Cargando…

Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis

BACKGROUND: Ischemic stroke, as a health problem caused by the reduced blood supply to the brain, can lead to the neuronal death. The number of reliable therapies for stroke is limited. MSCs exhibit therapeutic achievement. A major limitation of MSC application in cell therapy is the short survival...

Descripción completa

Detalles Bibliográficos
Autores principales: Seifali, Elham, Hassanzadeh, Gholamreza, Mahdavipour, Marzieh, Mortezaee, Keywan, Moini, Ashraf, Satarian, Leila, Shekari, Faezeh, Nazari, Abdoreza, Movassaghi, Shabnam, Akbari, Mohammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Pasteur Institute of Iran 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7601540/
https://www.ncbi.nlm.nih.gov/pubmed/32872749
http://dx.doi.org/10.29252/ibj.24.6.342
_version_ 1783603445974958080
author Seifali, Elham
Hassanzadeh, Gholamreza
Mahdavipour, Marzieh
Mortezaee, Keywan
Moini, Ashraf
Satarian, Leila
Shekari, Faezeh
Nazari, Abdoreza
Movassaghi, Shabnam
Akbari, Mohammad
author_facet Seifali, Elham
Hassanzadeh, Gholamreza
Mahdavipour, Marzieh
Mortezaee, Keywan
Moini, Ashraf
Satarian, Leila
Shekari, Faezeh
Nazari, Abdoreza
Movassaghi, Shabnam
Akbari, Mohammad
author_sort Seifali, Elham
collection PubMed
description BACKGROUND: Ischemic stroke, as a health problem caused by the reduced blood supply to the brain, can lead to the neuronal death. The number of reliable therapies for stroke is limited. MSCs exhibit therapeutic achievement. A major limitation of MSC application in cell therapy is the short survival span. MSCs affect target tissues through the secretion of many paracrine agents including EVs. This study aimed to investigate the effect of HUCPVCs-derived EVs on apoptosis, functional recovery, and neuroprotection. METHODS: Ischemia was induced by MCAO in male Wistar rats. Animals were classified into sham, MCAO, MCAO + HUCPVC, and MCAO + EV groups. Treatments began at two hours after ischemia. Expressions of apoptotic-related proteins (BAX/BCl-2 and caspase-3 and -9), the amount of TUNEL-positive cells, neuronal density (MAP2), and dead neurons (Nissl staining) were assessed on day seven post MCAO. RESULTS: Administration of EVs improved the sensorimotor function (p < 0.001) and reduced the apoptotic rate of Bax/Bcl-2 ratio (p < 0.001), as well as caspases and TUNEL-positive cells (p < 0.001) in comparison to the MCAO group. EV treatment also reduced the number of dead neurons and increased the number of MAP2(+) cells in the IBZ (p < 0.001), as compared to the MCAO group. CONCLUSION: Our findings showed that HUCPVCs-derived EVs are more effective than their mother’s cells in improving neural function, possibly via the regulation of apoptosis in the ischemic rats. The strategy of cell-free extracts is, thus, helpful in removing the predicaments surrounding cell therapy in targeting brain diseases.
format Online
Article
Text
id pubmed-7601540
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Pasteur Institute of Iran
record_format MEDLINE/PubMed
spelling pubmed-76015402020-11-13 Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis Seifali, Elham Hassanzadeh, Gholamreza Mahdavipour, Marzieh Mortezaee, Keywan Moini, Ashraf Satarian, Leila Shekari, Faezeh Nazari, Abdoreza Movassaghi, Shabnam Akbari, Mohammad Iran Biomed J Full Length BACKGROUND: Ischemic stroke, as a health problem caused by the reduced blood supply to the brain, can lead to the neuronal death. The number of reliable therapies for stroke is limited. MSCs exhibit therapeutic achievement. A major limitation of MSC application in cell therapy is the short survival span. MSCs affect target tissues through the secretion of many paracrine agents including EVs. This study aimed to investigate the effect of HUCPVCs-derived EVs on apoptosis, functional recovery, and neuroprotection. METHODS: Ischemia was induced by MCAO in male Wistar rats. Animals were classified into sham, MCAO, MCAO + HUCPVC, and MCAO + EV groups. Treatments began at two hours after ischemia. Expressions of apoptotic-related proteins (BAX/BCl-2 and caspase-3 and -9), the amount of TUNEL-positive cells, neuronal density (MAP2), and dead neurons (Nissl staining) were assessed on day seven post MCAO. RESULTS: Administration of EVs improved the sensorimotor function (p < 0.001) and reduced the apoptotic rate of Bax/Bcl-2 ratio (p < 0.001), as well as caspases and TUNEL-positive cells (p < 0.001) in comparison to the MCAO group. EV treatment also reduced the number of dead neurons and increased the number of MAP2(+) cells in the IBZ (p < 0.001), as compared to the MCAO group. CONCLUSION: Our findings showed that HUCPVCs-derived EVs are more effective than their mother’s cells in improving neural function, possibly via the regulation of apoptosis in the ischemic rats. The strategy of cell-free extracts is, thus, helpful in removing the predicaments surrounding cell therapy in targeting brain diseases. Pasteur Institute of Iran 2020-11 2020-07-25 /pmc/articles/PMC7601540/ /pubmed/32872749 http://dx.doi.org/10.29252/ibj.24.6.342 Text en This is an Open Access article distributed under the terms of the Creative Commons Attribution License, (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Length
Seifali, Elham
Hassanzadeh, Gholamreza
Mahdavipour, Marzieh
Mortezaee, Keywan
Moini, Ashraf
Satarian, Leila
Shekari, Faezeh
Nazari, Abdoreza
Movassaghi, Shabnam
Akbari, Mohammad
Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis
title Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis
title_full Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis
title_fullStr Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis
title_full_unstemmed Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis
title_short Extracellular Vesicles Derived from Human Umbilical Cord Perivascular Cells Improve Functional Recovery in Brain Ischemic Rat via the Inhibition of Apoptosis
title_sort extracellular vesicles derived from human umbilical cord perivascular cells improve functional recovery in brain ischemic rat via the inhibition of apoptosis
topic Full Length
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7601540/
https://www.ncbi.nlm.nih.gov/pubmed/32872749
http://dx.doi.org/10.29252/ibj.24.6.342
work_keys_str_mv AT seifalielham extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT hassanzadehgholamreza extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT mahdavipourmarzieh extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT mortezaeekeywan extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT moiniashraf extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT satarianleila extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT shekarifaezeh extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT nazariabdoreza extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT movassaghishabnam extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis
AT akbarimohammad extracellularvesiclesderivedfromhumanumbilicalcordperivascularcellsimprovefunctionalrecoveryinbrainischemicratviatheinhibitionofapoptosis