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Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage

Delayed cerebral vasospasm following subarachnoid hemorrhage causes severe ischemic neurologic deficits leading to permanent neurologic dysfunction or death. Reduced intravascular and perivascular nitric oxide (NO) availability is a primary pathophysiology of cerebral vasospasm. In this study, we ev...

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Autores principales: Kim, Hyunggun, Britton, George L, Peng, Tao, Holland, Christy K, McPherson, David D, Huang, Shao-Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3873237/
https://www.ncbi.nlm.nih.gov/pubmed/24379666
http://dx.doi.org/10.2147/IJN.S48856
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author Kim, Hyunggun
Britton, George L
Peng, Tao
Holland, Christy K
McPherson, David D
Huang, Shao-Ling
author_facet Kim, Hyunggun
Britton, George L
Peng, Tao
Holland, Christy K
McPherson, David D
Huang, Shao-Ling
author_sort Kim, Hyunggun
collection PubMed
description Delayed cerebral vasospasm following subarachnoid hemorrhage causes severe ischemic neurologic deficits leading to permanent neurologic dysfunction or death. Reduced intravascular and perivascular nitric oxide (NO) availability is a primary pathophysiology of cerebral vasospasm. In this study, we evaluated NO-loaded echogenic liposomes (NO-ELIP) for ultrasound-facilitated NO delivery to produce vasodilation for treatment of vasospasm following subarachnoid hemorrhage. We investigated the vasodilative effects of NO released from NO-ELIP both ex vivo and in vivo. Liposomes containing phospholipids and cholesterol were prepared, and NO was encapsulated. The encapsulation and release of NO from NO-ELIP were determined by the syringe/vacuum method and ultrasound imaging. The ex vivo vasodilative effect of NO-ELIP was investigated using rabbit carotid arteries. Arterial vasodilation was clearly observed with NO-ELIP exposed to Doppler ultrasound whereas there was little vasodilative effect without exposure to Doppler ultrasound in the presence of red blood cells. Penetration of NO into the arterial wall was determined by fluorescent microscopy. The vasodilative effects of intravenously administered NO-ELIP in vivo were determined in a rat subarachnoid hemorrhage model. NO-ELIP with ultrasound activation over the carotid artery demonstrated effective arterial vasodilation in vivo resulting in improved neurologic function. This novel methodology for ultrasound-controlled delivery of NO has the potential for therapeutic treatment of vasospasm following subarachnoid hemorrhage. This ultrasound-controlled release strategy provides a new avenue for targeted bioactive gas and therapeutic delivery for improved stroke treatment.
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spelling pubmed-38732372013-12-30 Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage Kim, Hyunggun Britton, George L Peng, Tao Holland, Christy K McPherson, David D Huang, Shao-Ling Int J Nanomedicine Original Research Delayed cerebral vasospasm following subarachnoid hemorrhage causes severe ischemic neurologic deficits leading to permanent neurologic dysfunction or death. Reduced intravascular and perivascular nitric oxide (NO) availability is a primary pathophysiology of cerebral vasospasm. In this study, we evaluated NO-loaded echogenic liposomes (NO-ELIP) for ultrasound-facilitated NO delivery to produce vasodilation for treatment of vasospasm following subarachnoid hemorrhage. We investigated the vasodilative effects of NO released from NO-ELIP both ex vivo and in vivo. Liposomes containing phospholipids and cholesterol were prepared, and NO was encapsulated. The encapsulation and release of NO from NO-ELIP were determined by the syringe/vacuum method and ultrasound imaging. The ex vivo vasodilative effect of NO-ELIP was investigated using rabbit carotid arteries. Arterial vasodilation was clearly observed with NO-ELIP exposed to Doppler ultrasound whereas there was little vasodilative effect without exposure to Doppler ultrasound in the presence of red blood cells. Penetration of NO into the arterial wall was determined by fluorescent microscopy. The vasodilative effects of intravenously administered NO-ELIP in vivo were determined in a rat subarachnoid hemorrhage model. NO-ELIP with ultrasound activation over the carotid artery demonstrated effective arterial vasodilation in vivo resulting in improved neurologic function. This novel methodology for ultrasound-controlled delivery of NO has the potential for therapeutic treatment of vasospasm following subarachnoid hemorrhage. This ultrasound-controlled release strategy provides a new avenue for targeted bioactive gas and therapeutic delivery for improved stroke treatment. Dove Medical Press 2013-12-21 /pmc/articles/PMC3873237/ /pubmed/24379666 http://dx.doi.org/10.2147/IJN.S48856 Text en © 2014 Kim et al. This work is published by Dove Medical Press Limited, and licensed under Creative Commons Attribution – Non Commercial (unported, v3.0) License The full terms of the License are available at http://creativecommons.org/licenses/by-nc/3.0/. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Kim, Hyunggun
Britton, George L
Peng, Tao
Holland, Christy K
McPherson, David D
Huang, Shao-Ling
Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
title Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
title_full Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
title_fullStr Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
title_full_unstemmed Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
title_short Nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
title_sort nitric oxide-loaded echogenic liposomes for treatment of vasospasm following subarachnoid hemorrhage
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3873237/
https://www.ncbi.nlm.nih.gov/pubmed/24379666
http://dx.doi.org/10.2147/IJN.S48856
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