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In Vitro Assay of Bacterial Adhesion onto Mammalian Epithelial Cells
Published on: May 16, 2011
Marine Bacterial Polysaccharide EPS11 Inhibits Cancer Cell Growth via Blocking Cell Adhesion and Stimulating Anoikis
Ruobing Cao1,2,3, Weihua Jin4, Yeqi Shan5,6,7
1Key Laboratory of Experimental Marine Biology, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China. caoruobing15@mails.ucas.edu.cn.
Abstract:
Tumor cells that acquire metastatic potential have developed resistance to anoikis, a cell death process, after detachment from their primary site to the second organ. In this study, we investigated the molecular mechanisms of a novel marine bacterial polysaccharide EPS11 which exerts its cytotoxic effects through affecting cancer cell adhesion and anoikis. Firstly, we found that EPS11 could significantly affect cell proliferation and block cell adhesion in A549 cells. We further demonstrated that the expression of several cell adhesion associated proteins is downregulated and the filiform structures of cancer cells are destroyed after EPS11 treatment. Interestingly, the destruction of filiform structures in A549 cells by EPS11 is in a dose-dependent manner, and the inhibitory tendency is very consistent with that observed in the cell adhesion assay, which confirms that filiform structures play important roles in modulating cell adhesion. Moreover, we showed that EPS11 induces apoptosis of A549 cells through stimulating βIII-tubulin associated anoikis: (i) EPS11 inhibits the expression of βIII-tubulin in both transcription and translation levels; and (ii) EPS11 treatment dramatically decreases the phosphorylation of protein kinase B (PKB or AKT), a critical downstream effector of βIII-tubulin. Importantly, EPS11 evidently inhibits the growth of A549-derived tumor xenografts in vivo. Thus, our results suggest that EPS11 may be a potential candidate for human non-small cell lung carcinoma treatment via blocking filiform structure mediated adhesion and stimulating βIII-tubulin associated anoikis.
Insights
A novel marine bacterial polysaccharide, EPS11, inhibits non-small cell lung carcinoma growth by disrupting cancer cell adhesion and promoting anoikis, a form of cell death. This compound shows potential as a therapeutic agent for lung cancer.
Area of Science:
- Marine microbiology
- Cancer biology
- Biochemistry
Background:
- Metastasis involves cancer cell resistance to anoikis (cell death upon detachment).
- Understanding molecular mechanisms of anoikis resistance is crucial for cancer therapy.
- Novel compounds targeting cell adhesion and anoikis are needed.
Purpose of the Study:
- Investigate the anti-cancer mechanisms of marine bacterial polysaccharide EPS11.
- Determine EPS11's effects on cancer cell adhesion, anoikis, and tumor growth.
- Evaluate EPS11 as a potential therapeutic for non-small cell lung carcinoma.
Main Methods:
- Assessed EPS11's impact on A549 cell proliferation and adhesion.
- Analyzed changes in cell adhesion-associated proteins and filiform structures.
- Investigated EPS11's role in βIII-tubulin expression and protein kinase B (PKB/AKT) phosphorylation.
- Evaluated EPS11's efficacy in inhibiting A549 tumor xenografts in vivo.
Main Results:
- EPS11 significantly inhibited A549 cell proliferation and adhesion.
- EPS11 downregulated cell adhesion proteins and destroyed filiform structures in a dose-dependent manner.
- EPS11 induced apoptosis by inhibiting βIII-tubulin and decreasing PKB/AKT phosphorylation.
- EPS11 demonstrated significant inhibition of A549 tumor xenograft growth in vivo.
Conclusions:
- EPS11 exhibits anti-cancer properties by blocking filiform structure-mediated adhesion.
- EPS11 induces apoptosis through stimulating βIII-tubulin associated anoikis.
- EPS11 is a promising candidate for treating non-small cell lung carcinoma.
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