Gambogenic acid inhibits proliferation and ferroptosis by targeting the miR‐1291/FOXA2 and AMPKα/SLC7A11/GPX4 axis in colorectal cancer

Author:

Ma Xiaoqi1ORCID,Xu Midie234,Zhang Xing1,Wang Xin2,Su Kexin1,Xu Zihang5,Wang Xiaoyu16,Yang Yifu1

Affiliation:

1. Experiment Center for Science and Technology Shanghai University of Traditional Chinese Medicine Shanghai P.R. China

2. Department of Pathology Fudan University Shanghai Cancer Center Shanghai P.R. China

3. Department of Medical Oncology, Shanghai Medical College Fudan University Shanghai P.R. China

4. Institute of Pathology Fudan University Shanghai P.R. China

5. School of Basic Medical Science Shanghai University of Traditional Chinese Medicine Shanghai P.R. China

6. State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica Chinese Academy of Sciences Shanghai P.R. China

Abstract

AbstractThe present study aims to investigate the mechanism of the nature compound gambogenic acid (GNA) on the apoptosis and ferroptosis in colorectal cancer (CRC). The effect of GNA on the proliferation of CRC cell lines were detected by MTT and clonogenic assay. The xenograft tumor model was established, and the inhibition effect of GNA were evaluated by observing the tumor growth. The endoplasmic reticulum (ER) of HCT116 was observed by using the ER tracker. The TargrtScan database was used to predict the miRNA binding sites. The level of miRNA with GNA treatment was explored by real‐time quantitative PCR. The effect of ferroptosis were evaluated by detect the expression of reactive oxygen species (ROS), intracellular ferrous iron (Fe2+), malondialdehyde (MDA), glutathione (GSH), subunit solute carrier family 7 member 11 (SLC7A11), glutathione peroxidase (GPX)4, transferrin, and ferritin by Western blot. GNA isolated from gamboge can inhibit the growth and proliferation of CRC cell lines in a concentration‐dependent manner. GNA activated ER stress by upregulating miR‐1291, and miR‐1291 targeted the forkhead box protein A2 (FOXA2). GNA also induced ROS production and mediated the Fenton reaction by activating transferrin to increase Fe2+, thus inducing ferroptosis. In addition, GNA could induce ferroptosis through the depletion of GSH and GPX4. Furthermore, GNA treatment regulated iron metabolism by activating AMPKα/SLC7A11/GPX4 signaling. In conclusion, GNA activated ER stress via miR‐1291 and induced ferroptosis in CRC cells and might be a new inducer of ferroptosis, which can expand the efficacy of chemotherapy drugs.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai

Publisher

Wiley

Subject

Cell Biology,General Medicine

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