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Published on: February 9, 2021
Ceramide Synthase 6 Is a Novel Target of Methotrexate Mediating Its Antiproliferative Effect in a p53-Dependent
Baharan Fekry1, Amin Esmaeilniakooshkghazi1, Sergey A Krupenko1,2
1Nutrition Research Institute, UNC Chapel Hill, Kannapolis, NC, United States of America.
Abstract:
We previously reported that ceramide synthase 6 (CerS6) is elevated in response to folate stress in cancer cells, leading to enhanced production of C16-ceramide and apoptosis. Antifolate methotrexate (MTX), a drug commonly used in chemotherapy of several types of cancer, is a strong inhibitor of folate metabolism. Here we investigated whether this drug targets CerS6. We observed that CerS6 protein was markedly elevated in several cancer cell lines treated with MTX. In agreement with the enzyme elevation, its product C16-ceramide was also strongly elevated, so as several other ceramide species. The increase in C16-ceramide, however, was eliminated in MTX-treated cells lacking CerS6 through siRNA silencing, while the increase in other ceramides sustained. Furthermore, the siRNA silencing of CerS6 robustly protected A549 lung adenocarcinoma cells from MTX toxicity, while the silencing of another ceramide synthase, CerS4, which was also responsive to folate stress in our previous study, did not interfere with the MTX effect. The rescue effect of CerS6 silencing upon MTX treatment was further confirmed in HCT116 and HepG2 cell lines. Interestingly, CerS6 itself, but not CerS4, induced strong antiproliferative effect in several cancer cell lines if elevated by transient transfection. The effect of MTX on CerS6 elevation was likely p53 dependent, which is in agreement with the hypothesis that the protein is a transcriptional target of p53. In line with this notion, lometrexol, the antifolate inducing cytotoxicity through the p53-independent mechanism, did not affect CerS6 levels. We have also found that MTX induces the formation of ER aggregates, enriched with CerS6 protein. We further demonstrated that such aggregation requires CerS6 and suggests that it is an indication of ER stress. Overall, our study identified CerS6 and ceramide pathways as a novel MTX target.
Insights
Methotrexate (MTX) chemotherapy drug elevates ceramide synthase 6 (CerS6) in cancer cells, increasing C16-ceramide production. Silencing CerS6 protects cells from MTX toxicity, identifying CerS6 as a novel drug target.
Area of Science:
- Biochemistry
- Cancer Biology
- Pharmacology
Background:
- Ceramide synthase 6 (CerS6) is upregulated by folate stress in cancer cells, promoting C16-ceramide production and apoptosis.
- Methotrexate (MTX), a chemotherapy agent, inhibits folate metabolism and is used to treat various cancers.
Purpose of the Study:
- To investigate if MTX targets CerS6 in cancer cells.
- To determine the role of CerS6 in MTX-induced cytotoxicity and cellular stress.
Main Methods:
- Cancer cell lines were treated with MTX.
- CerS6 expression and C16-ceramide levels were analyzed.
- siRNA was used to silence CerS6 and CerS4 expression.
- Cell viability assays were performed.
- p53 dependency was assessed using lometrexol.
- Endoplasmic reticulum (ER) stress markers and protein aggregation were examined.
Main Results:
- MTX treatment significantly increased CerS6 protein and C16-ceramide levels in multiple cancer cell lines.
- siRNA-mediated silencing of CerS6 protected cancer cells from MTX-induced toxicity.
- CerS6 silencing did not affect other ceramide species, while CerS4 silencing had no impact on MTX efficacy.
- Elevated CerS6 expression alone exhibited antiproliferative effects.
- MTX-induced CerS6 elevation was p53-dependent, unlike the p53-independent effects of lometrexol.
- MTX treatment led to ER aggregates enriched with CerS6, indicating ER stress.
Conclusions:
- The study identifies CerS6 and associated ceramide pathways as novel targets of MTX.
- CerS6 plays a critical role in mediating MTX cytotoxicity, likely through p53-dependent mechanisms and ER stress induction.
- Targeting CerS6 may represent a new therapeutic strategy in MTX-based cancer treatment.
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