Downregulation of ceramide synthase 1 promotes oral cancer through endoplasmic reticulum stress

Wen Chen , Chenzhou Wu , Yafei Chen , Yuhao Guo , Ling Qiu , Zhe Liu , Haibin Sun , Siyu Chen , Zijian An , Zhuoyuan Zhang , Yi Li , Longjiang Li

International Journal of Oral Science ›› 2021, Vol. 13 ›› Issue (1) : 10

PDF
International Journal of Oral Science ›› 2021, Vol. 13 ›› Issue (1) : 10 DOI: 10.1038/s41368-021-00118-4
Article

Downregulation of ceramide synthase 1 promotes oral cancer through endoplasmic reticulum stress

Author information +
History +
PDF

Abstract

C18 ceramide plays an important role in the occurrence and development of oral squamous cell carcinoma. However, the function of ceramide synthase 1, a key enzyme in C18 ceramide synthesis, in oral squamous cell carcinoma is still unclear. The aim of our study was to investigate the relationship between ceramide synthase 1 and oral cancer. In this study, we found that the expression of ceramide synthase 1 was downregulated in oral cancer tissues and cell lines. In a mouse oral squamous cell carcinoma model induced by 4-nitroquinolin-1-oxide, ceramide synthase 1 knockout was associated with the severity of oral malignant transformation. Immunohistochemical studies showed significant upregulation of PCNA, MMP2, MMP9, and BCL2 expression and downregulation of BAX expression in the pathological hyperplastic area. In addition, ceramide synthase 1 knockdown promoted cell proliferation, migration, and invasion in vitro. Overexpression of CERS1 obtained the opposite effect. Ceramide synthase 1 knockdown caused endoplasmic reticulum stress and induced the VEGFA upregulation. Activating transcription factor 4 is responsible for ceramide synthase 1 knockdown caused VEGFA transcriptional upregulation. In addition, mild endoplasmic reticulum stress caused by ceramide synthase 1 knockdown could induce cisplatin resistance. Taken together, our study suggests that ceramide synthase 1 is downregulated in oral cancer and promotes the aggressiveness of oral squamous cell carcinoma and chemotherapeutic drug resistance.

Cite this article

Download citation ▾
Wen Chen, Chenzhou Wu, Yafei Chen, Yuhao Guo, Ling Qiu, Zhe Liu, Haibin Sun, Siyu Chen, Zijian An, Zhuoyuan Zhang, Yi Li, Longjiang Li. Downregulation of ceramide synthase 1 promotes oral cancer through endoplasmic reticulum stress. International Journal of Oral Science, 2021, 13(1): 10 DOI:10.1038/s41368-021-00118-4

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Ara SA, Ashraf S, Patil BM. Evaluation of serum uric acid levels in patients with oral squamous cell carcinoma. Indian J. Dent. Res, 2016, 27: 178-183.

[2]

Bose P, Brockton NT, Dort JC. Head and neck cancer: from anatomy to biology. Int. J. cancer, 2013, 133: 2013-2023.

[3]

Lin CS, . Tumor volume as an independent predictive factor of worse survival in patients with oral cavity squamous cell carcinoma. Head. neck, 2017, 39: 960-964.

[4]

da Silva SD, . Advances and applications of oral cancer basic research. Oral. Oncol., 2011, 47: 783-791.

[5]

Wen CP, . Cancer risks from betel quid chewing beyond oral cancer: a multiple-site carcinogen when acting with smoking. Cancer Causes Control, 2010, 21: 1427-1435.

[6]

Harvey DJ. Analysis of carbohydrates and glycoconjugates by matrix-assisted laser desorption/ionization mass spectrometry: an update covering the period 2001–2002. Mass Spectrom. Rev., 2008, 27: 125-201.

[7]

Wakita H, . Keratinocyte differentiation is induced by cell-permeant ceramides and its proliferation is promoted by sphingosine. Arch. Dermatol. Res., 1994, 286: 350-354.

[8]

Rodriguez-Lafrasse C, . Temporal relationships between ceramide production, caspase activation and mitochondrial dysfunction in cell lines with varying sensitivity to anti-Fas-induced apoptosis. Biochemical J., 2001, 357: 407-416.

[9]

Meisinger J, . Protein phosphatase-2A association with microtubules and its role in restricting the invasiveness of human head and neck squamous cell carcinoma cells. Cancer Lett., 1997, 111: 87-95.

[10]

Senkal CE, . Potent antitumor activity of a novel cationic pyridinium-ceramide alone or in combination with gemcitabine against human head and neck squamous cell carcinomas in vitro and in vivo. J. Pharmacol. Exp. therapeutics, 2006, 317: 1188-1199.

[11]

Karahatay S, . Clinical relevance of ceramide metabolism in the pathogenesis of human head and neck squamous cell carcinoma (HNSCC): attenuation of C(18)-ceramide in HNSCC tumors correlates with lymphovascular invasion and nodal metastasis. Cancer Lett., 2007, 256: 101-111.

[12]

Koybasi S, . Defects in cell growth regulation by C18:0-ceramide and longevity assurance gene 1 in human head and neck squamous cell carcinomas. J. Biol. Chem., 2004, 279: 44311-44319.

[13]

Senkal CE, Ponnusamy S, Bielawski J, Hannun YA, Ogretmen B. Antiapoptotic roles of ceramide-synthase-6-generated C16-ceramide via selective regulation of the ATF6/CHOP arm of ER-stress-response pathways. FASEB J.: Off. Publ. Federation Am. Societies Exp. Biol., 2010, 24: 296-308.

[14]

Senkal CE, . Role of human longevity assurance gene 1 and C18-ceramide in chemotherapy-induced cell death in human head and neck squamous cell carcinomas. Mol. Cancer Ther., 2007, 6: 712-722.

[15]

Thomas RJ, . HPV/E7 induces chemotherapy-mediated tumor suppression by ceramide-dependent mitophagy. EMBO Mol. Med., 2017, 9: 1030-1051.

[16]

Qiu L, . C6-ceramide induces salivary adenoid cystic carcinoma cell apoptosis via IP3R-activated UPR and UPR-independent pathways. Biochemical biophysical Res. Commun., 2020, 525: 997-1003.

[17]

Mizutani Y, Kihara A, Chiba H, Tojo H, Igarashi Y. 2-Hydroxy-ceramide synthesis by ceramide synthase family: enzymatic basis for the preference of FA chain length. J. Lipid Res., 2008, 49: 2356-2364.

[18]

Vanni N, . Impairment of ceramide synthesis causes a novel progressive myoclonus epilepsy. Ann. Neurol., 2014, 76: 206-212.

[19]

Ferlazzo E, . Autosomal recessive progressive myoclonus epilepsy due to impaired ceramide synthesis. Epileptic Disord.: Int. epilepsy J. videotape, 2016, 18: 120-127.

[20]

Ginkel C, . Ablation of neuronal ceramide synthase 1 in mice decreases ganglioside levels and expression of myelin-associated glycoprotein in oligodendrocytes. J. Biol. Chem., 2012, 287: 41888-41902.

[21]

Wu JS, . Autophagy is positively associated with the accumulation of myeloid‑derived suppressor cells in 4‑nitroquinoline‑1‑oxide‑induced oral cancer. Oncol. Rep., 2018, 40: 3381-3391.

[22]

Masuda Y, Masutani C. Spatiotemporal regulation of PCNA ubiquitination in damage tolerance pathways. Crit. Rev. Biochem. Mol. Biol., 2019, 54: 418-442.

[23]

Maga G, Hubscher U. Proliferating cell nuclear antigen (PCNA): a dancer with many partners. J. Cell Sci., 2003, 116: 3051-3060.

[24]

Chan OTM, . Association of MMP-2, RB and PAI-1 with decreased recurrence-free survival and overall survival in bladder cancer patients. Oncotarget, 2017, 8: 99707-99721.

[25]

Huang T, . Schwann cell-derived CCL2 promotes the perineural invasion of cervical cancer. Front Oncol., 2020, 10: 19.

[26]

Edlich F. BCL-2 proteins and apoptosis: recent insights and unknowns. Biochemical biophysical Res. Commun., 2018, 500: 26-34.

[27]

Zhang H, . Lobaplatin-induced apoptosis requires p53-mediated p38MAPK activation through ROS generation in non-small-cell lung cancer. Front Oncol., 2019, 9: 538.

[28]

Oltvai ZN, Milliman CL, Korsmeyer SJ. Bcl-2 heterodimerizes in vivo with a conserved homolog, Bax, that accelerates programmed cell death. Cell, 1993, 74: 609-619.

[29]

Iida K, Li Y, McGrath BC, Frank A, Cavener DR. PERK eIF2 alpha kinase is required to regulate the viability of the exocrine pancreas in mice. BMC Cell Biol., 2007, 8

[30]

Hanahan D, Weinberg RA. Hallmarks of cancer: the next generation. Cell, 2011, 144: 646-674.

[31]

Potente M, Gerhardt H, Carmeliet P. Basic and therapeutic aspects of angiogenesis. Cell, 2011, 146: 873-887.

[32]

Andersen S, . Prognostic impacts of angiopoietins in NSCLC tumor cells and stroma: VEGF-A impact is strongly associated with Ang-2. PloS ONE, 2011, 6

[33]

Ghosh R, . Transcriptional regulation of VEGF-A by the unfolded protein response pathway. PloS ONE, 2010, 5

[34]

Chen, S. H. & Chang, J. Y. New Insights into Mechanisms of Cisplatin Resistance: from tumor cell to microenvironment. Int. J. Mol. Sci. 20, https://doi.org/10.3390/ijms20174136 (2019).

[35]

Min J, . (Dihydro)ceramide synthase 1 regulated sensitivity to cisplatin is associated with the activation of p38 mitogen-activated protein kinase and is abrogated by sphingosine kinase 1. Mol. Cancer Res.: MCR, 2007, 5: 801-812.

[36]

Wang X, . ER stress modulates cellular metabolism. Biochemical J., 2011, 435: 285-296.

[37]

Koc M, . Stress of endoplasmic reticulum modulates differentiation and lipogenesis of human adipocytes. Biochemical biophysical Res. Commun., 2015, 460: 684-690.

[38]

Oslowski CM, Urano F, Measuring ER. Stress and the unfolded protein response using mammalian tissue culture system. Methods Enzymol., 2011, 490: 71-92.

[39]

Brüsehafer K, . The clastogenicity of 4NQO is cell-type dependent and linked to cytotoxicity, length of exposure and p53 proficiency. Mutagenesis, 2016, 31: 171-180.

[40]

de Visscher SA, . Localization of liposomal mTHPC formulations within normal epithelium, dysplastic tissue, and carcinoma of oral epithelium in the 4NQO-carcinogenesis rat model. Lasers Surg. Med., 2013, 45: 668-678.

[41]

Wang Z, . Overexpression of ceramide synthase 1 increases C18-ceramide and leads to lethal autophagy in human glioma. Oncotarget, 2017, 8: 104022-104036.

[42]

Stiban J, Tidhar R, Futerman AH. Ceramide synthases: roles in cell physiology and signaling. Adv. Exp. Med. Biol., 2010, 688: 60-71.

[43]

Venkataraman K, . Upstream of growth and differentiation factor 1 (uog1), a mammalian homolog of the yeast longevity assurance gene 1 (LAG1), regulatesn-stearoyl-sphinganine (C18-(Dihydro)ceramide) synthesis in a fumonisin B1-independent manner in mammalian cells. J. Biol. Chem., 2002, 277: 35642-35649.

[44]

Kim HJ, Oh JE, Kim SW, Chun YJ, Kim MY. Ceramide induces p38 MAPK-dependent apoptosis and Bax translocation via inhibition of Akt in HL-60 cells. Cancer Lett., 2008, 260: 88-95.

[45]

Bourbon NA, Sandirasegarane L, Kester M. Ceramide-induced inhibition of Akt is mediated through protein kinase Czeta: implications for growth arrest. J. Biol. Chem., 2002, 277: 3286-3292.

[46]

Tsuruta F, . JNK promotes Bax translocation to mitochondria through phosphorylation of 14-3-3 proteins. EMBO J., 2004, 23: 1889-1899.

[47]

Dobson CM. Protein folding and misfolding. Nature, 2003, 426: 884-890.

[48]

Bertolotti A, Zhang Y, Hendershot LM, Harding HP, Ron D. Dynamic interaction of BiP and ER stress transducers in the unfolded-protein response. Nat. Cell Biol., 2000, 2: 326-332.

[49]

Nishitoh H. CHOP is a multifunctional transcription factor in the ER stress response. J. Biochem., 2012, 151: 217-219.

[50]

Harding HP, Zhang Y, Bertolotti A, Zeng H, Ron D. Perk is essential for translational regulation and cell survival during the unfolded protein response. Mol. Cell, 2000, 5: 897-904.

[51]

Afonyushkin T, . Oxidized phospholipids regulate expression of ATF4 and VEGF in endothelial cells via NRF2-dependent mechanism: novel point of convergence between electrophilic and unfolded protein stress pathways. Arterioscler Thromb. Vasc. Biol., 2010, 30: 1007-1013.

[52]

Gencer EB, Ural AU, Avcu F, Baran Y. A novel mechanism of dasatinib-induced apoptosis in chronic myeloid leukemia; ceramide synthase and ceramide clearance genes. Ann. Hematol., 2011, 90: 1265-1275.

[53]

Shore GC, Papa FR, Oakes SA. Signaling cell death from the endoplasmic reticulum stress response. Curr. Opin. Cell Biol., 2011, 23: 143-149.

[54]

Ma M, . Low dose tunicamycin enhances atherosclerotic plaque stability by inducing autophagy. Biochemical Pharmacol., 2016, 100: 51-60.

AI Summary AI Mindmap
PDF

161

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/