CENPF knockdown inhibits adriamycin chemoresistance in triple-negative breast cancer via the Rb-E2F1 axis

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作者
Depeng Wang
Wei Xu
Minghua Huang
Wei Ma
Yulu Liu
Xingchen Zhou
Qingrui Yang
Kun Mu
机构
[1] Shandong University,Department of Pathology, School of Basic Medical Sciences
[2] Shandong University,Department of Rheumatology and Immunology, Shandong Provincial Hospital
[3] First Affiliated Hospital of Weifang Medical University (Weifang People’s Hospital),Pathology Department
[4] Shandong University,Department of Respiratory Medicine, Shandong Provincial Third Hospital
[5] The Second Hospital of Shandong University,Department of Pathology
[6] Shandong Provincial Hospital Affiliated to Shandong First Medical University,Department of Rheumatology and Immunology
[7] Qilu Hospital of Shandong University,Department of Pathology
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Drug resistance occurs frequently in triple-negative breast cancer (TNBC) and leads to early relapse and short survival. Targeting the DNA damage response (DDR) has become an effective strategy for overcoming TNBC chemoresistance. CENPF (centromere protein) is a key regulator of cell cycle progression, but its role in TNBC chemotherapy resistance remains unclear. Here, we found that CENPF, which is highly expressed in TNBC, is associated with a poor prognosis in patients receiving chemotherapy. In addition, in vitro CENPF knockdown significantly increased adriamycin (ADR)-induced cytotoxicity in MDA-MB-231 cells and ADR-resistant cells (MDA-MB-231/ADR). Then, we demonstrated that CENPF targets Chk1-mediated G2/M phase arrest and binds to Rb to compete with E2F1 in TNBC. Considering the crucial role of E2F1 in the DNA damage response and DNA repair, a novel mechanism by which CENPF regulates the Rb-E2F1 axis will provide new horizons to overcome chemotherapy resistance in TNBC.
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