Ma Ling, Cheng Qiao
Department of Endocrinology, First Affiliated Hospital, First Clinical Medical College, Yangtze University, Jingzhou, Hubei 434000, China.
Department of Endocrine and Breast Surgery, The First Affiliated Hospital of Chongqing Medical University, Chongqing 400016, China.
Biochem Biophys Res Commun. 2018 Apr 15;498(4):912-917. doi: 10.1016/j.bbrc.2018.03.079. Epub 2018 Mar 14.
Anaplastic thyroid carcinoma (ATC) is the most aggressive type of thyroid malignancies and resistant to chemotherapy. Little is known on the underlying mechanisms of ATC resistance to chemotherapy. In our work, we identified that 6-phosphogluconate dehydrogenase (6PGD) is critically involved in the development of ATC resistance to doxorubicin. We found that 6PGD mRNA, protein and enzyme activity levels are significantly upregulated in ATC cells during the prolonged exposure to doxorubicin in a time-dependent manner. 6PGD inhibition by genetic and pharmacological approaches significantly inhibits growth and survival of ATC cells that are highly resistant to doxorubicin. Consistently, 6PGD inhibition also sensitizes ATC cells to doxorubicin treatment. Of note, we observed the decreased level of NADPH, NADH and enzymatic activity of sirtuin-1 in response to 6PGD inhibition in doxorubicin-resistant ATC cells. Lactate level was also reduced by 6PGD inhibition. All these indicate that 6PGD inhibition disrupts metabolic reprogramming in doxorubicin-resistant ATC cells. Our work demonstrates 6PGD activation-mediated resistance in response to doxorubicin and provides an alternative therapeutic strategy to overcome resistance to chemotherapy for ATC treatment. Our findings also highlight the importance of metabolic reprogramming in ATC chemoresistance.
间变性甲状腺癌(ATC)是最具侵袭性的甲状腺恶性肿瘤类型,对化疗耐药。关于ATC对化疗耐药的潜在机制知之甚少。在我们的研究中,我们发现6-磷酸葡萄糖酸脱氢酶(6PGD)在ATC对阿霉素的耐药发展中起关键作用。我们发现,在长时间暴露于阿霉素的过程中,ATC细胞中的6PGD mRNA、蛋白质和酶活性水平以时间依赖性方式显著上调。通过基因和药理学方法抑制6PGD可显著抑制对阿霉素高度耐药的ATC细胞的生长和存活。同样,抑制6PGD也使ATC细胞对阿霉素治疗敏感。值得注意的是,我们观察到在耐阿霉素的ATC细胞中,响应6PGD抑制,NADPH、NADH水平和沉默调节蛋白1的酶活性降低。6PGD抑制也降低了乳酸水平。所有这些表明,6PGD抑制破坏了耐阿霉素的ATC细胞中的代谢重编程。我们的研究证明了6PGD激活介导的对阿霉素的耐药性,并为克服ATC治疗的化疗耐药性提供了一种替代治疗策略。我们的发现还强调了代谢重编程在ATC化疗耐药中的重要性。