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MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects

Rationale: Efficient labeling methods for mesenchymal stem cells (MSCs) are crucial for tracking and understanding their behavior in regenerative medicine applications, particularly in cartilage defects. MegaPro nanoparticles have emerged as a potential alternative to ferumoxytol nanoparticles for t...

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Autores principales: Suryadevara, Vidyani, Hajipour, Mohammad Javad, Adams, Lisa C., Aissaoui, Nour Mary, Rashidi, Ali, Kiru, Louise, Theruvath, Ashok J., Huang, Ching‐Hsin, Maruyama, Masahiro, Tsubosaka, Masanori, Lyons, Jennifer K., Wu, Wei (Emma), Roudi, Raheleh, Goodman, Stuart B., Daldrup‐Link, Heike E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10196837/
https://www.ncbi.nlm.nih.gov/pubmed/37215574
http://dx.doi.org/10.7150/thno.82620
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author Suryadevara, Vidyani
Hajipour, Mohammad Javad
Adams, Lisa C.
Aissaoui, Nour Mary
Rashidi, Ali
Kiru, Louise
Theruvath, Ashok J.
Huang, Ching‐Hsin
Maruyama, Masahiro
Tsubosaka, Masanori
Lyons, Jennifer K.
Wu, Wei (Emma)
Roudi, Raheleh
Goodman, Stuart B.
Daldrup‐Link, Heike E.
author_facet Suryadevara, Vidyani
Hajipour, Mohammad Javad
Adams, Lisa C.
Aissaoui, Nour Mary
Rashidi, Ali
Kiru, Louise
Theruvath, Ashok J.
Huang, Ching‐Hsin
Maruyama, Masahiro
Tsubosaka, Masanori
Lyons, Jennifer K.
Wu, Wei (Emma)
Roudi, Raheleh
Goodman, Stuart B.
Daldrup‐Link, Heike E.
author_sort Suryadevara, Vidyani
collection PubMed
description Rationale: Efficient labeling methods for mesenchymal stem cells (MSCs) are crucial for tracking and understanding their behavior in regenerative medicine applications, particularly in cartilage defects. MegaPro nanoparticles have emerged as a potential alternative to ferumoxytol nanoparticles for this purpose. Methods: In this study, we employed mechanoporation to develop an efficient labeling method for MSCs using MegaPro nanoparticles and compared their effectiveness with ferumoxytol nanoparticles in tracking MSCs and chondrogenic pellets. Pig MSCs were labeled with both nanoparticles using a custom-made microfluidic device, and their characteristics were analyzed using various imaging and spectroscopy techniques. The viability and differentiation capacity of labeled MSCs were also assessed. Labeled MSCs and chondrogenic pellets were implanted into pig knee joints and monitored using MRI and histological analysis. Results: MegaPro-labeled MSCs demonstrated shorter T2 relaxation times, higher iron content, and greater nanoparticle uptake compared to ferumoxytol-labeled MSCs, without significantly affecting their viability and differentiation capacity. Post-implantation, MegaPro-labeled MSCs and chondrogenic pellets displayed a strong hypointense signal on MRI with considerably shorter T2* relaxation times compared to adjacent cartilage. The hypointense signal of both MegaPro- and ferumoxytol-labeled chondrogenic pellets decreased over time. Histological evaluations showed regenerated defect areas and proteoglycan formation with no significant differences between the labeled groups. Conclusion: Our study demonstrates that mechanoporation with MegaPro nanoparticles enables efficient MSC labeling without affecting viability or differentiation. MegaPro-labeled cells show enhanced MRI tracking compared to ferumoxytol-labeled cells, emphasizing their potential in clinical stem cell therapies for cartilage defects.
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spelling pubmed-101968372023-05-20 MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects Suryadevara, Vidyani Hajipour, Mohammad Javad Adams, Lisa C. Aissaoui, Nour Mary Rashidi, Ali Kiru, Louise Theruvath, Ashok J. Huang, Ching‐Hsin Maruyama, Masahiro Tsubosaka, Masanori Lyons, Jennifer K. Wu, Wei (Emma) Roudi, Raheleh Goodman, Stuart B. Daldrup‐Link, Heike E. Theranostics Research Paper Rationale: Efficient labeling methods for mesenchymal stem cells (MSCs) are crucial for tracking and understanding their behavior in regenerative medicine applications, particularly in cartilage defects. MegaPro nanoparticles have emerged as a potential alternative to ferumoxytol nanoparticles for this purpose. Methods: In this study, we employed mechanoporation to develop an efficient labeling method for MSCs using MegaPro nanoparticles and compared their effectiveness with ferumoxytol nanoparticles in tracking MSCs and chondrogenic pellets. Pig MSCs were labeled with both nanoparticles using a custom-made microfluidic device, and their characteristics were analyzed using various imaging and spectroscopy techniques. The viability and differentiation capacity of labeled MSCs were also assessed. Labeled MSCs and chondrogenic pellets were implanted into pig knee joints and monitored using MRI and histological analysis. Results: MegaPro-labeled MSCs demonstrated shorter T2 relaxation times, higher iron content, and greater nanoparticle uptake compared to ferumoxytol-labeled MSCs, without significantly affecting their viability and differentiation capacity. Post-implantation, MegaPro-labeled MSCs and chondrogenic pellets displayed a strong hypointense signal on MRI with considerably shorter T2* relaxation times compared to adjacent cartilage. The hypointense signal of both MegaPro- and ferumoxytol-labeled chondrogenic pellets decreased over time. Histological evaluations showed regenerated defect areas and proteoglycan formation with no significant differences between the labeled groups. Conclusion: Our study demonstrates that mechanoporation with MegaPro nanoparticles enables efficient MSC labeling without affecting viability or differentiation. MegaPro-labeled cells show enhanced MRI tracking compared to ferumoxytol-labeled cells, emphasizing their potential in clinical stem cell therapies for cartilage defects. Ivyspring International Publisher 2023-04-29 /pmc/articles/PMC10196837/ /pubmed/37215574 http://dx.doi.org/10.7150/thno.82620 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Suryadevara, Vidyani
Hajipour, Mohammad Javad
Adams, Lisa C.
Aissaoui, Nour Mary
Rashidi, Ali
Kiru, Louise
Theruvath, Ashok J.
Huang, Ching‐Hsin
Maruyama, Masahiro
Tsubosaka, Masanori
Lyons, Jennifer K.
Wu, Wei (Emma)
Roudi, Raheleh
Goodman, Stuart B.
Daldrup‐Link, Heike E.
MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
title MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
title_full MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
title_fullStr MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
title_full_unstemmed MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
title_short MegaPro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
title_sort megapro, a clinically translatable nanoparticle for in vivo tracking of stem cell implants in pig cartilage defects
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10196837/
https://www.ncbi.nlm.nih.gov/pubmed/37215574
http://dx.doi.org/10.7150/thno.82620
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