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Published on: January 22, 2019
Cytotoxic sigma-2 ligands trigger cancer cell death via cholesterol-induced-ER-stress
Rony Takchi1, Bethany C Prudner2, Qingqing Gong1
1Department of Surgery, Washington University School of Medicine, St. Louis, MO, USA.
Abstract:
Sigma-2-ligands (S2L) are characterized by high binding affinities to their cognate sigma-2 receptor, overexpressed in rapidly proliferating tumor cells. As such, S2L were developed as imaging probes (ISO1) or as cancer therapeutics, alone (SV119 [C6], SW43 [C10]) and as delivery vehicles for cytotoxic drug cargoes (C6-Erastin, C10-SMAC). However, the exact mechanism of S2L-induced cytotoxicity remains to be fully elucidated. A series of high-affinity S2L were evaluated regarding their cytotoxicity profiles across cancer cell lines. While C6 and C10 displayed distinct cytotoxicities, C0 and ISO1 were essentially non-toxic. Confocal microscopy and lipidomics analysis in cellular and mouse models revealed that C10 induced increases in intralysosomal free cholesterol and in cholesterol esters, suggestive of unaltered intracellular cholesterol trafficking. Cytotoxicity was caused by cholesterol excess, a phenomenon that contrasts the effects of NPC1 inhibition. RNA-sequencing revealed gene clusters involved in cholesterol homeostasis and ER stress response exclusively by cytotoxic S2L. ER stress markers were confirmed by qPCR and their targeted modulation inhibited or enhanced cytotoxicity of C10 in a predicted manner. Moreover, C10 increased sterol regulatory element-binding protein 2 (SREBP2) and low-density lipoprotein receptor (LDLR), both found to be pro-survival factors activated by ER stress. Furthermore, inhibition of downstream processes of the adaptive response to S2L with simvastatin resulted in synergistic treatment outcomes in combination with C10. Of note, the S2L conjugates retained the ER stress response of the parental ligands, indicative of cholesterol homeostasis being involved in the overall cytotoxicity of the drug conjugates. Based on these findings, we conclude that S2L-mediated cell death is due to free cholesterol accumulation that leads to ER stress. Consequently, the cytotoxic profiles of S2L drug conjugates are proposed to be enhanced via concurrent ER stress inducers or simvastatin, strategies that could be instrumental on the path toward tumor eradication.
Insights
Sigma-2-ligands (S2L) cause cancer cell death by accumulating cholesterol, leading to ER stress. Combining S2L with simvastatin or ER stress inducers may enhance anti-tumor efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Sigma-2-ligands (S2L) target the sigma-2 receptor, overexpressed in tumors.
- S2L are explored as imaging probes and cancer therapeutics, including drug conjugates.
- The precise mechanism of S2L-induced cancer cell death is not fully understood.
Purpose of the Study:
- To elucidate the mechanism of cytotoxicity induced by sigma-2-ligands (S2L).
- To investigate the role of cholesterol homeostasis and ER stress in S2L-mediated cell death.
- To explore combination strategies for enhancing S2L anti-cancer effects.
Main Methods:
- Cytotoxicity profiling of S2L across various cancer cell lines.
- Confocal microscopy and lipidomics to analyze intracellular cholesterol.
- RNA-sequencing and qPCR to assess gene expression and ER stress markers.
- Inhibition of adaptive responses with simvastatin.
Main Results:
- Cytotoxic S2L (C6, C10) increased intracellular free cholesterol and cholesterol esters.
- Cholesterol accumulation, not NPC1 inhibition, caused cytotoxicity.
- Cytotoxic S2L specifically induced gene clusters related to cholesterol homeostasis and ER stress.
- ER stress markers correlated with cytotoxicity; simvastatin showed synergistic effects.
- S2L conjugates retained ER stress-inducing properties.
Conclusions:
- S2L-mediated cancer cell death results from free cholesterol accumulation triggering ER stress.
- Targeting cholesterol homeostasis and ER stress pathways offers a novel therapeutic strategy.
- Combination therapies involving S2L with ER stress inducers or simvastatin show promise for tumor eradication.
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