小RNA
生物
癌症研究
下调和上调
异种移植
发病机制
细胞生长
调节器
细胞周期蛋白依赖激酶6
微阵列分析技术
基因表达谱
细胞周期
白血病
抑制器
免疫学
微阵列
表型
基因表达调控
细胞周期蛋白E1
胸腺细胞
细胞周期蛋白依赖激酶
转录调控
细胞生物学
Oncomir公司
MCL1
细胞凋亡
基因表达
细胞周期蛋白
抑癌基因
恶性肿瘤
恶性转化
细胞周期蛋白
细胞周期检查点
细胞
癌症
转染
损失函数
基因
转录组
功能(生物学)
作者
Marı́a L. Toribio,María J García-León,Marina García-Peydró,Patricia Fuentes,Juan Alcaín,Enrique Martín-Gayo,Carlo M Croce,Ramiro Garzon,Sara González-García
出处
期刊:Blood
[Elsevier BV]
日期:2026-04-08
标识
DOI:10.1182/blood.2025030670
摘要
T-cell acute lymphoblastic leukemia (T-ALL) is an aggressive hematological malignancy arising from the neoplastic transformation of immature T cells during their development in the thymus. Deciphering the developmental programs whose dysregulation drives T-ALL pathogenesis is critical for the development of novel targeted therapies, which remain an urgent unmet need for the treatment of this disease. MicroRNAs (miRNAs) have emerged as key post-transcriptional regulators of numerous physiological processes including cancer. However, the specific role of miRNAs in human T-cell development and T-ALL pathogenesis remains largely unexplored. In this study, we comprehensively evaluated miRNA expression profiles across human T-cell development using microarray analysis and identified a dynamic expression pattern of miR-16-2, which is upregulated during early pre-T cell proliferative stages up to the resting stage of immature thymocytes immediately preceding TCRab expression, and is subsequently downregulated. We also confirmed the coordinated regulation of miR-15b expression, consistent with the reported clustered genomic location of both miRNAs. Notably, functional studies identified the miR-15b/16-2 cluster as a negative regulator of early thymocyte proliferation and demonstrated that overexpression of miR-15b/16-2 in T-ALL cells impaired leukemic growth in vitro and tumor progression in patient-derived xenotransplantation assays. Mechanistically, miR-15b/16-2 represses the expression of the genes encoding BCL-2 and CYCLIN D3, thereby promoting apoptosis and cell cycle dysregulation in T-ALL cells, characterized by an accumulation of G0-phase cells and a defective transition to the G2/M phase. Overall, these findings support a novel tumor-suppressive function for miR-15b/16-2 in T-ALL and highlight its potential as a promising therapeutic target.
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