In summary, our findings reveal that the small-molecule cocktail YFSS is an effective means for inducing neuronal differentiation in GBM cells, representing a novel and promising pathway for the advancement of GBM treatment.

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来源期刊
Cell Proliferation
Cell Proliferation 生物-细胞生物学
CiteScore
14.80
自引率
2.40%
发文量
198
审稿时长
1 months
期刊介绍: Cell Proliferation Focus: Devoted to studies into all aspects of cell proliferation and differentiation. Covers normal and abnormal states. Explores control systems and mechanisms at various levels: inter- and intracellular, molecular, and genetic. Investigates modification by and interactions with chemical and physical agents. Includes mathematical modeling and the development of new techniques. Publication Content: Original research papers Invited review articles Book reviews Letters commenting on previously published papers and/or topics of general interest By organizing the information in this manner, readers can quickly grasp the scope, focus, and publication content of Cell Proliferation.
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