糖脂
钙化
材料科学
癌症
癌症研究
新陈代谢
细胞
细胞代谢
癌细胞
生物化学
细胞生物学
医学
化学
生物
内科学
作者
Lihong Zhang,Yandi Sun,Yindan Lin,Hanhui Li,Yuqiao Huang,Ning Tang,Xueyun Zhang,Yin Lu,Vassili Kovalev,Eduard Snezhko,Yan Luo,Ben Wang
出处
期刊:Biomaterials
[Elsevier BV]
日期:2024-10-10
卷期号:314: 122886-122886
标识
DOI:10.1016/j.biomaterials.2024.122886
摘要
Drug resistance is an inherent challenge during cancer chemotherapy. Cancer cells favor fatty acid metabolism through metabolic reprogramming to achieve therapeutic resistance. However, an effective approach to overcoming the switch from glycolysis-dependent to fatty acid beta-oxidation-dependent anabolic and energy metabolism remains elusive. Here, we developed a macromolecular drug (folate-polySia, FpSA) to induce the extracellular microcalcification of cervical cancer cells with cisplatin resistance. Microcalcification attenuated the uptake of fatty acids and the beta-oxidation of fatty acids by mitochondrial dysfunction but boosted the glycolysis pathway. Consequently, cotreatment with Pt and FpSA inhibited cisplatin-resistant tumor growth and improved tumor-bearing mice's survival rates, indicating that FpSA switched fatty acid metabolism to glycolysis to sensitize cisplatin-resistant cells further. Taken together, cancer cell calcification induced by FpSA provides a reprogramming metabolic strategy for the treatment of chemotherapy-resistant tumors.
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