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Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion

Compound C (CompC), an inhibitor of AMP-activated protein kinase, reduces the viability of various renal carcinoma cells. The molecular mechanism underlying anti-proliferative effect was investigated by flow cytometry and western blot analysis in Renca cells. Its effect on the growth of Renca xenogr...

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Autores principales: Lee, Myungyeon, Ham, Na Yeon, Hwang, Chi Yeon, Jang, Jiwon, Lee, Boram, Jeong, Joo-Won, Kang, Insug, Yeo, Eui-Ju
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9456023/
https://www.ncbi.nlm.nih.gov/pubmed/36077072
http://dx.doi.org/10.3390/ijms23179675
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author Lee, Myungyeon
Ham, Na Yeon
Hwang, Chi Yeon
Jang, Jiwon
Lee, Boram
Jeong, Joo-Won
Kang, Insug
Yeo, Eui-Ju
author_facet Lee, Myungyeon
Ham, Na Yeon
Hwang, Chi Yeon
Jang, Jiwon
Lee, Boram
Jeong, Joo-Won
Kang, Insug
Yeo, Eui-Ju
author_sort Lee, Myungyeon
collection PubMed
description Compound C (CompC), an inhibitor of AMP-activated protein kinase, reduces the viability of various renal carcinoma cells. The molecular mechanism underlying anti-proliferative effect was investigated by flow cytometry and western blot analysis in Renca cells. Its effect on the growth of Renca xenografts was also examined in a syngeneic BALB/c mouse model. Subsequent results demonstrated that CompC reduced platelet-derived growth factor receptor signaling pathways and increased ERK1/2 activation as well as reactive oxygen species (ROS) production. CompC also increased the level of active Wee1 tyrosine kinase (P-Ser(642)-Wee1) and the inactive form of Cdk1 (P-Tyr(15)-Cdk1) while reducing the level of active histone H3 (P-Ser(10)-H3). ROS-dependent ERK1/2 activation and sequential alterations in Wee1, Cdk1, and histone H3 might be responsible for the CompC-induced G2/M cell cycle arrest and cell viability reduction. In addition, CompC reduced the adhesion, migration, and invasion of Renca cells in the in vitro cell systems, and growth of Renca xenografts in the BALB/c mouse model. Taken together, the inhibition of in vivo tumor growth by CompC may be attributed to the blockage of cell cycle progression, adhesion, migration, and invasion of tumor cells. These findings suggest the therapeutic potential of CompC against tumor development and progression.
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spelling pubmed-94560232022-09-09 Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion Lee, Myungyeon Ham, Na Yeon Hwang, Chi Yeon Jang, Jiwon Lee, Boram Jeong, Joo-Won Kang, Insug Yeo, Eui-Ju Int J Mol Sci Article Compound C (CompC), an inhibitor of AMP-activated protein kinase, reduces the viability of various renal carcinoma cells. The molecular mechanism underlying anti-proliferative effect was investigated by flow cytometry and western blot analysis in Renca cells. Its effect on the growth of Renca xenografts was also examined in a syngeneic BALB/c mouse model. Subsequent results demonstrated that CompC reduced platelet-derived growth factor receptor signaling pathways and increased ERK1/2 activation as well as reactive oxygen species (ROS) production. CompC also increased the level of active Wee1 tyrosine kinase (P-Ser(642)-Wee1) and the inactive form of Cdk1 (P-Tyr(15)-Cdk1) while reducing the level of active histone H3 (P-Ser(10)-H3). ROS-dependent ERK1/2 activation and sequential alterations in Wee1, Cdk1, and histone H3 might be responsible for the CompC-induced G2/M cell cycle arrest and cell viability reduction. In addition, CompC reduced the adhesion, migration, and invasion of Renca cells in the in vitro cell systems, and growth of Renca xenografts in the BALB/c mouse model. Taken together, the inhibition of in vivo tumor growth by CompC may be attributed to the blockage of cell cycle progression, adhesion, migration, and invasion of tumor cells. These findings suggest the therapeutic potential of CompC against tumor development and progression. MDPI 2022-08-26 /pmc/articles/PMC9456023/ /pubmed/36077072 http://dx.doi.org/10.3390/ijms23179675 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lee, Myungyeon
Ham, Na Yeon
Hwang, Chi Yeon
Jang, Jiwon
Lee, Boram
Jeong, Joo-Won
Kang, Insug
Yeo, Eui-Ju
Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion
title Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion
title_full Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion
title_fullStr Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion
title_full_unstemmed Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion
title_short Compound C Inhibits Renca Renal Epithelial Carcinoma Growth in Syngeneic Mouse Models by Blocking Cell Cycle Progression, Adhesion and Invasion
title_sort compound c inhibits renca renal epithelial carcinoma growth in syngeneic mouse models by blocking cell cycle progression, adhesion and invasion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9456023/
https://www.ncbi.nlm.nih.gov/pubmed/36077072
http://dx.doi.org/10.3390/ijms23179675
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