Metabolomic rewiring promotes endocrine therapy resistance in breast cancer

癌症研究 生物 内分泌系统 内科学 内分泌学 三阴性乳腺癌 乳腺癌 癌症 医学 激素
作者
Songyeon Ahn,Jun Hyoung Park,Sandra L. Grimm,Danthasinghe Waduge Badrajee Piyarathna,Tagari Samanta,Vasanta Putluri,Dereck Mezquita,Suzanne A.W. Fuqua,Nagireddy Putluri,Cristian Coarfa,Benny Abraham Kaipparettu
出处
期刊:Cancer Research [American Association for Cancer Research]
卷期号:84 (2): 291-304 被引量:13
标识
DOI:10.1158/0008-5472.can-23-0184
摘要

Approximately one-third of endocrine-treated women with estrogen receptor alpha-positive (ER+) breast cancers are at risk of recurrence due to intrinsic or acquired resistance. Thus, it is vital to understand the mechanisms underlying endocrine therapy resistance in ER+ breast cancer to improve patient treatment. Mitochondrial fatty acid β-oxidation (FAO) has been shown to be a major metabolic pathway in triple-negative breast cancer (TNBC) that can activate Src signaling. Here, we found metabolic reprogramming that increases FAO in ER+ breast cancer as a mechanism of resistance to endocrine therapy. A metabolically relevant, integrated gene signature was derived from transcriptomic, metabolomic, and lipidomic analyses in TNBC cells following inhibition of the FAO rate-limiting enzyme carnitine palmitoyl transferase 1 (CPT1), and this TNBC-derived signature was significantly associated with endocrine resistance in patients with ER+ breast cancer. Molecular, genetic, and metabolomic experiments identified activation of AMPK-FAO-oxidative phosphorylation (OXPHOS) signaling in endocrine-resistant ER+ breast cancer. CPT1 knockdown or treatment with FAO inhibitors in vitro and in vivo significantly enhanced the response of ER+ breast cancer cells to endocrine therapy. Consistent with the previous findings in TNBC, endocrine therapy-induced FAO activated the Src pathway in ER+ breast cancer. Src inhibitors suppressed the growth of endocrine-resistant tumors, and the efficacy could be further enhanced by metabolic priming with CPT1 inhibition. Collectively, this study developed and applied a TNBC-derived signature to reveal that metabolic reprogramming to FAO activates the Src pathway to drive endocrine resistance in ER+ breast cancer.

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