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PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke

Ischemic stroke is a disturbance in cerebral blood flow caused by brain tissue ischemia and hypoxia. We optimized a multifactorial in vitro model of acute ischemic stroke using rat primary neural cultures. This model was exploited to investigate the pro-viable activity of cell-penetrating peptides:...

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Autores principales: Mazuryk, Jarosław, Puchalska, Izabela, Koziński, Kamil, Ślusarz, Magdalena J., Ruczyński, Jarosław, Rekowski, Piotr, Rogujski, Piotr, Płatek, Rafał, Wiśniewska, Marta Barbara, Piotrowski, Arkadiusz, Janus, Łukasz, Skowron, Piotr M., Pikuła, Michał, Sachadyn, Paweł, Rodziewicz-Motowidło, Sylwia, Czupryn, Artur, Mucha, Piotr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8200211/
https://www.ncbi.nlm.nih.gov/pubmed/34200045
http://dx.doi.org/10.3390/ijms22116086
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author Mazuryk, Jarosław
Puchalska, Izabela
Koziński, Kamil
Ślusarz, Magdalena J.
Ruczyński, Jarosław
Rekowski, Piotr
Rogujski, Piotr
Płatek, Rafał
Wiśniewska, Marta Barbara
Piotrowski, Arkadiusz
Janus, Łukasz
Skowron, Piotr M.
Pikuła, Michał
Sachadyn, Paweł
Rodziewicz-Motowidło, Sylwia
Czupryn, Artur
Mucha, Piotr
author_facet Mazuryk, Jarosław
Puchalska, Izabela
Koziński, Kamil
Ślusarz, Magdalena J.
Ruczyński, Jarosław
Rekowski, Piotr
Rogujski, Piotr
Płatek, Rafał
Wiśniewska, Marta Barbara
Piotrowski, Arkadiusz
Janus, Łukasz
Skowron, Piotr M.
Pikuła, Michał
Sachadyn, Paweł
Rodziewicz-Motowidło, Sylwia
Czupryn, Artur
Mucha, Piotr
author_sort Mazuryk, Jarosław
collection PubMed
description Ischemic stroke is a disturbance in cerebral blood flow caused by brain tissue ischemia and hypoxia. We optimized a multifactorial in vitro model of acute ischemic stroke using rat primary neural cultures. This model was exploited to investigate the pro-viable activity of cell-penetrating peptides: arginine-rich Tat(49–57)-NH(2) (R(49)KKRRQRRR(57)-amide) and its less basic analogue, PTD4 (Y(47)ARAAARQARA(57)-amide). Our model included glucose deprivation, oxidative stress, lactic acidosis, and excitotoxicity. Neurotoxicity of these peptides was excluded below a concentration of 50 μm, and PTD4-induced pro-survival was more pronounced. Circular dichroism spectroscopy and molecular dynamics (MD) calculations proved potential contribution of the peptide conformational properties to neuroprotection: in MD, Tat(49–57)-NH(2) adopted a random coil and polyproline type II helical structure, whereas PTD4 adopted a helical structure. In an aqueous environment, the peptides mostly adopted a random coil conformation (PTD4) or a polyproline type II helical (Tat(49–57)-NH(2)) structure. In 30% TFE, PTD4 showed a tendency to adopt a helical structure. Overall, the pro-viable activity of PTD4 was not correlated with the arginine content but rather with the peptide’s ability to adopt a helical structure in the membrane-mimicking environment, which enhances its cell membrane permeability. PTD4 may act as a leader sequence in novel drugs for the treatment of acute ischemic stroke.
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spelling pubmed-82002112021-06-14 PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke Mazuryk, Jarosław Puchalska, Izabela Koziński, Kamil Ślusarz, Magdalena J. Ruczyński, Jarosław Rekowski, Piotr Rogujski, Piotr Płatek, Rafał Wiśniewska, Marta Barbara Piotrowski, Arkadiusz Janus, Łukasz Skowron, Piotr M. Pikuła, Michał Sachadyn, Paweł Rodziewicz-Motowidło, Sylwia Czupryn, Artur Mucha, Piotr Int J Mol Sci Article Ischemic stroke is a disturbance in cerebral blood flow caused by brain tissue ischemia and hypoxia. We optimized a multifactorial in vitro model of acute ischemic stroke using rat primary neural cultures. This model was exploited to investigate the pro-viable activity of cell-penetrating peptides: arginine-rich Tat(49–57)-NH(2) (R(49)KKRRQRRR(57)-amide) and its less basic analogue, PTD4 (Y(47)ARAAARQARA(57)-amide). Our model included glucose deprivation, oxidative stress, lactic acidosis, and excitotoxicity. Neurotoxicity of these peptides was excluded below a concentration of 50 μm, and PTD4-induced pro-survival was more pronounced. Circular dichroism spectroscopy and molecular dynamics (MD) calculations proved potential contribution of the peptide conformational properties to neuroprotection: in MD, Tat(49–57)-NH(2) adopted a random coil and polyproline type II helical structure, whereas PTD4 adopted a helical structure. In an aqueous environment, the peptides mostly adopted a random coil conformation (PTD4) or a polyproline type II helical (Tat(49–57)-NH(2)) structure. In 30% TFE, PTD4 showed a tendency to adopt a helical structure. Overall, the pro-viable activity of PTD4 was not correlated with the arginine content but rather with the peptide’s ability to adopt a helical structure in the membrane-mimicking environment, which enhances its cell membrane permeability. PTD4 may act as a leader sequence in novel drugs for the treatment of acute ischemic stroke. MDPI 2021-06-04 /pmc/articles/PMC8200211/ /pubmed/34200045 http://dx.doi.org/10.3390/ijms22116086 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
Mazuryk, Jarosław
Puchalska, Izabela
Koziński, Kamil
Ślusarz, Magdalena J.
Ruczyński, Jarosław
Rekowski, Piotr
Rogujski, Piotr
Płatek, Rafał
Wiśniewska, Marta Barbara
Piotrowski, Arkadiusz
Janus, Łukasz
Skowron, Piotr M.
Pikuła, Michał
Sachadyn, Paweł
Rodziewicz-Motowidło, Sylwia
Czupryn, Artur
Mucha, Piotr
PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke
title PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke
title_full PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke
title_fullStr PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke
title_full_unstemmed PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke
title_short PTD4 Peptide Increases Neural Viability in an In Vitro Model of Acute Ischemic Stroke
title_sort ptd4 peptide increases neural viability in an in vitro model of acute ischemic stroke
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8200211/
https://www.ncbi.nlm.nih.gov/pubmed/34200045
http://dx.doi.org/10.3390/ijms22116086
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