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Metabolic role of fatty acid binding protein 7 in mediating triple-negative breast cancer cell death via PPAR-α signaling

机译:脂肪酸结合蛋白7在通过PPAR-α信号传导中介导三重阴性乳腺癌细胞死亡的代谢作用

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摘要

Triple-negative breast cancer (TNBC) is the most aggressive subtype of breast cancer, partly due to the lack of targeted therapy available. Cancer cells heavily reprogram their metabolism and acquire metabolic plasticity to satisfy the high-energy demand due to uncontrolled proliferation. Accumulating evidence shows that deregulated lipid metabolism affects cancer cell survival, and therefore we sought to understand the function of fatty acid binding protein 7 (FABP7), which is expressed predominantly in TNBC tissues. As FABP7 was not detected in the TNBC cell lines tested, Hs578T and MDA-MB-231 cells were transduced with lentiviral particles containing either FABP7 open reading frame or red fluorescent protein. During serum starvation, when lipids were significantly reduced, FABP7 decreased the viability of Hs578T, but not of MDA-MB-231, cells. FABP7-overexpressing Hs578T (Hs-FABP7) cells failed to efficiently utilize other available bioenergetic substrates such as glucose to sustain ATP production, which led to S/G2 phase arrest and cell death. We further showed that this metabolic phenotype was mediated by PPAR-α signaling, despite the lack of fatty acids in culture media, as Hs-FABP7 cells attempted to survive. This study provides imperative evidence of metabolic vulnerabilities driven by FABP7 via PPAR-α signaling.
机译:三阴性乳腺癌(TNBC)是乳腺癌中最具侵略性的亚型,部分原因是缺乏有针对性的治疗。癌细胞严重重新编程其新陈代谢并获得代谢可塑性,以满足由于不受控制的增殖导致的高能量需求。积累的证据表明,管制脂质代谢影响癌细胞存活,因此我们试图了解脂肪酸结合蛋白7(FABP7)的功能,其主要在TNBC组织中表达。由于在测试的TNBC细胞系中未检测到Fabp7,则用含有Fabp7开放阅读框或红色荧光蛋白的致脂素颗粒转导HS578T和MDA-MB-231细胞。在血清饥饿期间,当脂质显着降低时,FABP7降低了HS578T的可行性,但不具有MDA-MB-231,细胞。 Fabp7过度抑制HS578T(HS-FABP7)细胞未能有效地利用其他可用的生物能量底物,例如葡萄糖以维持ATP产量,从而导致S / G2期阻滞和细胞死亡。我们进一步表明,尽管培养培养基中缺乏脂肪酸,但由于HS-FABP7细胞试图存活的HS-FABP7细胞,因此通过PPAR-α信号传导介导该代谢表型。本研究提供了通过PPAR-α信号传导由FABP7驱动的代谢漏洞的命令态度。

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