Therapy-induced lipid uptake and remodeling underpin ferroptosis hypersensitivity in prostate cancer

被引:75
作者
Tousignant, Kaylyn D. [1 ]
Rockstroh, Anja [1 ]
Poad, Berwyck L. J. [3 ]
Talebi, Ali [4 ]
Young, Reuben S. E. [3 ]
Fard, Atefeh Taherian [1 ]
Gupta, Rajesh [3 ]
Zang, Tuo [1 ]
Wang, Chenwei [1 ]
Lehman, Melanie L. [1 ,5 ]
Swinnen, Johan, V [4 ]
Blanksby, Stephen J. [3 ]
Nelson, Colleen C. [1 ]
Sadowski, Martin C. [1 ,2 ]
机构
[1] Queensland Univ Technol QUT, Australian Prostate Canc Res Ctr Queensland, Inst Hlth & Biomed Innovat, Sch Biomed Sci,Fac Hlth,Princess Alexandra Hosp,T, Brisbane, Qld, Australia
[2] Queensland Univ Technol QUT, Inst Hlth & Biomed Innovat, Canc & Ageing Res Program, Translat Res Inst,Sch Biomed Sci,Fac Hlth, Brisbane, Qld, Australia
[3] Queensland Univ Technol, Inst Future Environm, Cent Analyt Res Facil, Brisbane, Qld, Australia
[4] KU Leuven Univ Leuven, Dept Oncol, Lab Lipid Metab & Canc, LKI Leuven Canc Inst, Leuven, Belgium
[5] Univ British Columbia, Vancouver Prostate Ctr, Dept Urol Sci, Vancouver, BC, Canada
关键词
Therapy resistance; Multidrug tolerance; Metabolic reprograming; Lipid remodeling; Lipid uptake; Ferroptosis; GPX4; Prostate cancer; CELL-SURVIVAL; CHOLESTEROL TRAFFICKING; ANDROGEN-DEPRIVATION; MOLECULAR-MECHANISMS; CASTRATION; PROGRESSION; STEROIDOGENESIS; RECEPTOR; DESATURATION; RESISTANCE;
D O I
10.1186/s40170-020-00217-6
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background Metabolic reprograming, non-mutational epigenetic changes, increased cell plasticity, and multidrug tolerance are early hallmarks of therapy resistance in cancer. In this temporary, therapy-tolerant state, cancer cells are highly sensitive to ferroptosis, a form of regulated cell death that is caused by oxidative stress through excess levels of iron-dependent peroxidation of polyunsaturated fatty acids (PUFA). However, mechanisms underpinning therapy-induced ferroptosis hypersensitivity remain to be elucidated. Methods We used quantitative single-cell imaging of fluorescent metabolic probes, transcriptomics, proteomics, and lipidomics to perform a longitudinal analysis of the adaptive response to androgen receptor-targeted therapies (androgen deprivation and enzalutamide) in prostate cancer (PCa). Results We discovered that cessation of cell proliferation and a robust reduction in bioenergetic processes were associated with multidrug tolerance and a strong accumulation of lipids. The gain in lipid biomass was fueled by enhanced lipid uptake through cargo non-selective (macropinocytosis, tunneling nanotubes) and cargo-selective mechanisms (lipid transporters), whereas de novo lipid synthesis was strongly reduced. Enzalutamide induced extensive lipid remodeling of all major phospholipid classes at the expense of storage lipids, leading to increased desaturation and acyl chain length of membrane lipids. The rise in membrane PUFA levels enhanced membrane fluidity and lipid peroxidation, causing hypersensitivity to glutathione peroxidase (GPX4) inhibition and ferroptosis. Combination treatments against AR and fatty acid desaturation, lipase activities, or growth medium supplementation with antioxidants or PUFAs altered GPX4 dependence. Conclusions Our work provides mechanistic insight into processes of lipid metabolism that underpin the acquisition of therapy-induced GPX4 dependence and ferroptosis hypersensitivity to standard of care therapies in PCa. It demonstrates novel strategies to suppress the therapy-tolerant state that may have potential to delay and combat resistance to androgen receptor-targeted therapies, a currently unmet clinical challenge of advanced PCa. Since enhanced GPX4 dependence is an adaptive phenotype shared by several types of cancer in response to different therapies, our work might have universal implications for our understanding of metabolic events that underpin resistance to cancer therapies.
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页数:21
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