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Differentiation of the SH-SY5Y Human Neuroblastoma Cell Line
Published on: February 17, 2016
Enhancing Retinoic Acid-mediated Effects Through Inhibition of CYP26A1, CYP26B1 and HGF Signaling in Neuroblastoma
Reema Sami Issa1, Meike Kaehler1, Nina Sophie Pommert1
1Institute of Experimental and Clinical Pharmacology, University Hospital Schleswig-Holstein, Kiel, Germany.
Background/Aim:
Retinoic acid (RA) induces tumor cell differentiation in diseases like acute promyelocytic leukemia or high-risk neuroblastoma. However, the formation of resistant cells, which results from dysregulation of different signaling pathways, limits therapy success. The present study aimed to characterize basic regulatory processes induced by the application of RA in human neuroblastoma cells, to identify therapeutic targets independent of the often amplified oncogene MYCN.
Materials And Methods:
In MYCN-amplified Kelly and MYCN non-amplified SH-SY5Y cells, different assays were employed to quantify the viability and cytotoxicity, while RA-mediated expression changes were examined using genome-wide gene expression analysis followed by quantitative PCR. Enzyme-linked immunoabsorbent assays (ELISA) and western blots were used to determine the levels or activation of the examined proteins.
Results:
In Kelly cells, treatment with 5 μM RA for 3 days significantly reduced the cell number due to attenuated proliferation, while SH-SY5Y cells were less responsive. An up-regulation of the RA-metabolizing enzymes CYP26A1 and CYP26B1 was observed in both cell lines, and co-treatment with the selective CYP26 inhibitor talarozole markedly decreased cell viability. When RA and ketoconazole, which inhibits CYP26 as well as RA-degrading CYP3A enzymes, were co-administered, not only cell survival was impaired in both cell lines, but also the release of hepatocyte growth factor (HGF). Accordingly, co-application of the c-Met inhibitor tepotinib and RA or ketoconazole substantially decreased cell viability.
Conclusion:
Independent of MYCN amplification, inhibitors of RA metabolism or HGF signaling might prevent the emergence of RA-resistant neuroblastoma cells when co-applied with RA.
Insights
Retinoic acid (RA) can treat neuroblastoma, but resistance develops. Inhibiting RA metabolism or HGF signaling alongside RA may overcome resistance in neuroblastoma cells.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Retinoic acid (RA) is a differentiation-inducing agent for cancers like acute promyelocytic leukemia and neuroblastoma.
- Therapeutic success is limited by the emergence of RA-resistant cells due to dysregulated signaling pathways.
- Identifying MYCN-independent therapeutic targets is crucial for effective neuroblastoma treatment.
Purpose of the Study:
- To investigate regulatory processes induced by RA in human neuroblastoma cells.
- To identify potential therapeutic targets that are independent of MYCN amplification.
- To understand mechanisms of RA resistance in neuroblastoma.
Main Methods:
- Utilized MYCN-amplified (Kelly) and non-amplified (SH-SY5Y) neuroblastoma cell lines.
- Assessed cell viability and cytotoxicity using various assays.
- Analyzed RA-mediated gene expression changes via genome-wide analysis and qPCR.
- Quantified protein levels and activation using ELISA and Western blots.
Main Results:
- RA (5 μM) reduced proliferation in Kelly cells but had less effect on SH-SY5Y cells.
- RA treatment upregulated RA-metabolizing enzymes CYP26A1 and CYP26B1 in both cell lines.
- Co-treatment with CYP26 inhibitor talarozole or ketoconazole (inhibiting CYP26/CYP3A) impaired cell survival and reduced hepatocyte growth factor (HGF) release.
- Combined RA or ketoconazole with c-Met inhibitor tepotinib significantly decreased cell viability.
Conclusions:
- Inhibitors of RA metabolism can enhance RA efficacy in neuroblastoma.
- Targeting HGF signaling in conjunction with RA may prevent RA resistance.
- These strategies offer potential therapeutic avenues independent of MYCN amplification in neuroblastoma.

