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The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury

Despite concerted efforts to identify CNS regeneration strategies, an incomplete understanding of how the needed molecular machinery is regulated limits progress. Here we use models of lateral compression and FEJOTA clip contusion-compression spinal cord injury (SCI) to identify the thrombin recepto...

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Autores principales: Triplet, Erin M., Kim, Ha Neui, Yoon, Hyesook, Radulovic, Maja, Kleppe, Laurel, Simon, Whitney L., Choi, Chan-il, Walsh, Patrick J., Dutton, James R., Scarisbrick, Isobel A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8021459/
https://www.ncbi.nlm.nih.gov/pubmed/33549720
http://dx.doi.org/10.1016/j.nbd.2021.105294
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author Triplet, Erin M.
Kim, Ha Neui
Yoon, Hyesook
Radulovic, Maja
Kleppe, Laurel
Simon, Whitney L.
Choi, Chan-il
Walsh, Patrick J.
Dutton, James R.
Scarisbrick, Isobel A.
author_facet Triplet, Erin M.
Kim, Ha Neui
Yoon, Hyesook
Radulovic, Maja
Kleppe, Laurel
Simon, Whitney L.
Choi, Chan-il
Walsh, Patrick J.
Dutton, James R.
Scarisbrick, Isobel A.
author_sort Triplet, Erin M.
collection PubMed
description Despite concerted efforts to identify CNS regeneration strategies, an incomplete understanding of how the needed molecular machinery is regulated limits progress. Here we use models of lateral compression and FEJOTA clip contusion-compression spinal cord injury (SCI) to identify the thrombin receptor (Protease Activated Receptor 1 (PAR1)) as an integral facet of this machine with roles in regulating neurite growth through a growth factor- and cholesterol-dependent mechanism. Functional recovery and signs of neural repair, including expression of cholesterol biosynthesis machinery and markers of axonal and synaptic integrity, were all increased after SCI in PAR1 knockout female mice, while PTEN was decreased. Notably, PAR1 differentially regulated HMGCS1, a gene encoding a rate-limiting enzyme in cholesterol production, across the neuronal and astroglial compartments of the intact versus injured spinal cord. Pharmacologic inhibition of cortical neuron PAR1 using vorapaxar in vitro also decreased PTEN and promoted neurite outgrowth in a cholesterol dependent manner, including that driven by suboptimal brain derived neurotrophic factor (BDNF). Pharmacologic inhibition of PAR1 also augmented BDNF-driven HMGCS1 and cholesterol production by murine cortical neurons and by human SH-SY5Y and iPSC-derived neurons. The link between PAR1, cholesterol and BDNF was further highlighted by demonstrating that the deleterious effects of PAR1 over-activation are overcome by supplementing cultures with BDNF, cholesterol or by blocking an inhibitor of adenylate cyclase, Gαi. These findings document PAR1-linked neurotrophic coupling mechanisms that regulate neuronal cholesterol metabolism as an important component of the machinery regulating CNS repair and point to new strategies to enhance neural resiliency after injury.
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spelling pubmed-80214592021-05-01 The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury Triplet, Erin M. Kim, Ha Neui Yoon, Hyesook Radulovic, Maja Kleppe, Laurel Simon, Whitney L. Choi, Chan-il Walsh, Patrick J. Dutton, James R. Scarisbrick, Isobel A. Neurobiol Dis Article Despite concerted efforts to identify CNS regeneration strategies, an incomplete understanding of how the needed molecular machinery is regulated limits progress. Here we use models of lateral compression and FEJOTA clip contusion-compression spinal cord injury (SCI) to identify the thrombin receptor (Protease Activated Receptor 1 (PAR1)) as an integral facet of this machine with roles in regulating neurite growth through a growth factor- and cholesterol-dependent mechanism. Functional recovery and signs of neural repair, including expression of cholesterol biosynthesis machinery and markers of axonal and synaptic integrity, were all increased after SCI in PAR1 knockout female mice, while PTEN was decreased. Notably, PAR1 differentially regulated HMGCS1, a gene encoding a rate-limiting enzyme in cholesterol production, across the neuronal and astroglial compartments of the intact versus injured spinal cord. Pharmacologic inhibition of cortical neuron PAR1 using vorapaxar in vitro also decreased PTEN and promoted neurite outgrowth in a cholesterol dependent manner, including that driven by suboptimal brain derived neurotrophic factor (BDNF). Pharmacologic inhibition of PAR1 also augmented BDNF-driven HMGCS1 and cholesterol production by murine cortical neurons and by human SH-SY5Y and iPSC-derived neurons. The link between PAR1, cholesterol and BDNF was further highlighted by demonstrating that the deleterious effects of PAR1 over-activation are overcome by supplementing cultures with BDNF, cholesterol or by blocking an inhibitor of adenylate cyclase, Gαi. These findings document PAR1-linked neurotrophic coupling mechanisms that regulate neuronal cholesterol metabolism as an important component of the machinery regulating CNS repair and point to new strategies to enhance neural resiliency after injury. 2021-02-05 2021-05 /pmc/articles/PMC8021459/ /pubmed/33549720 http://dx.doi.org/10.1016/j.nbd.2021.105294 Text en http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY-NC-ND license
spellingShingle Article
Triplet, Erin M.
Kim, Ha Neui
Yoon, Hyesook
Radulovic, Maja
Kleppe, Laurel
Simon, Whitney L.
Choi, Chan-il
Walsh, Patrick J.
Dutton, James R.
Scarisbrick, Isobel A.
The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
title The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
title_full The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
title_fullStr The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
title_full_unstemmed The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
title_short The thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
title_sort thrombin receptor links brain derived neurotrophic factor to neuron cholesterol production, resiliency and repair after spinal cord injury
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8021459/
https://www.ncbi.nlm.nih.gov/pubmed/33549720
http://dx.doi.org/10.1016/j.nbd.2021.105294
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