威尼斯人
髓系白血病
癌症研究
突变
净现值1
生物
抗药性
基因
白血病
遗传学
脱氧胞苷激酶
氧化磷酸化
细胞代谢
医学
髓样
点突变
β氧化
线粒体
信号转导
表型
生物信息学
磷酸化
后天抵抗
新陈代谢
疾病
癌症
阿扎胞苷
能量代谢
干细胞
细胞
细胞培养
化学
机制(生物学)
出处
期刊:PubMed
[National Institutes of Health]
日期:2025-01-01
卷期号:66 (9): 988-997
标识
DOI:10.11406/rinketsu.66.988
摘要
Venetoclax, a BCL-2 inhibitor, has transformed the treatment of elderly patients with acute myeloid leukemia (AML), but resistance remains a major clinical challenge. Approximately 30% of patients exhibit primary resistance, and many relapse despite achieving remission. Resistance mechanisms are multifaceted. AML stem cells rely on oxidative phosphorylation (OXPHOS) for survival, and venetoclax disrupts this energy metabolism by inducing mitochondrial dysfunction. However, resistant cells activate compensatory pathways such as fatty acid oxidation, amino acid metabolism, and the MEK-ERK signaling axis. Expression of anti-apoptotic proteins such as MCL-1 and BCL-XL also increases, circumventing BCL-2 inhibition. Furthermore, rare BCL2 mutations can directly impair drug binding. Sensitivity or resistance to venetoclax correlates strongly with specific molecular abnormalities. TP53 mutations predict poor response and survival, while RAS and FLT3 mutations confer moderate resistance. In contrast, IDH1/2 and NPM1 mutations are associated with high treatment sensitivity. Moving forward, personalized treatment strategies based on genetic profiles, along with combination therapies targeting metabolism or anti-apoptotic escape pathways, hold promise in overcoming resistance and improving outcomes in AML.
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