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Published on: July 20, 2014
A novel E2F/sphingosine kinase 1 axis regulates anthracycline response in squamous cell carcinoma
Mehlika Hazar-Rethinam1, Lilia Merida de Long1, Orla M Gannon1
1Epithelial Pathobiology Group, University of Queensland Diamantina Institute, Princess Alexandra Hospital, Translational Research Institute, Woolloongabba, Queensland, Australia.
Purpose:
Head and neck squamous cell carcinomas (HNSCC) are frequently drug resistant and have a mortality rate of 45%. We have previously shown that E2F7 may contribute to drug resistance in SCC cells. However, the mechanism and pathways involved remain unknown.
Experimental Design:
We used transcriptomic profiling to identify candidate pathways that may contribute to E2F7-dependent resistance to anthracyclines. We then manipulated the activity/expression of the candidate pathway using overexpression, knockdown, and pharmacological inhibitors in in vitro and in vivo models of SCC to demonstrate causality. In addition, we examined the expression of E2F7 and a downstream effector in a tissue microarray (TMA) generated from HNSCC patient samples.
Results:
E2F7-deficient keratinocytes were selectively sensitive to doxorubicin and this was reversed by overexpressing E2F7. Transcriptomic profiling identified Sphingosine kinase 1 (Sphk1) as a potential mediator of E2F7-dependent drug resistance. Knockdown and overexpression studies revealed that Sphk1 was a downstream target of E2F7. TMA studies showed that E2F7 overexpression correlated with Sphk1 overexpression in human HNSCC. Moreover, inhibition of Sphk1 by shRNA or the Sphk1-specific inhibitor, SK1-I (BML-EI411), enhanced the sensitivity of SCC cells to doxorubicin in vitro and in vivo. Furthermore, E2F7-induced doxorubicin resistance was mediated via Sphk1-dependent activation of AKT in vitro and in vivo.
Conclusion:
We identify a novel drugable pathway in which E2F7 directly increases the transcription and activity of the Sphk1/S1P axis resulting in activation of AKT and subsequent drug resistance. Collectively, this novel combinatorial therapy can potentially be trialed in humans using existing agents.
Insights
We found that E2F7 drives drug resistance in head and neck squamous cell carcinoma (HNSCC) by activating the Sphingosine kinase 1 (Sphk1) pathway, which targets AKT. Inhibiting Sphk1 may restore sensitivity to chemotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Head and neck squamous cell carcinomas (HNSCC) exhibit significant drug resistance, contributing to a high mortality rate.
- Previous research suggests a role for E2F7 in chemoresistance within squamous cell carcinoma (SCC) cells, but the underlying mechanisms are unclear.
Purpose of the Study:
- To elucidate the molecular pathways mediating E2F7-dependent drug resistance in HNSCC.
- To identify potential therapeutic targets for overcoming chemoresistance in HNSCC.
Main Methods:
- Transcriptomic profiling to identify E2F7-regulated pathways involved in anthracycline resistance.
- In vitro and in vivo manipulation of candidate pathway components (overexpression, knockdown, inhibitors) in SCC models.
- Analysis of E2F7 and downstream effector expression in HNSCC patient tissue microarrays (TMAs).
Main Results:
- E2F7 deficiency sensitized SCC cells to doxorubicin; E2F7 overexpression reversed this sensitivity.
- Transcriptomic analysis identified Sphingosine kinase 1 (Sphk1) as a key mediator of E2F7-dependent drug resistance.
- E2F7 directly upregulates Sphk1, leading to AKT activation and subsequent doxorubicin resistance.
- Sphk1 inhibition (shRNA or SK1-I) restored doxorubicin sensitivity in vitro and in vivo.
- E2F7 and Sphk1 overexpression positively correlated in HNSCC patient samples.
Conclusions:
- A novel E2F7-Sphk1-AKT signaling axis drives chemoresistance in HNSCC.
- Targeting the Sphk1/S1P axis presents a potential therapeutic strategy to enhance chemotherapy efficacy in HNSCC.
- This pathway offers a druggable target for novel combinatorial therapies in HNSCC patients.
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