破骨细胞
癌症研究
癌细胞
骨转移
转移
下调和上调
癌症
肿瘤微环境
骨吸收
骨重建
谷氨酰胺
医学
生物
内科学
生物化学
受体
氨基酸
基因
作者
Huijuan Fan,Zhanao Xu,Ke Yao,Bingxin Zheng,Yuan Zhang,Xuxiang Wang,Tengjiang Zhang,Xuan Li,Haitian Hu,Bin Yue,Zeping Hu,Hanqiu Zheng
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2023-08-16
标识
DOI:10.1101/2023.08.15.553338
摘要
ABSTRACT Seventy percent of patients with late-stage breast cancer develop distal bone metastases; however, the mechanism by which the metabolic microenvironment affects resistance to therapy remains unknown. We investigated the metabolic bone microenvironment and identified glutathione metabolism as the top pathway in osteoclasts, which provides feedback to tumor cells to help neutralize oxidative stress and generate PARP inhibitor (PARPi) therapy resistance. GPX4, the critical enzyme responsible for glutathione oxidation, was upregulated during PARPi therapy through stress-induced ATF4-dependent transcriptional programming. The increased absorption of glutamine and the upregulation of GPX4 expression work in concert to enhance glutathione metabolism in cancer cells. Human clinical sample analysis of paired primary breast tumor and bone metastasis samples revealed that GPX4 was significantly induced in bone metastases. Combination therapy utilizing PARPi and zoledronate, which blocks osteoclast activity and thereby reduces the microenvironmental glutamine supply, generates a synergistic effect in reducing bone metastasis. Thus, our results identified an essential metabolic symbiosis between bone-resident cells and metastatic cancer cells during PARPi therapy. SIGNIFICANCE Osteoclast-derived glutamine is taken up by tumor cells to synthesize glutathione and neutralize the ROS generated by PARPi. This is the first example of “metabolic symbiosis” in therapeutic resistance of bone metastasis.
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