Cargando…

Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction

Thoracic radiotherapy patients have higher risks of developing radiation-induced heart disease (RIHD). Ionizing radiation generates excessive reactive oxygens species (ROS) causing oxidative stress, while Momordica. charantia and its extract have antioxidant activity. Plant-derived extracellular ves...

Descripción completa

Detalles Bibliográficos
Autores principales: Cui, Wen-Wen, Ye, Cong, Wang, Kai-Xuan, Yang, Xu, Zhu, Pei-Yan, Hu, Kan, Lan, Ting, Huang, Lin-Yan, Wang, Wan, Gu, Bing, Yan, Chen, Ma, Ping, Qi, Su-Hua, Luo, Lan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058095/
https://www.ncbi.nlm.nih.gov/pubmed/35509278
http://dx.doi.org/10.3389/fcvm.2022.864188
_version_ 1784698048237010944
author Cui, Wen-Wen
Ye, Cong
Wang, Kai-Xuan
Yang, Xu
Zhu, Pei-Yan
Hu, Kan
Lan, Ting
Huang, Lin-Yan
Wang, Wan
Gu, Bing
Yan, Chen
Ma, Ping
Qi, Su-Hua
Luo, Lan
author_facet Cui, Wen-Wen
Ye, Cong
Wang, Kai-Xuan
Yang, Xu
Zhu, Pei-Yan
Hu, Kan
Lan, Ting
Huang, Lin-Yan
Wang, Wan
Gu, Bing
Yan, Chen
Ma, Ping
Qi, Su-Hua
Luo, Lan
author_sort Cui, Wen-Wen
collection PubMed
description Thoracic radiotherapy patients have higher risks of developing radiation-induced heart disease (RIHD). Ionizing radiation generates excessive reactive oxygens species (ROS) causing oxidative stress, while Momordica. charantia and its extract have antioxidant activity. Plant-derived extracellular vesicles (EVs) is emerging as novel therapeutic agent. Therefore, we explored the protective effects of Momordica. charantia-derived EVs-like nanovesicles (MCELNs) against RIHD. Using density gradient centrifugation, we successfully isolated MCELNs with similar shape, size, and markers as EVs. Confocal imaging revealed that rat cardiomyocytes H9C2 cells internalized PKH67 labeled MCELNs time-dependently. In vitro assay identified that MCELNs promoted cell proliferation, suppressed cell apoptosis, and alleviated the DNA damage in irradiated (16 Gy, X-ray) H9C2 cells. Moreover, elevated mitochondria ROS in irradiated H9C2 cells were scavenged by MCELNs, protecting mitochondria function with re-balanced mitochondria membrane potential. Furthermore, the phosphorylation of ROS-related proteins was recovered with increased ratios of p-AKT/AKT and p-ERK/ERK in MCELNs treated irradiated H9C2 cells. Last, intraperitoneal administration of MCELNs mitigated myocardial injury and fibrosis in a thoracic radiation mice model. Our data demonstrated the potential protective effects of MCELNs against RIHD. The MCELNs shed light on preventive regime development for radiation-related toxicity.
format Online
Article
Text
id pubmed-9058095
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-90580952022-05-03 Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction Cui, Wen-Wen Ye, Cong Wang, Kai-Xuan Yang, Xu Zhu, Pei-Yan Hu, Kan Lan, Ting Huang, Lin-Yan Wang, Wan Gu, Bing Yan, Chen Ma, Ping Qi, Su-Hua Luo, Lan Front Cardiovasc Med Cardiovascular Medicine Thoracic radiotherapy patients have higher risks of developing radiation-induced heart disease (RIHD). Ionizing radiation generates excessive reactive oxygens species (ROS) causing oxidative stress, while Momordica. charantia and its extract have antioxidant activity. Plant-derived extracellular vesicles (EVs) is emerging as novel therapeutic agent. Therefore, we explored the protective effects of Momordica. charantia-derived EVs-like nanovesicles (MCELNs) against RIHD. Using density gradient centrifugation, we successfully isolated MCELNs with similar shape, size, and markers as EVs. Confocal imaging revealed that rat cardiomyocytes H9C2 cells internalized PKH67 labeled MCELNs time-dependently. In vitro assay identified that MCELNs promoted cell proliferation, suppressed cell apoptosis, and alleviated the DNA damage in irradiated (16 Gy, X-ray) H9C2 cells. Moreover, elevated mitochondria ROS in irradiated H9C2 cells were scavenged by MCELNs, protecting mitochondria function with re-balanced mitochondria membrane potential. Furthermore, the phosphorylation of ROS-related proteins was recovered with increased ratios of p-AKT/AKT and p-ERK/ERK in MCELNs treated irradiated H9C2 cells. Last, intraperitoneal administration of MCELNs mitigated myocardial injury and fibrosis in a thoracic radiation mice model. Our data demonstrated the potential protective effects of MCELNs against RIHD. The MCELNs shed light on preventive regime development for radiation-related toxicity. Frontiers Media S.A. 2022-04-18 /pmc/articles/PMC9058095/ /pubmed/35509278 http://dx.doi.org/10.3389/fcvm.2022.864188 Text en Copyright © 2022 Cui, Ye, Wang, Yang, Zhu, Hu, Lan, Huang, Wang, Gu, Yan, Ma, Qi and Luo. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cardiovascular Medicine
Cui, Wen-Wen
Ye, Cong
Wang, Kai-Xuan
Yang, Xu
Zhu, Pei-Yan
Hu, Kan
Lan, Ting
Huang, Lin-Yan
Wang, Wan
Gu, Bing
Yan, Chen
Ma, Ping
Qi, Su-Hua
Luo, Lan
Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction
title Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction
title_full Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction
title_fullStr Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction
title_full_unstemmed Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction
title_short Momordica. charantia-Derived Extracellular Vesicles-Like Nanovesicles Protect Cardiomyocytes Against Radiation Injury via Attenuating DNA Damage and Mitochondria Dysfunction
title_sort momordica. charantia-derived extracellular vesicles-like nanovesicles protect cardiomyocytes against radiation injury via attenuating dna damage and mitochondria dysfunction
topic Cardiovascular Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058095/
https://www.ncbi.nlm.nih.gov/pubmed/35509278
http://dx.doi.org/10.3389/fcvm.2022.864188
work_keys_str_mv AT cuiwenwen momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT yecong momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT wangkaixuan momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT yangxu momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT zhupeiyan momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT hukan momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT lanting momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT huanglinyan momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT wangwan momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT gubing momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT yanchen momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT maping momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT qisuhua momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction
AT luolan momordicacharantiaderivedextracellularvesicleslikenanovesiclesprotectcardiomyocytesagainstradiationinjuryviaattenuatingdnadamageandmitochondriadysfunction