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High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation

Glioblastoma is the deadliest malignant brain tumor. Its location behind the blood–brain barrier (BBB) presents a therapeutic challenge by preventing effective delivery of most chemotherapeutics. H-FIRE is a novel tumor ablation method that transiently disrupts the BBB through currently unknown mech...

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Autores principales: Partridge, Brittanie R., Kani, Yukitaka, Lorenzo, Melvin F., Campelo, Sabrina N., Allen, Irving C., Hinckley, Jonathan, Hsu, Fang-Chi, Verbridge, Scott S., Robertson, John L., Davalos, Rafael V., Rossmeisl, John H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9220673/
https://www.ncbi.nlm.nih.gov/pubmed/35740406
http://dx.doi.org/10.3390/biomedicines10061384
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author Partridge, Brittanie R.
Kani, Yukitaka
Lorenzo, Melvin F.
Campelo, Sabrina N.
Allen, Irving C.
Hinckley, Jonathan
Hsu, Fang-Chi
Verbridge, Scott S.
Robertson, John L.
Davalos, Rafael V.
Rossmeisl, John H.
author_facet Partridge, Brittanie R.
Kani, Yukitaka
Lorenzo, Melvin F.
Campelo, Sabrina N.
Allen, Irving C.
Hinckley, Jonathan
Hsu, Fang-Chi
Verbridge, Scott S.
Robertson, John L.
Davalos, Rafael V.
Rossmeisl, John H.
author_sort Partridge, Brittanie R.
collection PubMed
description Glioblastoma is the deadliest malignant brain tumor. Its location behind the blood–brain barrier (BBB) presents a therapeutic challenge by preventing effective delivery of most chemotherapeutics. H-FIRE is a novel tumor ablation method that transiently disrupts the BBB through currently unknown mechanisms. We hypothesized that H-FIRE mediated BBB disruption (BBBD) occurs via cytoskeletal remodeling and alterations in tight junction (TJ) protein regulation. Intracranial H-FIRE was delivered to Fischer rats prior to sacrifice at 1-, 24-, 48-, 72-, and 96 h post-treatment. Cytoskeletal proteins and native and ubiquitinated TJ proteins (TJP) were evaluated using immunoprecipitation, Western blotting, and gene-expression arrays on treated and sham control brain lysates. Cytoskeletal and TJ protein expression were further evaluated with immunofluorescent microscopy. A decrease in the F/G-actin ratio, decreased TJP concentrations, and increased ubiquitination of TJP were observed 1–48 h post-H-FIRE compared to sham controls. By 72–96 h, cytoskeletal and TJP expression recovered to pretreatment levels, temporally corresponding with increased claudin-5 and zonula occludens-1 gene expression. Ingenuity pathway analysis revealed significant dysregulation of claudin genes, centered around claudin-6 in H-FIRE treated rats. In conclusion, H-FIRE is capable of permeating the BBB in a spatiotemporal manner via cytoskeletal-mediated TJP modulation. This minimally invasive technology presents with applications for localized and long-lived enhanced intracranial drug delivery.
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spelling pubmed-92206732022-06-24 High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation Partridge, Brittanie R. Kani, Yukitaka Lorenzo, Melvin F. Campelo, Sabrina N. Allen, Irving C. Hinckley, Jonathan Hsu, Fang-Chi Verbridge, Scott S. Robertson, John L. Davalos, Rafael V. Rossmeisl, John H. Biomedicines Article Glioblastoma is the deadliest malignant brain tumor. Its location behind the blood–brain barrier (BBB) presents a therapeutic challenge by preventing effective delivery of most chemotherapeutics. H-FIRE is a novel tumor ablation method that transiently disrupts the BBB through currently unknown mechanisms. We hypothesized that H-FIRE mediated BBB disruption (BBBD) occurs via cytoskeletal remodeling and alterations in tight junction (TJ) protein regulation. Intracranial H-FIRE was delivered to Fischer rats prior to sacrifice at 1-, 24-, 48-, 72-, and 96 h post-treatment. Cytoskeletal proteins and native and ubiquitinated TJ proteins (TJP) were evaluated using immunoprecipitation, Western blotting, and gene-expression arrays on treated and sham control brain lysates. Cytoskeletal and TJ protein expression were further evaluated with immunofluorescent microscopy. A decrease in the F/G-actin ratio, decreased TJP concentrations, and increased ubiquitination of TJP were observed 1–48 h post-H-FIRE compared to sham controls. By 72–96 h, cytoskeletal and TJP expression recovered to pretreatment levels, temporally corresponding with increased claudin-5 and zonula occludens-1 gene expression. Ingenuity pathway analysis revealed significant dysregulation of claudin genes, centered around claudin-6 in H-FIRE treated rats. In conclusion, H-FIRE is capable of permeating the BBB in a spatiotemporal manner via cytoskeletal-mediated TJP modulation. This minimally invasive technology presents with applications for localized and long-lived enhanced intracranial drug delivery. MDPI 2022-06-11 /pmc/articles/PMC9220673/ /pubmed/35740406 http://dx.doi.org/10.3390/biomedicines10061384 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Partridge, Brittanie R.
Kani, Yukitaka
Lorenzo, Melvin F.
Campelo, Sabrina N.
Allen, Irving C.
Hinckley, Jonathan
Hsu, Fang-Chi
Verbridge, Scott S.
Robertson, John L.
Davalos, Rafael V.
Rossmeisl, John H.
High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation
title High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation
title_full High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation
title_fullStr High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation
title_full_unstemmed High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation
title_short High-Frequency Irreversible Electroporation (H-FIRE) Induced Blood–Brain Barrier Disruption Is Mediated by Cytoskeletal Remodeling and Changes in Tight Junction Protein Regulation
title_sort high-frequency irreversible electroporation (h-fire) induced blood–brain barrier disruption is mediated by cytoskeletal remodeling and changes in tight junction protein regulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9220673/
https://www.ncbi.nlm.nih.gov/pubmed/35740406
http://dx.doi.org/10.3390/biomedicines10061384
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