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A Model for Perineural Invasion in Head and Neck Squamous Cell Carcinoma
Published on: January 5, 2017
Niclosamide Induces Cell Cycle Arrest in G1 Phase in Head and Neck Squamous Cell Carcinoma Through Let-7d/CDC34 Axis
Zewen Han1, Qingxiang Li1, Yifei Wang1
1Department of Oral and Maxillofacial Surgery, Peking University School and Hospital of Stomatology, Beijing, China.
Abstract:
Niclosamide is a traditional anti-tapeworm drug that exhibits potent anti-cancer activity. Our previous study showed that niclosamide induces cell cycle arrest in G1 phase. Nevertheless, the underlying mechanism remains unknown. The following study investigated the molecular mechanism through which niclosamide induced G1 arrest in head and neck squamous cell carcinoma (HNSCC) cell lines. The effect of niclosamide on human HNSCC cell line WSU-HN6 and CNE-2Z were analyzed using IncuCyte ZOOMTM assay, flow cytometry (FCM), real-time PCR and western blot. Luciferase assay was conducted to demonstrate the interaction between let-7d (a let-7 family member which functions as a tumor suppressor by regulating cell cycle) and 3'UTR of CDC34 mRNA. Xenografts tumor model was established to evaluate the niclosamide treatment efficacy in vivo. Briefly, an exposure to niclosamide treatment led to an increased let-7d expression and a decreased expression of cell cycle regulator CDC34, finally leading to G1 phase arrest. Moreover, an overexpression of let-7d induced G1 phase arrest and downregulated CDC34, while the knockdown of let-7d partially rescued the niclosamide-induced G1 phase arrest. Luciferase assay confirmed the direct inhibition of CDC34 through the targeting of let-7d. Furthermore, niclosamide markedly inhibited the xenografts growth through up-regulation of let-7d and down-regulation of CDC34. To sum up, our findings suggest that niclosamide induces cell cycle arrest in G1 phase in HNSCC through let-7d/CDC34 axis, which enriches the anti-cancer mechanism of niclosamide.
Insights
Niclosamide, an anti-tapeworm drug, halts head and neck cancer cell growth by increasing let-7d expression and decreasing CDC34, causing G1 phase arrest. This reveals a new anti-cancer mechanism for niclosamide.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Niclosamide, an anti-tapeworm drug, shows anti-cancer properties.
- Previous studies indicated niclosamide induces G1 phase cell cycle arrest.
- The precise molecular mechanism of this G1 arrest remained undetermined.
Purpose of the Study:
- To elucidate the molecular mechanism of niclosamide-induced G1 phase arrest in head and neck squamous cell carcinoma (HNSCC).
- To investigate the role of the let-7d microRNA and CDC34 in niclosamide's anti-cancer effects.
Main Methods:
- IncuCyte ZOOM assay, flow cytometry, real-time PCR, and western blot were used on HNSCC cell lines.
- Luciferase assay confirmed the interaction between let-7d and CDC34 mRNA.
- A xenograft tumor model evaluated niclosamide efficacy in vivo.
Main Results:
- Niclosamide treatment increased let-7d expression and decreased CDC34 levels, inducing G1 arrest.
- Overexpression of let-7d mimicked niclosamide's effect, while let-7d knockdown partially reversed it.
- Niclosamide significantly inhibited xenograft tumor growth by modulating the let-7d/CDC34 axis.
Conclusions:
- Niclosamide induces G1 phase cell cycle arrest in HNSCC via the let-7d/CDC34 pathway.
- This study expands the understanding of niclosamide's anti-cancer mechanisms.
- The let-7d/CDC34 axis represents a potential therapeutic target in HNSCC treatment.
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