Cargando…
Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis
Blunt-force traumatic brain injury (TBI) affects an increasing number of people worldwide as the range of injury severity and heterogeneity of injury pathologies have been recognized. Most current damage models utilize non-regenerative organisms, less common TBI mechanisms (penetrating, chemical, bl...
Autores principales: | , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2021
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8389629/ https://www.ncbi.nlm.nih.gov/pubmed/34440066 http://dx.doi.org/10.3390/biomedicines9080861 |
_version_ | 1783742902939156480 |
---|---|
author | Hentig, James Cloghessy, Kaylee Lahne, Manuela Jung, Yoo Jin Petersen, Rebecca A. Morris, Ann C. Hyde, David R. |
author_facet | Hentig, James Cloghessy, Kaylee Lahne, Manuela Jung, Yoo Jin Petersen, Rebecca A. Morris, Ann C. Hyde, David R. |
author_sort | Hentig, James |
collection | PubMed |
description | Blunt-force traumatic brain injury (TBI) affects an increasing number of people worldwide as the range of injury severity and heterogeneity of injury pathologies have been recognized. Most current damage models utilize non-regenerative organisms, less common TBI mechanisms (penetrating, chemical, blast), and are limited in scalability of injury severity. We describe a scalable blunt-force TBI model that exhibits a wide range of human clinical pathologies and allows for the study of both injury pathology/progression and mechanisms of regenerative recovery. We modified the Marmarou weight drop model for adult zebrafish, which delivers a scalable injury spanning mild, moderate, and severe phenotypes. Following injury, zebrafish display a wide range of severity-dependent, injury-induced pathologies, including seizures, blood–brain barrier disruption, neuroinflammation, edema, vascular injury, decreased recovery rate, neuronal cell death, sensorimotor difficulties, and cognitive deficits. Injury-induced pathologies rapidly dissipate 4–7 days post-injury as robust cell proliferation is observed across the neuroaxis. In the cerebellum, proliferating nestin:GFP-positive cells originated from the cerebellar crest by 60 h post-injury, which then infiltrated into the granule cell layer and differentiated into neurons. Shh pathway genes increased in expression shortly following injury. Injection of the Shh agonist purmorphamine in undamaged fish induced a significant proliferative response, while the proliferative response was inhibited in injured fish treated with cyclopamine, a Shh antagonist. Collectively, these data demonstrate that a scalable blunt-force TBI to adult zebrafish results in many pathologies similar to human TBI, followed by recovery, and neuronal regeneration in a Shh-dependent manner. |
format | Online Article Text |
id | pubmed-8389629 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-83896292021-08-27 Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis Hentig, James Cloghessy, Kaylee Lahne, Manuela Jung, Yoo Jin Petersen, Rebecca A. Morris, Ann C. Hyde, David R. Biomedicines Article Blunt-force traumatic brain injury (TBI) affects an increasing number of people worldwide as the range of injury severity and heterogeneity of injury pathologies have been recognized. Most current damage models utilize non-regenerative organisms, less common TBI mechanisms (penetrating, chemical, blast), and are limited in scalability of injury severity. We describe a scalable blunt-force TBI model that exhibits a wide range of human clinical pathologies and allows for the study of both injury pathology/progression and mechanisms of regenerative recovery. We modified the Marmarou weight drop model for adult zebrafish, which delivers a scalable injury spanning mild, moderate, and severe phenotypes. Following injury, zebrafish display a wide range of severity-dependent, injury-induced pathologies, including seizures, blood–brain barrier disruption, neuroinflammation, edema, vascular injury, decreased recovery rate, neuronal cell death, sensorimotor difficulties, and cognitive deficits. Injury-induced pathologies rapidly dissipate 4–7 days post-injury as robust cell proliferation is observed across the neuroaxis. In the cerebellum, proliferating nestin:GFP-positive cells originated from the cerebellar crest by 60 h post-injury, which then infiltrated into the granule cell layer and differentiated into neurons. Shh pathway genes increased in expression shortly following injury. Injection of the Shh agonist purmorphamine in undamaged fish induced a significant proliferative response, while the proliferative response was inhibited in injured fish treated with cyclopamine, a Shh antagonist. Collectively, these data demonstrate that a scalable blunt-force TBI to adult zebrafish results in many pathologies similar to human TBI, followed by recovery, and neuronal regeneration in a Shh-dependent manner. MDPI 2021-07-22 /pmc/articles/PMC8389629/ /pubmed/34440066 http://dx.doi.org/10.3390/biomedicines9080861 Text en © 2021 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 Hentig, James Cloghessy, Kaylee Lahne, Manuela Jung, Yoo Jin Petersen, Rebecca A. Morris, Ann C. Hyde, David R. Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis |
title | Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis |
title_full | Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis |
title_fullStr | Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis |
title_full_unstemmed | Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis |
title_short | Zebrafish Blunt-Force TBI Induces Heterogenous Injury Pathologies That Mimic Human TBI and Responds with Sonic Hedgehog-Dependent Cell Proliferation across the Neuroaxis |
title_sort | zebrafish blunt-force tbi induces heterogenous injury pathologies that mimic human tbi and responds with sonic hedgehog-dependent cell proliferation across the neuroaxis |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8389629/ https://www.ncbi.nlm.nih.gov/pubmed/34440066 http://dx.doi.org/10.3390/biomedicines9080861 |
work_keys_str_mv | AT hentigjames zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis AT cloghessykaylee zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis AT lahnemanuela zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis AT jungyoojin zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis AT petersenrebeccaa zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis AT morrisannc zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis AT hydedavidr zebrafishbluntforcetbiinducesheterogenousinjurypathologiesthatmimichumantbiandrespondswithsonichedgehogdependentcellproliferationacrosstheneuroaxis |