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Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model

Rationale: The blood-brain barrier (BBB) while functioning as a gatekeeper of the brain, impedes cerebral drug delivery. An emerging technology to overcome this limitation is focused ultrasound (FUS). When FUS interacts with intravenously injected microbubbles (FUS(+MB)), the BBB opens, transiently...

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Autores principales: Chen, Liyu, Sutharsan, Ratneswary, Lee, Jonathan LF, Cruz, Esteban, Asnicar, Blaise, Palliyaguru, Tishila, Wasielewska, Joanna M, Gaudin, Arnaud, Song, Jae, Leinenga, Gerhard, Götz, Jürgen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8899584/
https://www.ncbi.nlm.nih.gov/pubmed/35265192
http://dx.doi.org/10.7150/thno.65539
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author Chen, Liyu
Sutharsan, Ratneswary
Lee, Jonathan LF
Cruz, Esteban
Asnicar, Blaise
Palliyaguru, Tishila
Wasielewska, Joanna M
Gaudin, Arnaud
Song, Jae
Leinenga, Gerhard
Götz, Jürgen
author_facet Chen, Liyu
Sutharsan, Ratneswary
Lee, Jonathan LF
Cruz, Esteban
Asnicar, Blaise
Palliyaguru, Tishila
Wasielewska, Joanna M
Gaudin, Arnaud
Song, Jae
Leinenga, Gerhard
Götz, Jürgen
author_sort Chen, Liyu
collection PubMed
description Rationale: The blood-brain barrier (BBB) while functioning as a gatekeeper of the brain, impedes cerebral drug delivery. An emerging technology to overcome this limitation is focused ultrasound (FUS). When FUS interacts with intravenously injected microbubbles (FUS(+MB)), the BBB opens, transiently allowing the access of therapeutic agents into the brain. However, the ultrasound parameters need to be tightly tuned: when the acoustic pressure is too low there is no opening, and when it is too high, tissue damage can occur. We therefore asked whether barrier permeability can be increased by combining FUS(+MB) with a second modality such that in a clinical setting lower acoustic pressures could be used. Methods: Given that FUS(+MB) achieves BBB opening in part by disruption of tight junction (TJ) proteins such as claudin-5 of brain endothelial cells, we generated a stable MDCK (Madin-Darby Canine Kidney) II cell line (eGFP-hCldn5-MDCK II) that expresses fluorescently tagged human claudin-5. Two claudin-5 binders, the peptide mC5C2 and cCPEm (truncated form of an enterotoxin), reported previously to weaken the barrier, were synthesized and assessed for their abilities to enhance the permeability of cellular monolayers. We then performed a comparative analysis of single and combination treatments, measuring transendothelial electrical resistance (TEER) and cargo leakage, combined with confocal image analysis. Results: We successfully generated a novel cell line that formed functional monolayers as validated by an increased TEER reading and a low (< 0.2%) permeability to sodium fluorescein (376 Da). We found that the binders exerted a time- and concentration-dependent effect on barrier opening when incubated over an extended period, whereas FUS(+MB) caused a rapid opening followed by recovery after 12 hours within the tested pressure range. Importantly, preincubation with cCPEm prior to FUS(+MB) treatment resulted in greater barrier opening compared to either FUS(+MB) or cCPEm alone as measured by reduced TEER values and an increased permeability to fluorescently labelled 40 kDa dextran (FD40). Conclusion: The data suggest that pre incubation with clinically suitable binders to TJ proteins may be a general strategy to facilitate safer and more effective ultrasound-mediated BBB opening in cellular and animal systems and potentially also for the treatment of human diseases of the brain.
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spelling pubmed-88995842022-03-08 Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model Chen, Liyu Sutharsan, Ratneswary Lee, Jonathan LF Cruz, Esteban Asnicar, Blaise Palliyaguru, Tishila Wasielewska, Joanna M Gaudin, Arnaud Song, Jae Leinenga, Gerhard Götz, Jürgen Theranostics Research Paper Rationale: The blood-brain barrier (BBB) while functioning as a gatekeeper of the brain, impedes cerebral drug delivery. An emerging technology to overcome this limitation is focused ultrasound (FUS). When FUS interacts with intravenously injected microbubbles (FUS(+MB)), the BBB opens, transiently allowing the access of therapeutic agents into the brain. However, the ultrasound parameters need to be tightly tuned: when the acoustic pressure is too low there is no opening, and when it is too high, tissue damage can occur. We therefore asked whether barrier permeability can be increased by combining FUS(+MB) with a second modality such that in a clinical setting lower acoustic pressures could be used. Methods: Given that FUS(+MB) achieves BBB opening in part by disruption of tight junction (TJ) proteins such as claudin-5 of brain endothelial cells, we generated a stable MDCK (Madin-Darby Canine Kidney) II cell line (eGFP-hCldn5-MDCK II) that expresses fluorescently tagged human claudin-5. Two claudin-5 binders, the peptide mC5C2 and cCPEm (truncated form of an enterotoxin), reported previously to weaken the barrier, were synthesized and assessed for their abilities to enhance the permeability of cellular monolayers. We then performed a comparative analysis of single and combination treatments, measuring transendothelial electrical resistance (TEER) and cargo leakage, combined with confocal image analysis. Results: We successfully generated a novel cell line that formed functional monolayers as validated by an increased TEER reading and a low (< 0.2%) permeability to sodium fluorescein (376 Da). We found that the binders exerted a time- and concentration-dependent effect on barrier opening when incubated over an extended period, whereas FUS(+MB) caused a rapid opening followed by recovery after 12 hours within the tested pressure range. Importantly, preincubation with cCPEm prior to FUS(+MB) treatment resulted in greater barrier opening compared to either FUS(+MB) or cCPEm alone as measured by reduced TEER values and an increased permeability to fluorescently labelled 40 kDa dextran (FD40). Conclusion: The data suggest that pre incubation with clinically suitable binders to TJ proteins may be a general strategy to facilitate safer and more effective ultrasound-mediated BBB opening in cellular and animal systems and potentially also for the treatment of human diseases of the brain. Ivyspring International Publisher 2022-01-31 /pmc/articles/PMC8899584/ /pubmed/35265192 http://dx.doi.org/10.7150/thno.65539 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Chen, Liyu
Sutharsan, Ratneswary
Lee, Jonathan LF
Cruz, Esteban
Asnicar, Blaise
Palliyaguru, Tishila
Wasielewska, Joanna M
Gaudin, Arnaud
Song, Jae
Leinenga, Gerhard
Götz, Jürgen
Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
title Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
title_full Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
title_fullStr Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
title_full_unstemmed Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
title_short Claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
title_sort claudin-5 binder enhances focused ultrasound-mediated opening in an in vitro blood-brain barrier model
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8899584/
https://www.ncbi.nlm.nih.gov/pubmed/35265192
http://dx.doi.org/10.7150/thno.65539
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