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Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept

The present work aimed to evaluate the healing effect of hydrophilic polymeric resorbable biomembrane scaffolds containing plant extracts obtained from two different species, both popularly known as Stryphnodendron adstringens or Barbatimão. The hydrogel-based scaffolds were characterized and submit...

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Autores principales: Alves, Maria C. M. A., Nascimento, Marismar F., de Almeida, Bernadeth M., Alves, Matheus M. A., Lima-Verde, Isabel B., Costa, Daniela S., Araújo, Daniela C. Medeiros, de Paula, Mariana N., de Mello, João C. P., Cano, Amanda, Severino, Patricia, de Albuquerque-Júnior, Ricardo L. C., Souto, Eliana B., Cardoso, Juliana C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9612092/
https://www.ncbi.nlm.nih.gov/pubmed/36297589
http://dx.doi.org/10.3390/pharmaceutics14102150
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author Alves, Maria C. M. A.
Nascimento, Marismar F.
de Almeida, Bernadeth M.
Alves, Matheus M. A.
Lima-Verde, Isabel B.
Costa, Daniela S.
Araújo, Daniela C. Medeiros
de Paula, Mariana N.
de Mello, João C. P.
Cano, Amanda
Severino, Patricia
de Albuquerque-Júnior, Ricardo L. C.
Souto, Eliana B.
Cardoso, Juliana C.
author_facet Alves, Maria C. M. A.
Nascimento, Marismar F.
de Almeida, Bernadeth M.
Alves, Matheus M. A.
Lima-Verde, Isabel B.
Costa, Daniela S.
Araújo, Daniela C. Medeiros
de Paula, Mariana N.
de Mello, João C. P.
Cano, Amanda
Severino, Patricia
de Albuquerque-Júnior, Ricardo L. C.
Souto, Eliana B.
Cardoso, Juliana C.
author_sort Alves, Maria C. M. A.
collection PubMed
description The present work aimed to evaluate the healing effect of hydrophilic polymeric resorbable biomembrane scaffolds containing plant extracts obtained from two different species, both popularly known as Stryphnodendron adstringens or Barbatimão. The hydrogel-based scaffolds were characterized and submitted to biological tests using Wistar rats to evaluate their healing capacity. The wound retraction index and the evaluation of the inflammatory process and tissue collagenization were recorded. The extracts showed antioxidant activity with IC50 between 10 and 20 µg/mL (DPPH assay) and 4–6 mmol Trolox/g (FRAP assay). The extract of Stryphnodendron adstringens (SA) presented gallocatechin, epigallocatechin, and O-methylpigalocatechin, while the extract of Abarema cochliacarpa (AC) presented catechin, dimers of procyanidins, di-O-hydroxide, O-deoxyhexosi-hexoside, and epicatechin. The membranes containing SA extract (GELSA) were more rigid, with a more intense color, but less thick, with a more compact structure and few pores. The membranes containing AC extract (GELAC) presented a mechanical profile like the gelatin membrane (GEL), with greater permeability to water vapor. The GELAC and GELSA membranes showed similar thermal degradation profiles. The wounds treated with the membranes containing the extracts obtained high levels of retraction of the wounds with values around 60% and 80% in three and seven days, respectively. These data indicate that the compounds of both species have promising biological activities in the repair process, showing that the extracts accelerated the healing process due to the lower intensity of the inflammatory reaction and the presence of compounds such as catechin and epigallocatechin.
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spelling pubmed-96120922022-10-28 Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept Alves, Maria C. M. A. Nascimento, Marismar F. de Almeida, Bernadeth M. Alves, Matheus M. A. Lima-Verde, Isabel B. Costa, Daniela S. Araújo, Daniela C. Medeiros de Paula, Mariana N. de Mello, João C. P. Cano, Amanda Severino, Patricia de Albuquerque-Júnior, Ricardo L. C. Souto, Eliana B. Cardoso, Juliana C. Pharmaceutics Article The present work aimed to evaluate the healing effect of hydrophilic polymeric resorbable biomembrane scaffolds containing plant extracts obtained from two different species, both popularly known as Stryphnodendron adstringens or Barbatimão. The hydrogel-based scaffolds were characterized and submitted to biological tests using Wistar rats to evaluate their healing capacity. The wound retraction index and the evaluation of the inflammatory process and tissue collagenization were recorded. The extracts showed antioxidant activity with IC50 between 10 and 20 µg/mL (DPPH assay) and 4–6 mmol Trolox/g (FRAP assay). The extract of Stryphnodendron adstringens (SA) presented gallocatechin, epigallocatechin, and O-methylpigalocatechin, while the extract of Abarema cochliacarpa (AC) presented catechin, dimers of procyanidins, di-O-hydroxide, O-deoxyhexosi-hexoside, and epicatechin. The membranes containing SA extract (GELSA) were more rigid, with a more intense color, but less thick, with a more compact structure and few pores. The membranes containing AC extract (GELAC) presented a mechanical profile like the gelatin membrane (GEL), with greater permeability to water vapor. The GELAC and GELSA membranes showed similar thermal degradation profiles. The wounds treated with the membranes containing the extracts obtained high levels of retraction of the wounds with values around 60% and 80% in three and seven days, respectively. These data indicate that the compounds of both species have promising biological activities in the repair process, showing that the extracts accelerated the healing process due to the lower intensity of the inflammatory reaction and the presence of compounds such as catechin and epigallocatechin. MDPI 2022-10-10 /pmc/articles/PMC9612092/ /pubmed/36297589 http://dx.doi.org/10.3390/pharmaceutics14102150 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
Alves, Maria C. M. A.
Nascimento, Marismar F.
de Almeida, Bernadeth M.
Alves, Matheus M. A.
Lima-Verde, Isabel B.
Costa, Daniela S.
Araújo, Daniela C. Medeiros
de Paula, Mariana N.
de Mello, João C. P.
Cano, Amanda
Severino, Patricia
de Albuquerque-Júnior, Ricardo L. C.
Souto, Eliana B.
Cardoso, Juliana C.
Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept
title Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept
title_full Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept
title_fullStr Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept
title_full_unstemmed Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept
title_short Hydrophilic Scaffolds Containing Extracts of Stryphnodendron adstringens and Abarema cochliacarpa for Wound Healing: In Vivo Proofs of Concept
title_sort hydrophilic scaffolds containing extracts of stryphnodendron adstringens and abarema cochliacarpa for wound healing: in vivo proofs of concept
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9612092/
https://www.ncbi.nlm.nih.gov/pubmed/36297589
http://dx.doi.org/10.3390/pharmaceutics14102150
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