Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway

Abstract Background Recent studies claimed the important role of cold atmospheric plasma (CAP) with nanotechnology in cancer treatments. In this study, silymarin nanoemulsion (SN) was used along with air CAP as therapeutic agent to counter human melanoma. Methods In this study, we examined the combi...

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Main Authors: Manish Adhikari, Neha Kaushik, Bhagirath Ghimire, Bhawana Adhikari, Sanjula Baboota, Abdulaziz A. Al-Khedhairy, Rizwan Wahab, Su-Jae Lee, Nagendra Kumar Kaushik, Eun Ha Choi
Format: Article
Language:English
Published: BMC 2019-05-01
Series:Cell Communication and Signaling
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12964-019-0360-4
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spelling doaj-cc23855879af44aca17d6c21a0ed63d92020-11-25T03:21:22ZengBMCCell Communication and Signaling1478-811X2019-05-0117111410.1186/s12964-019-0360-4Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathwayManish Adhikari0Neha Kaushik1Bhagirath Ghimire2Bhawana Adhikari3Sanjula Baboota4Abdulaziz A. Al-Khedhairy5Rizwan Wahab6Su-Jae Lee7Nagendra Kumar Kaushik8Eun Ha Choi9Plasma Bioscience Research Center, Applied Plasma Medicine Center, Department of Electrical and Biological Physics, Kwangwoon UniversityDepartment of Life Science, Hanyang UniversityPlasma Bioscience Research Center, Applied Plasma Medicine Center, Department of Electrical and Biological Physics, Kwangwoon UniversityPlasma Bioscience Research Center, Applied Plasma Medicine Center, Department of Electrical and Biological Physics, Kwangwoon UniversityDepartment of Pharmaceutics, School of Pharmaceutical Education and Research, Jamia HamdardZoology Department, College of Science, King Saud UniversityZoology Department, College of Science, King Saud UniversityDepartment of Life Science, Hanyang UniversityPlasma Bioscience Research Center, Applied Plasma Medicine Center, Department of Electrical and Biological Physics, Kwangwoon UniversityPlasma Bioscience Research Center, Applied Plasma Medicine Center, Department of Electrical and Biological Physics, Kwangwoon UniversityAbstract Background Recent studies claimed the important role of cold atmospheric plasma (CAP) with nanotechnology in cancer treatments. In this study, silymarin nanoemulsion (SN) was used along with air CAP as therapeutic agent to counter human melanoma. Methods In this study, we examined the combined treatment of CAP and SN on G-361 human melanoma cells by evaluating cellular toxicity levels, reactive oxygen and nitrogen species (RONS) levels, DNA damage, melanoma-specific markers, apoptosis, caspases and poly ADP-ribose polymerase-1 (PARP-1) levels using flow cytometer. Dual-treatment effects on the epithelial–mesenchymal transition (EMT), Hepatocyte growth factor (HGF/c-MET) pathway, sphere formation and the reversal of EMT were also assessed using western blotting and microscopy respectively. SN and plasma-activated medium (PAM) were applied on tumor growth and body weight and melanoma-specific markers and the mesenchymal markers in the tumor xenograft nude mice model were checked. Results Co-treatment of SN and air CAP increased the cellular toxicity in a time-dependent manner and shows maximum toxicity at 200 nM in 24 h. Intracellular RONS showed significant generation of ROS (< 3 times) and RNS (< 2.5 times) in dual-treated samples compared to control. DNA damage studies were assessed by estimating the level of γ-H2AX (1.8 times), PD-1 (> 2 times) and DNMT and showed damage in G-361 cells. Increase in Caspase 8,9,3/7 (> 1.5 times), PARP level (2.5 times) and apoptotic genes level were also observed in dual treated group and hence blocking HGF/c-MET pathway. Decrease in EMT markers (E-cadherin, YKL-40, N-cadherin, SNAI1) were seen with simultaneously decline in melanoma cells (BRAF, NAMPT) and stem cells (CD133, ABCB5) markers. In vivo results showed significant reduction in SN with PAM with reduction in tumor weight and size. Conclusions The use of air CAP using μ-DBD and the SN can minimize the malignancy effects of melanoma cells by describing HGF/c-MET molecular mechanism of acting on G-361 human melanoma cells and in mice xenografts, possibly leading to suitable targets for innovative anti-melanoma approaches in the future.http://link.springer.com/article/10.1186/s12964-019-0360-4Non thermal plasmaSilymarin nanoemulsionMelanomaHGF/c-METCancer StemnessEpithelial-mesenchymal transition
collection DOAJ
language English
format Article
sources DOAJ
author Manish Adhikari
Neha Kaushik
Bhagirath Ghimire
Bhawana Adhikari
Sanjula Baboota
Abdulaziz A. Al-Khedhairy
Rizwan Wahab
Su-Jae Lee
Nagendra Kumar Kaushik
Eun Ha Choi
spellingShingle Manish Adhikari
Neha Kaushik
Bhagirath Ghimire
Bhawana Adhikari
Sanjula Baboota
Abdulaziz A. Al-Khedhairy
Rizwan Wahab
Su-Jae Lee
Nagendra Kumar Kaushik
Eun Ha Choi
Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway
Cell Communication and Signaling
Non thermal plasma
Silymarin nanoemulsion
Melanoma
HGF/c-MET
Cancer Stemness
Epithelial-mesenchymal transition
author_facet Manish Adhikari
Neha Kaushik
Bhagirath Ghimire
Bhawana Adhikari
Sanjula Baboota
Abdulaziz A. Al-Khedhairy
Rizwan Wahab
Su-Jae Lee
Nagendra Kumar Kaushik
Eun Ha Choi
author_sort Manish Adhikari
title Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway
title_short Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway
title_full Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway
title_fullStr Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway
title_full_unstemmed Cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting HGF/c-MET downstream pathway
title_sort cold atmospheric plasma and silymarin nanoemulsion synergistically inhibits human melanoma tumorigenesis via targeting hgf/c-met downstream pathway
publisher BMC
series Cell Communication and Signaling
issn 1478-811X
publishDate 2019-05-01
description Abstract Background Recent studies claimed the important role of cold atmospheric plasma (CAP) with nanotechnology in cancer treatments. In this study, silymarin nanoemulsion (SN) was used along with air CAP as therapeutic agent to counter human melanoma. Methods In this study, we examined the combined treatment of CAP and SN on G-361 human melanoma cells by evaluating cellular toxicity levels, reactive oxygen and nitrogen species (RONS) levels, DNA damage, melanoma-specific markers, apoptosis, caspases and poly ADP-ribose polymerase-1 (PARP-1) levels using flow cytometer. Dual-treatment effects on the epithelial–mesenchymal transition (EMT), Hepatocyte growth factor (HGF/c-MET) pathway, sphere formation and the reversal of EMT were also assessed using western blotting and microscopy respectively. SN and plasma-activated medium (PAM) were applied on tumor growth and body weight and melanoma-specific markers and the mesenchymal markers in the tumor xenograft nude mice model were checked. Results Co-treatment of SN and air CAP increased the cellular toxicity in a time-dependent manner and shows maximum toxicity at 200 nM in 24 h. Intracellular RONS showed significant generation of ROS (< 3 times) and RNS (< 2.5 times) in dual-treated samples compared to control. DNA damage studies were assessed by estimating the level of γ-H2AX (1.8 times), PD-1 (> 2 times) and DNMT and showed damage in G-361 cells. Increase in Caspase 8,9,3/7 (> 1.5 times), PARP level (2.5 times) and apoptotic genes level were also observed in dual treated group and hence blocking HGF/c-MET pathway. Decrease in EMT markers (E-cadherin, YKL-40, N-cadherin, SNAI1) were seen with simultaneously decline in melanoma cells (BRAF, NAMPT) and stem cells (CD133, ABCB5) markers. In vivo results showed significant reduction in SN with PAM with reduction in tumor weight and size. Conclusions The use of air CAP using μ-DBD and the SN can minimize the malignancy effects of melanoma cells by describing HGF/c-MET molecular mechanism of acting on G-361 human melanoma cells and in mice xenografts, possibly leading to suitable targets for innovative anti-melanoma approaches in the future.
topic Non thermal plasma
Silymarin nanoemulsion
Melanoma
HGF/c-MET
Cancer Stemness
Epithelial-mesenchymal transition
url http://link.springer.com/article/10.1186/s12964-019-0360-4
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