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Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis

Tissue (re)vascularization strategies face various challenges, as therapeutic cells do not survive long enough in situ, while the administration of pro-angiogenic factors is hampered by fast clearance and insufficient ability to emulate complex spatiotemporal signaling. Here, we propose to address t...

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Autores principales: Später, Thomas, Assunção, Marisa, Lit, Kwok Keung, Gong, Guidong, Wang, Xiaoling, Chen, Yi-Yun, Rao, Ying, Li, Yucong, Yiu, Chi Him Kendrick, Laschke, Matthias W., Menger, Michael D., Wang, Dan, Tuan, Rocky S., Khoo, Kay-Hooi, Raghunath, Michael, Guo, Junling, Blocki, Anna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9270501/
https://www.ncbi.nlm.nih.gov/pubmed/35846945
http://dx.doi.org/10.1016/j.bioactmat.2022.03.015
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author Später, Thomas
Assunção, Marisa
Lit, Kwok Keung
Gong, Guidong
Wang, Xiaoling
Chen, Yi-Yun
Rao, Ying
Li, Yucong
Yiu, Chi Him Kendrick
Laschke, Matthias W.
Menger, Michael D.
Wang, Dan
Tuan, Rocky S.
Khoo, Kay-Hooi
Raghunath, Michael
Guo, Junling
Blocki, Anna
author_facet Später, Thomas
Assunção, Marisa
Lit, Kwok Keung
Gong, Guidong
Wang, Xiaoling
Chen, Yi-Yun
Rao, Ying
Li, Yucong
Yiu, Chi Him Kendrick
Laschke, Matthias W.
Menger, Michael D.
Wang, Dan
Tuan, Rocky S.
Khoo, Kay-Hooi
Raghunath, Michael
Guo, Junling
Blocki, Anna
author_sort Später, Thomas
collection PubMed
description Tissue (re)vascularization strategies face various challenges, as therapeutic cells do not survive long enough in situ, while the administration of pro-angiogenic factors is hampered by fast clearance and insufficient ability to emulate complex spatiotemporal signaling. Here, we propose to address these limitations by engineering a functional biomaterial capable of capturing and concentrating the pro-angiogenic activities of mesenchymal stem cells (MSCs). In particular, dextran sulfate, a high molecular weight sulfated glucose polymer, supplemented to MSC cultures, interacts with MSC-derived extracellular matrix (ECM) components and facilitates their co-assembly and accumulation in the pericellular space. Upon decellularization, the resulting dextran sulfate-ECM hybrid material can be processed into MIcroparticles of SOlidified Secretome (MIPSOS). The insoluble format of MIPSOS protects protein components from degradation, while facilitating their sustained release. Proteomic analysis demonstrates that MIPSOS are highly enriched in pro-angiogenic factors, resulting in an enhanced pro-angiogenic bioactivity when compared to naïve MSC-derived ECM (cECM). Consequently, intravital microscopy of full-thickness skin wounds treated with MIPSOS demonstrates accelerated revascularization and healing, far superior to the therapeutic potential of cECM. Hence, the microparticle-based solidified stem cell secretome provides a promising platform to address major limitations of current therapeutic angiogenesis approaches.
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spelling pubmed-92705012022-07-15 Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis Später, Thomas Assunção, Marisa Lit, Kwok Keung Gong, Guidong Wang, Xiaoling Chen, Yi-Yun Rao, Ying Li, Yucong Yiu, Chi Him Kendrick Laschke, Matthias W. Menger, Michael D. Wang, Dan Tuan, Rocky S. Khoo, Kay-Hooi Raghunath, Michael Guo, Junling Blocki, Anna Bioact Mater Article Tissue (re)vascularization strategies face various challenges, as therapeutic cells do not survive long enough in situ, while the administration of pro-angiogenic factors is hampered by fast clearance and insufficient ability to emulate complex spatiotemporal signaling. Here, we propose to address these limitations by engineering a functional biomaterial capable of capturing and concentrating the pro-angiogenic activities of mesenchymal stem cells (MSCs). In particular, dextran sulfate, a high molecular weight sulfated glucose polymer, supplemented to MSC cultures, interacts with MSC-derived extracellular matrix (ECM) components and facilitates their co-assembly and accumulation in the pericellular space. Upon decellularization, the resulting dextran sulfate-ECM hybrid material can be processed into MIcroparticles of SOlidified Secretome (MIPSOS). The insoluble format of MIPSOS protects protein components from degradation, while facilitating their sustained release. Proteomic analysis demonstrates that MIPSOS are highly enriched in pro-angiogenic factors, resulting in an enhanced pro-angiogenic bioactivity when compared to naïve MSC-derived ECM (cECM). Consequently, intravital microscopy of full-thickness skin wounds treated with MIPSOS demonstrates accelerated revascularization and healing, far superior to the therapeutic potential of cECM. Hence, the microparticle-based solidified stem cell secretome provides a promising platform to address major limitations of current therapeutic angiogenesis approaches. KeAi Publishing 2022-04-02 /pmc/articles/PMC9270501/ /pubmed/35846945 http://dx.doi.org/10.1016/j.bioactmat.2022.03.015 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Später, Thomas
Assunção, Marisa
Lit, Kwok Keung
Gong, Guidong
Wang, Xiaoling
Chen, Yi-Yun
Rao, Ying
Li, Yucong
Yiu, Chi Him Kendrick
Laschke, Matthias W.
Menger, Michael D.
Wang, Dan
Tuan, Rocky S.
Khoo, Kay-Hooi
Raghunath, Michael
Guo, Junling
Blocki, Anna
Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
title Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
title_full Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
title_fullStr Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
title_full_unstemmed Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
title_short Engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
title_sort engineering microparticles based on solidified stem cell secretome with an augmented pro-angiogenic factor portfolio for therapeutic angiogenesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9270501/
https://www.ncbi.nlm.nih.gov/pubmed/35846945
http://dx.doi.org/10.1016/j.bioactmat.2022.03.015
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