Cargando…

Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1

The evidence sustaining the regenerative properties of mesenchymal stem cells’ (MSCs) secretome has prompted a paradigm change, where MSCs have shifted from being considered direct contributors to tissue regeneration toward being seen as cell factories for producing biotech medicines. We have previo...

Descripción completa

Detalles Bibliográficos
Autores principales: García-Sánchez, Daniel, González-González, Alberto, Álvarez-Iglesias, Itzíar, del Dujo-Gutiérrez, Mónica, Bolado-Carrancio, Alfonso, Certo, Matilde, Pérez-Núñez, María Isabel, Riancho, José A., Rodríguez-Rey, José Carlos, Delgado-Calle, Jesús, Pérez-Campo, Flor María
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419110/
https://www.ncbi.nlm.nih.gov/pubmed/37569774
http://dx.doi.org/10.3390/ijms241512399
_version_ 1785088432259727360
author García-Sánchez, Daniel
González-González, Alberto
Álvarez-Iglesias, Itzíar
del Dujo-Gutiérrez, Mónica
Bolado-Carrancio, Alfonso
Certo, Matilde
Pérez-Núñez, María Isabel
Riancho, José A.
Rodríguez-Rey, José Carlos
Delgado-Calle, Jesús
Pérez-Campo, Flor María
author_facet García-Sánchez, Daniel
González-González, Alberto
Álvarez-Iglesias, Itzíar
del Dujo-Gutiérrez, Mónica
Bolado-Carrancio, Alfonso
Certo, Matilde
Pérez-Núñez, María Isabel
Riancho, José A.
Rodríguez-Rey, José Carlos
Delgado-Calle, Jesús
Pérez-Campo, Flor María
author_sort García-Sánchez, Daniel
collection PubMed
description The evidence sustaining the regenerative properties of mesenchymal stem cells’ (MSCs) secretome has prompted a paradigm change, where MSCs have shifted from being considered direct contributors to tissue regeneration toward being seen as cell factories for producing biotech medicines. We have previously designed a method to prime MSCs towards osteogenic differentiation by silencing the Wnt/β-Catenin inhibitor Sfpr1. This approach produces a significant increase in bone formation in osteoporotic mice. In this current work, we set to investigate the contribution of the secretome from the MSCs where Sfrp1 has been silenced, to the positive effect seen on bone regeneration in vivo. The conditioned media (CM) of the murine MSCs line C3H10T1/2, where Sfrp1 has been transiently silenced (CM-Sfrp1), was found to induce, in vitro, an increase in the osteogenic differentiation of this same cell line, as well as a decrease of the expression of the Wnt inhibitor Dkk1 in murine osteocytes ex vivo. A reduction in the RANKL/OPG ratio was also detected ex vivo, suggesting a negative effect of CM-Sfrp1 on osteoclastogenesis. Moreover, this CM significantly increases the mineralization of human primary MSCs isolated from osteoportotic patients in vitro. Proteomic analysis identified enrichment of proteins involved in osteogenesis within the soluble and vesicular fractions of this secretome. Altogether, we demonstrate the pro-osteogenic potential of the secretome of MSCs primmed in this fashion, suggesting that this is a valid approach to enhance the osteo-regenerative properties of MSCs’ secretome.
format Online
Article
Text
id pubmed-10419110
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-104191102023-08-12 Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1 García-Sánchez, Daniel González-González, Alberto Álvarez-Iglesias, Itzíar del Dujo-Gutiérrez, Mónica Bolado-Carrancio, Alfonso Certo, Matilde Pérez-Núñez, María Isabel Riancho, José A. Rodríguez-Rey, José Carlos Delgado-Calle, Jesús Pérez-Campo, Flor María Int J Mol Sci Article The evidence sustaining the regenerative properties of mesenchymal stem cells’ (MSCs) secretome has prompted a paradigm change, where MSCs have shifted from being considered direct contributors to tissue regeneration toward being seen as cell factories for producing biotech medicines. We have previously designed a method to prime MSCs towards osteogenic differentiation by silencing the Wnt/β-Catenin inhibitor Sfpr1. This approach produces a significant increase in bone formation in osteoporotic mice. In this current work, we set to investigate the contribution of the secretome from the MSCs where Sfrp1 has been silenced, to the positive effect seen on bone regeneration in vivo. The conditioned media (CM) of the murine MSCs line C3H10T1/2, where Sfrp1 has been transiently silenced (CM-Sfrp1), was found to induce, in vitro, an increase in the osteogenic differentiation of this same cell line, as well as a decrease of the expression of the Wnt inhibitor Dkk1 in murine osteocytes ex vivo. A reduction in the RANKL/OPG ratio was also detected ex vivo, suggesting a negative effect of CM-Sfrp1 on osteoclastogenesis. Moreover, this CM significantly increases the mineralization of human primary MSCs isolated from osteoportotic patients in vitro. Proteomic analysis identified enrichment of proteins involved in osteogenesis within the soluble and vesicular fractions of this secretome. Altogether, we demonstrate the pro-osteogenic potential of the secretome of MSCs primmed in this fashion, suggesting that this is a valid approach to enhance the osteo-regenerative properties of MSCs’ secretome. MDPI 2023-08-03 /pmc/articles/PMC10419110/ /pubmed/37569774 http://dx.doi.org/10.3390/ijms241512399 Text en © 2023 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
García-Sánchez, Daniel
González-González, Alberto
Álvarez-Iglesias, Itzíar
del Dujo-Gutiérrez, Mónica
Bolado-Carrancio, Alfonso
Certo, Matilde
Pérez-Núñez, María Isabel
Riancho, José A.
Rodríguez-Rey, José Carlos
Delgado-Calle, Jesús
Pérez-Campo, Flor María
Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1
title Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1
title_full Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1
title_fullStr Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1
title_full_unstemmed Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1
title_short Engineering a Pro-Osteogenic Secretome through the Transient Silencing of the Gene Encoding Secreted Frizzled Related Protein 1
title_sort engineering a pro-osteogenic secretome through the transient silencing of the gene encoding secreted frizzled related protein 1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419110/
https://www.ncbi.nlm.nih.gov/pubmed/37569774
http://dx.doi.org/10.3390/ijms241512399
work_keys_str_mv AT garciasanchezdaniel engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT gonzalezgonzalezalberto engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT alvareziglesiasitziar engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT deldujogutierrezmonica engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT boladocarrancioalfonso engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT certomatilde engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT pereznunezmariaisabel engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT rianchojosea engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT rodriguezreyjosecarlos engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT delgadocallejesus engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1
AT perezcampoflormaria engineeringaproosteogenicsecretomethroughthetransientsilencingofthegeneencodingsecretedfrizzledrelatedprotein1