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Author Spotlight: Exploring Salidroside's Molecular Mechanisms in Breast Cancer Treatment
Published on: June 9, 2023
Pterostilbene-isothiocyanate inhibits breast cancer metastasis by selectively blocking IKK-β/NEMO interaction in
Viney Kumar1, Swati Haldar1, Neeladri Singha Das1
1Molecular Endocrinology Laboratory, Department of Biosciences and Bioengineering, Indian Institute of Technology Roorkee, Uttarakhand 247667, India.
Abstract:
Metastasis, the main cause of breast cancer-associated fatalities, relies on many regular pathways involved in normal cell physiology and metabolism, thus, making it challenging to identify disease-specific therapeutic target(s). Chemically synthesized anti-metastatic agents are preferred for their fast and robust actions. However, these agents have adverse side effects, thus, increasingly favouring the identification of phytocompounds as suitable alternatives. Resveratrol and pterostilbene have long been established as potent anti-cancer agents. Earlier studies from our laboratory documented the anti-cancer activities associated with pterostilbene-isothiocyanate (PTER-ITC), a derivative of pterostilbene. The current study focuses on evaluating the anti-metastatic property of PTER-ITC and the underlying mechanism, by employing in silico, in vitro, and in vivo approaches. The significant anti-metastatic activity of PTER-ITC was observed in vitro against breast cancer metastatic cell line (MDA-MB-231) and in vivo in the 4T1 cell-induced metastatic mice model. Epithelial-mesenchymal transition (EMT), a hallmark of metastasis regulated by the transcription factors, Snail1 and Twist, was found to be reverted in vitro by PTER-ITC treatment. PTER-ITC blocked the activation of NF-κB/p65 and its concomitant nuclear translocation, resulting in the transcriptional repression of its target genes, Snail1 and Twist. PTER-ITC prevented the formation of IKK complex, central to NF-κB activation, by binding to the NEMO-binding domain (NBD) of IKK-β and inhibiting its interaction with NEMO (NF-κB essential modulator). According to our observations, PTER-ITC attenuated NF-κB activation selectively in cancerous cells. In conclusion, this study demonstrated that PTER-ITC is a potent anti-metastatic agent capable of targeting physiologically important pathways in a cancer-specific manner.
Insights
Pterostilbene-isothiocyanate (PTER-ITC) effectively inhibits breast cancer metastasis by targeting the NF-κB pathway. This novel phytocompound shows promise as a cancer-specific anti-metastatic agent, offering a safer alternative to synthetic drugs.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Metastasis is the primary cause of breast cancer mortality, posing a challenge for targeted therapies due to its reliance on normal cellular pathways.
- While synthetic anti-metastatic agents exist, their adverse effects drive interest in natural phytocompounds as safer alternatives.
- Pterostilbene derivatives, like pterostilbene-isothiocyanate (PTER-ITC), have shown prior anti-cancer potential.
Purpose of the Study:
- To evaluate the anti-metastatic efficacy of pterostilbene-isothiocyanate (PTER-ITC) in breast cancer.
- To elucidate the underlying molecular mechanisms of PTER-ITC's anti-metastatic action.
- To assess PTER-ITC's potential as a cancer-specific therapeutic agent.
Main Methods:
- In silico, in vitro, and in vivo experimental approaches were utilized.
- Breast cancer cell lines (MDA-MB-231) and a 4T1 cell-induced metastatic mouse model were employed.
- Mechanisms investigated included epithelial-mesenchymal transition (EMT) and the NF-κB signaling pathway.
Main Results:
- PTER-ITC demonstrated significant in vitro and in vivo anti-metastatic activity.
- PTER-ITC treatment reverted epithelial-mesenchymal transition (EMT) by inhibiting Snail1 and Twist transcription factors.
- PTER-ITC selectively inhibited NF-κB/p65 activation and nuclear translocation by binding to IKK-β, thus repressing target gene expression.
Conclusions:
- PTER-ITC exhibits potent anti-metastatic properties against breast cancer.
- The compound selectively targets and inhibits the NF-κB signaling pathway in cancer cells.
- PTER-ITC represents a promising, cancer-specific phytocompound for anti-metastatic therapy.
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