Cargando…

Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation

Tumor undergo uncontrolled, excessive proliferation leads to hypoxic microenvironment. To fulfill their demand for nutrient, and oxygen, tumor angiogenesis is required. Endothelial progenitor cells (EPCs) have been known to the main source of angiogenesis because of their potential to differentiatio...

Descripción completa

Detalles Bibliográficos
Autores principales: Kim, Da Yeon, Jung, Seok Yun, Kim, Yeon Ju, Kang, Songhwa, Park, Ji Hye, Ji, Seung Taek, Jang, Woong Bi, Lamichane, Shreekrishna, Lamichane, Babita Dahal, Chae, Young Chan, Lee, Dongjun, Chung, Joo Seop, Kwon, Sang-Mo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Korean Physiological Society and The Korean Society of Pharmacology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5840079/
https://www.ncbi.nlm.nih.gov/pubmed/29520173
http://dx.doi.org/10.4196/kjpp.2018.22.2.203
_version_ 1783304503999594496
author Kim, Da Yeon
Jung, Seok Yun
Kim, Yeon Ju
Kang, Songhwa
Park, Ji Hye
Ji, Seung Taek
Jang, Woong Bi
Lamichane, Shreekrishna
Lamichane, Babita Dahal
Chae, Young Chan
Lee, Dongjun
Chung, Joo Seop
Kwon, Sang-Mo
author_facet Kim, Da Yeon
Jung, Seok Yun
Kim, Yeon Ju
Kang, Songhwa
Park, Ji Hye
Ji, Seung Taek
Jang, Woong Bi
Lamichane, Shreekrishna
Lamichane, Babita Dahal
Chae, Young Chan
Lee, Dongjun
Chung, Joo Seop
Kwon, Sang-Mo
author_sort Kim, Da Yeon
collection PubMed
description Tumor undergo uncontrolled, excessive proliferation leads to hypoxic microenvironment. To fulfill their demand for nutrient, and oxygen, tumor angiogenesis is required. Endothelial progenitor cells (EPCs) have been known to the main source of angiogenesis because of their potential to differentiation into endothelial cells. Therefore, understanding the mechanism of EPC-mediated angiogenesis in hypoxia is critical for development of cancer therapy. Recently, mitochondrial dynamics has emerged as a critical mechanism for cellular function and differentiation under hypoxic conditions. However, the role of mitochondrial dynamics in hypoxia-induced angiogenesis remains to be elucidated. In this study, we demonstrated that hypoxia-induced mitochondrial fission accelerates EPCs bioactivities. We first investigated the effect of hypoxia on EPC-mediated angiogenesis. Cell migration, invasion, and tube formation was significantly increased under hypoxic conditions; expression of EPC surface markers was unchanged. And mitochondrial fission was induced by hypoxia time-dependent manner. We found that hypoxia-induced mitochondrial fission was triggered by dynamin-related protein Drp1, specifically, phosphorylated DRP1 at Ser637, a suppression marker for mitochondrial fission, was impaired in hypoxia time-dependent manner. To confirm the role of DRP1 in EPC-mediated angiogenesis, we analyzed cell bioactivities using Mdivi-1, a selective DRP1 inhibitor, and DRP1 siRNA. DRP1 silencing or Mdivi-1 treatment dramatically reduced cell migration, invasion, and tube formation in EPCs, but the expression of EPC surface markers was unchanged. In conclusion, we uncovered a novel role of mitochondrial fission in hypoxia-induced angiogenesis. Therefore, we suggest that specific modulation of DRP1-mediated mitochondrial dynamics may be a potential therapeutic strategy in EPC-mediated tumor angiogenesis.
format Online
Article
Text
id pubmed-5840079
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher The Korean Physiological Society and The Korean Society of Pharmacology
record_format MEDLINE/PubMed
spelling pubmed-58400792018-03-08 Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation Kim, Da Yeon Jung, Seok Yun Kim, Yeon Ju Kang, Songhwa Park, Ji Hye Ji, Seung Taek Jang, Woong Bi Lamichane, Shreekrishna Lamichane, Babita Dahal Chae, Young Chan Lee, Dongjun Chung, Joo Seop Kwon, Sang-Mo Korean J Physiol Pharmacol Original Article Tumor undergo uncontrolled, excessive proliferation leads to hypoxic microenvironment. To fulfill their demand for nutrient, and oxygen, tumor angiogenesis is required. Endothelial progenitor cells (EPCs) have been known to the main source of angiogenesis because of their potential to differentiation into endothelial cells. Therefore, understanding the mechanism of EPC-mediated angiogenesis in hypoxia is critical for development of cancer therapy. Recently, mitochondrial dynamics has emerged as a critical mechanism for cellular function and differentiation under hypoxic conditions. However, the role of mitochondrial dynamics in hypoxia-induced angiogenesis remains to be elucidated. In this study, we demonstrated that hypoxia-induced mitochondrial fission accelerates EPCs bioactivities. We first investigated the effect of hypoxia on EPC-mediated angiogenesis. Cell migration, invasion, and tube formation was significantly increased under hypoxic conditions; expression of EPC surface markers was unchanged. And mitochondrial fission was induced by hypoxia time-dependent manner. We found that hypoxia-induced mitochondrial fission was triggered by dynamin-related protein Drp1, specifically, phosphorylated DRP1 at Ser637, a suppression marker for mitochondrial fission, was impaired in hypoxia time-dependent manner. To confirm the role of DRP1 in EPC-mediated angiogenesis, we analyzed cell bioactivities using Mdivi-1, a selective DRP1 inhibitor, and DRP1 siRNA. DRP1 silencing or Mdivi-1 treatment dramatically reduced cell migration, invasion, and tube formation in EPCs, but the expression of EPC surface markers was unchanged. In conclusion, we uncovered a novel role of mitochondrial fission in hypoxia-induced angiogenesis. Therefore, we suggest that specific modulation of DRP1-mediated mitochondrial dynamics may be a potential therapeutic strategy in EPC-mediated tumor angiogenesis. The Korean Physiological Society and The Korean Society of Pharmacology 2018-03 2018-02-23 /pmc/articles/PMC5840079/ /pubmed/29520173 http://dx.doi.org/10.4196/kjpp.2018.22.2.203 Text en Copyright © Korean J Physiol Pharmacol http://creativecommons.org/licenses/by-nc/4.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Kim, Da Yeon
Jung, Seok Yun
Kim, Yeon Ju
Kang, Songhwa
Park, Ji Hye
Ji, Seung Taek
Jang, Woong Bi
Lamichane, Shreekrishna
Lamichane, Babita Dahal
Chae, Young Chan
Lee, Dongjun
Chung, Joo Seop
Kwon, Sang-Mo
Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
title Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
title_full Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
title_fullStr Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
title_full_unstemmed Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
title_short Hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
title_sort hypoxia-dependent mitochondrial fission regulates endothelial progenitor cell migration, invasion, and tube formation
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5840079/
https://www.ncbi.nlm.nih.gov/pubmed/29520173
http://dx.doi.org/10.4196/kjpp.2018.22.2.203
work_keys_str_mv AT kimdayeon hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT jungseokyun hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT kimyeonju hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT kangsonghwa hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT parkjihye hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT jiseungtaek hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT jangwoongbi hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT lamichaneshreekrishna hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT lamichanebabitadahal hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT chaeyoungchan hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT leedongjun hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT chungjooseop hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation
AT kwonsangmo hypoxiadependentmitochondrialfissionregulatesendothelialprogenitorcellmigrationinvasionandtubeformation