Regulation of cytokinesis and necroptosis pathways by diosgenin inhibits the proliferation of NCI-H460 lung cancer cells

坏死性下垂 程序性细胞死亡 细胞生长 生物 细胞生物学 活力测定 细胞周期 克隆形成试验 胞质分裂 癌症研究 细胞凋亡 核分裂突变 细胞周期检查点 癌细胞 细胞 细胞分裂 癌症 生物化学 遗传学
作者
Matheus Felipe da Silva,Luan Vitor Alves de Lima,Liana Martins de Oliveira,Simone Cristine Semprebon,Nayane de Oliveira Silva,Amanda Passuello de Aguiar,Mário Sérgio Mantovani
出处
期刊:Life Sciences [Elsevier]
卷期号:330: 122033-122033 被引量:1
标识
DOI:10.1016/j.lfs.2023.122033
摘要

Aim Overcoming resistance to apoptosis and antimitotic chemotherapy is crucial for effective treatment of lung cancer. Diosgenin (DG), a promising phytochemical, can regulate various molecular pathways implicated in tumor formation and progression. However, the precise biological activity of DG in lung cancer remains unclear. This study aimed to investigate the antiproliferative activity of DG in NCI-H460 lung carcinoma cells to explore the underlying antimitotic mechanisms and alternative cell death pathways.In a 2D culture system, we analyzed cell viability, multinucleated cell frequency, cell concentration, cell cycle changes, cell death induction, intracellular reactive oxygen species (ROS) production, and nuclear DNA damage, particularly in relation to target gene expression. We also evaluated the antiproliferative activity of DG in a 3D culture system of spheroids, assessing volume changes, cell death induction, and inhibition of proliferation recovery and clonogenic growth.DG reduced cell viability and concentration while increasing the frequency of cells with multiple nuclei, particularly binucleated cells resulting from daughter cell fusion. This effect was associated with genes involved in cytokinesis regulation (RAB35, OCRL, BIRC5, and AURKB). Additionally, DG-induced cell death was linked to necroptosis, as evidenced by increased intracellular ROS production and RIPK3, MLKL, TRAF2, and HSPA5 gene expression. In tumor spheroids, DG increased spheroid volume, induced cell death, and inhibited proliferation recovery and clonogenic growth.Our study provides new insights into the biological activities of DG in lung cancer cells, contributing to the development of novel oncological therapies.
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