Hesperetin promotes bladder cancer cells death via the PI3K/AKT pathway by network pharmacology and molecular docking
Yue Lv1,2, Zhonghao Liu1,2, Leihong Deng3
1Department of Urology, The First Affiliated Hospital of Harbin Medical University, 23 Postal Street, Harbin, 150000, Heilongjiang, China.
Abstract:
Patients with bladder cancer (BLCA) still show high recurrence after surgery and chemotherapy. Hesperetin (HE), as a natural compound, has attracted researchers' attention due to its low toxicity and easy access. However, the inhibitory effect of HE on BLCA remains unknown. The hub genes and enrichment pathways regulated by HE in the treatment of BLCA were predicted by network pharmacology. The molecular docking of HE and hub proteins was visualized. Colony and CCK8 assays were used to test cell proliferation, and BLCA migration was confirmed by transwell and wound healing assays. In addition, the occurrence of apoptosis and ferroptosis was demonstrated by Hoechst staining, transmission electron microscopy (TEM) and ROS (reactive oxygen species) assay. Western Blotting was performed to validate the hub proteins, target functions and pathways. SRC, PIK3R1 and MAPK1 were identified as hub targets for HE in BLCA, involving the PI3k/AKT pathway. Furthermore, HE inhibited the proliferation and migration of BLCA cells. The MMP2/MMP9 proteins were significantly inhibited by HE. The increased expression of Bax and cleaved caspase-3 indicated that HE could promote BLCA cell apoptosis. In addition, Hoechst staining revealed concentrated and illuminated apoptotic nuclei. The activation of ROS and the decline of GPX4 expression suggested that HE might induce ferroptosis as an anti-BLCA process. Shrunk mitochondria and apoptotic bodies were observed in BLCA cells treated with HE, with reduced or absent mitochondrial cristae. We propose for the first time that HE could inhibit the proliferation and migration of BLCA cells and promote apoptosis and ferroptosis. HE may act by targeting proteins such as SRC, PIK3R1 and MAPK1 and the PI3K/AKT pathway.
Insights
Hesperetin (HE) shows potential against bladder cancer (BLCA) by inhibiting cell proliferation and migration. This natural compound promotes apoptosis and ferroptosis, offering a novel therapeutic avenue for BLCA treatment.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Bladder cancer (BLCA) exhibits high recurrence rates post-treatment.
- Hesperetin (HE), a natural compound, is accessible and has low toxicity.
- The anti-BLCA effects of HE are not yet understood.
Purpose of the Study:
- To investigate the inhibitory effects of Hesperetin on bladder cancer.
- To identify key genes and pathways targeted by HE in BLCA treatment.
- To explore the mechanisms of HE-induced cell death in BLCA.
Main Methods:
- Network pharmacology for predicting hub genes and pathways.
- Molecular docking to visualize HE-protein interactions.
- In vitro assays (CCK8, colony formation, Transwell, wound healing) for proliferation and migration.
- Apoptosis and ferroptosis assays (Hoechst staining, TEM, ROS, Western Blotting).
Main Results:
- SRC, PIK3R1, and MAPK1 identified as hub targets, implicating the PI3K/AKT pathway.
- HE significantly inhibited BLCA cell proliferation and migration.
- HE promoted apoptosis (increased Bax, cleaved caspase-3) and ferroptosis (increased ROS, decreased GPX4).
- HE suppressed MMP2/MMP9 expression.
Conclusions:
- Hesperetin effectively inhibits bladder cancer cell proliferation and migration.
- HE induces apoptosis and ferroptosis in BLCA cells via specific molecular targets.
- HE presents a promising natural compound for bladder cancer therapy, targeting SRC, PIK3R1, MAPK1, and the PI3K/AKT pathway.
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