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Original Article

Vimentin as a potential therapeutic target in sorafenib resistant HepG2, a HCC model cell line

Clinical and Molecular Hepatology 2020;26(1):45-53.
Published online: September 30, 2019

1Department of Experimental Medicine and Biotechnology, Postgraduate Institute of Medical Education & Research, Chandigarh, India

2Department of Hepatology, Postgraduate Institute of Medical Education & Research, Chandigarh, India

Corresponding author : Anuradha Chakraborti Department of Experimental Medicine and Biotechnology, Postgraduate Institute of Medical Education & Research, Research Block B, Chandigarh 160012, India Tel: +91-172-275-5230 E-mail: superoxide14@gmail.com
• Received: March 18, 2019   • Revised: May 30, 2019   • Accepted: July 2, 2019

Copyright © 2020 by The Korean Association for the Study of the Liver

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Vimentin as a potential therapeutic target in sorafenib resistant HepG2, a HCC model cell line
Clin Mol Hepatol. 2020;26(1):45-53.   Published online September 30, 2019
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Vimentin as a potential therapeutic target in sorafenib resistant HepG2, a HCC model cell line
Clin Mol Hepatol. 2020;26(1):45-53.   Published online September 30, 2019
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Vimentin as a potential therapeutic target in sorafenib resistant HepG2, a HCC model cell line
Image Image Image Image Image Image Image
Figure 1. (A) Morphological analysis of HepG2 (P) and HepG2 (R) cells. (B) Sorafenib dose response curve [IC50 HepG2 (P) = 1.6 μM; IC50 HepG2 (R) = 3.6 μM; fold resistance = 2.25]. HepG2 (P), HepG2 parental; HepG2 (R), HepG2 sorafenib-resistant; Conc., concentrations.
Figure 2. (A) Protein profile of HepG2 (P) and (R) cells on 10% SDS-PAGE stained with Coomassie brilliant blue. (B) Excision of protein bands from HepG2 cells [lanes: 1-HepG2 (P); 2-HepG2 (R); M-BLUelf Prestained Protein Ladder]. HepG2 (P), HepG2 parental; HepG2 (R), HepG2 sorafenib-resistant; SDS-PAGE, sodium dodecyl sulfate polyacrylamide gel electrophoresis.
Figure 3. (A) Representative FACS plots of: (i) HepG2 (P) cells without antibody (control), (ii) HepG2 (P) cells with anti-vimentin antibody, (iii) HepG2 (R) cells without antibody (control), and (iv) HepG2 (R) cells with anti-vimentin antibody. (B) Protein level expression of vimentin in HepG2 (P) and HepG2 (R) cells. (C) Vimentin expression in HepG2 (P) and HepG2 (R) cells. HepG2 (P), HepG2 parental; HepG2 (R), HepG2 sorafenib-resistant; FACS, fluorescence-activated cell sorting.
Figure 4. Vimentin expression in response to different concentrations of sorafenib (S) in HepG2 cells. HepG2 (P), HepG2 parental; HepG2 (R), HepG2 sorafenib-resistant. *P=0.263.
Figure 5. Vimentin expression in HepG2 (R) cells in response to: withaferin A (WA) and a combination of sorafenib (S; 5 μM) and WA. HepG2 (R), HepG2 sorafenib-resistant. *P=0.034.
Figure 6. Effect of vimentin inhibition on sorafenib resistance: (A) ABCG2 expression in HepG2 cells. (B) In response to withaferin A (WA) in HepG2 (R) cells. HepG2 (P), HepG2 parental; HepG2 (R), HepG2 sorafenib-resistant. *P=0.021.
Figure 7. Effect of vimentin inhibition with withaferin A (WA) and WA in combination with sorafenib (S) on the overall cell viability of HepG2 cells via: (A) crystal violet staining and (B) MTT assay. HepG2 (P), HepG2 parental; HepG2 (R), HepG2 sorafenib-resistant. *P=0.0003, †P<0.0001.
Vimentin as a potential therapeutic target in sorafenib resistant HepG2, a HCC model cell line