YTHDC1‐dependent m6A modification modulated FOXM1 promotes glycolysis and tumor progression through CENPA in triple‐negative breast cancer

Author:

Shen Xi1ORCID,Zhong Jianxin2ORCID,Yu Pan3,Liu Feng4ORCID,Peng Haoran5ORCID,Chen Nianyong67ORCID

Affiliation:

1. Department of Oncology, The Eighth Affiliated Hospital Sun Yat‐sen University Shenzhen China

2. Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education), Department of Breast Oncology Peking University Cancer Hospital & Institute Beijing China

3. Department of Health Management The Second Hospital Affiliated to Chongqing Medical University Chongqing China

4. Department of Thyroid and Breast Surgery Wuhan Fourth Hospital Wuhan China

5. Department of Stomatology, Shenzhen Hospital University of Chinese Academy of Sciences Shenzhen China

6. Department of Radiation Oncology, Cancer Center, West China Hospital Sichuan University Chengdu China

7. Division of Head & Neck Tumor Multimodality Treatment, Cancer Center, West China Hospital Sichuan University Chengdu China

Abstract

AbstractTriple‐negative breast cancer (TNBC) exhibits heightened aggressiveness compared with other breast cancer (BC) subtypes, with earlier relapse, a higher risk of distant metastasis, and a worse prognosis. Transcription factors play a pivotal role in various cancers. Here, we found that factor forkhead box M1 (FOXM1) expression was significantly higher in TNBC than in other BC subtypes and normal tissues. Combining the findings of Gene Ontology (GO) enrichment analysis and a series of experiments, we found that knockdown of the FOXM1 gene attenuated the ability of TNBC cells to proliferate and metastasize both in vivo and in vitro. In addition, Spearman's test showed that FOXM1 significantly correlated with glycolysis‐related genes, especially centromere protein A (CENPA) in datasets (GSE76250, GSE76124, GSE206912, and GSE103091). The effect of silencing FOXM1 on the inhibition of CENPA expression, TNBC proliferation, migration, and glycolysis could be recovered by overexpression of CENPA. According to MeRIP, the level of m6A modification on FOMX1 decreased in cells treated with cycloleucine (a m6A inhibitor) compared with that in the control group. The increase in FOXM1 expression caused by YTHDC1 overexpression could be reversed by the m6A inhibitor, which indicated that YTHDC1 enhanced FOXM1 expression depending on m6A modification. Therefore, we concluded that the YTHDC1‐m6A modification/FOXM1/CENPA axis plays an important role in TNBC progression and glycolysis.

Publisher

Wiley

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