Cargando…

NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY

Intervertebral disc (IVD) degeneration is characterized by decreased cellularity and proteoglycan synthesis and increased inflammation, catabolism, and neural/vascular ingrowth. Regenerative methods for IVD degeneration are largely cell-therapy-based or involve viral vectors, which are associated wi...

Descripción completa

Detalles Bibliográficos
Autores principales: Tang, S., Salazar-Puerta, A., Richards, J., Khan, S., Hoyland, J.A., Gallego-Perez, D., Walter, B., Higuita-Castro, N., Purmessur, D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8514169/
https://www.ncbi.nlm.nih.gov/pubmed/33465243
http://dx.doi.org/10.22203/eCM.v041a07
_version_ 1784583331021586432
author Tang, S.
Salazar-Puerta, A.
Richards, J.
Khan, S.
Hoyland, J.A.
Gallego-Perez, D.
Walter, B.
Higuita-Castro, N.
Purmessur, D.
author_facet Tang, S.
Salazar-Puerta, A.
Richards, J.
Khan, S.
Hoyland, J.A.
Gallego-Perez, D.
Walter, B.
Higuita-Castro, N.
Purmessur, D.
author_sort Tang, S.
collection PubMed
description Intervertebral disc (IVD) degeneration is characterized by decreased cellularity and proteoglycan synthesis and increased inflammation, catabolism, and neural/vascular ingrowth. Regenerative methods for IVD degeneration are largely cell-therapy-based or involve viral vectors, which are associated with mutagenesis and undesired immune responses. The present study used bulk electroporation and engineered extracellular vesicles (EVs) to deliver forkhead-box F1 (FOXF1) mRNA to degenerate human nucleus pulposus (NP) cells as a minimally invasive therapeutic strategy for IVD regeneration. Bulk electroporation was used to investigate FOXF1 effects on human NP cells during a 4-week culture in 3D agarose constructs. Engineered EV delivery of FOXF1 into human IVD cells in monolayer was determined, with subsequent in vivo validation in a pilot mouse IVD puncture model. FOXF1 transfection significantly altered gene expression by upregulating healthy NP markers [FOXF1, keratin 19 (KRT19)], decreasing inflammatory cytokines [interleukin (IL)-1β, −6], catabolic enzymes [metalloproteinase 13 (MMP13)] and nerve growth factor (NGF), with significant increases in glycosaminoglycan accumulation in human NP cells. Engineered EVs loaded with FOXF1 demonstrated successful encapsulation of FOXF1 cargo and effective uptake by human NP cells cultured in monolayer. Injection of FOXF1-loaded EVs into the mouse IVD in vivo resulted in a significant upregulation of FOXF1 and Brachyury, compared to controls at 7 d post-injection, with no evidence of cytotoxicity. This is the first study to demonstrate non-viral delivery of FOXF1 and reprogramming of human NP cells in vitro and mouse IVD cells in vivo. This strategy represents a non-addictive approach for treating IVD degeneration and associated back pain.
format Online
Article
Text
id pubmed-8514169
institution National Center for Biotechnology Information
language English
publishDate 2021
record_format MEDLINE/PubMed
spelling pubmed-85141692022-01-19 NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY Tang, S. Salazar-Puerta, A. Richards, J. Khan, S. Hoyland, J.A. Gallego-Perez, D. Walter, B. Higuita-Castro, N. Purmessur, D. Eur Cell Mater Article Intervertebral disc (IVD) degeneration is characterized by decreased cellularity and proteoglycan synthesis and increased inflammation, catabolism, and neural/vascular ingrowth. Regenerative methods for IVD degeneration are largely cell-therapy-based or involve viral vectors, which are associated with mutagenesis and undesired immune responses. The present study used bulk electroporation and engineered extracellular vesicles (EVs) to deliver forkhead-box F1 (FOXF1) mRNA to degenerate human nucleus pulposus (NP) cells as a minimally invasive therapeutic strategy for IVD regeneration. Bulk electroporation was used to investigate FOXF1 effects on human NP cells during a 4-week culture in 3D agarose constructs. Engineered EV delivery of FOXF1 into human IVD cells in monolayer was determined, with subsequent in vivo validation in a pilot mouse IVD puncture model. FOXF1 transfection significantly altered gene expression by upregulating healthy NP markers [FOXF1, keratin 19 (KRT19)], decreasing inflammatory cytokines [interleukin (IL)-1β, −6], catabolic enzymes [metalloproteinase 13 (MMP13)] and nerve growth factor (NGF), with significant increases in glycosaminoglycan accumulation in human NP cells. Engineered EVs loaded with FOXF1 demonstrated successful encapsulation of FOXF1 cargo and effective uptake by human NP cells cultured in monolayer. Injection of FOXF1-loaded EVs into the mouse IVD in vivo resulted in a significant upregulation of FOXF1 and Brachyury, compared to controls at 7 d post-injection, with no evidence of cytotoxicity. This is the first study to demonstrate non-viral delivery of FOXF1 and reprogramming of human NP cells in vitro and mouse IVD cells in vivo. This strategy represents a non-addictive approach for treating IVD degeneration and associated back pain. 2021-01-19 /pmc/articles/PMC8514169/ /pubmed/33465243 http://dx.doi.org/10.22203/eCM.v041a07 Text en https://creativecommons.org/licenses/by-sa/4.0/Copyright policy: This article is distributed in accordance with Creative Commons Attribution Licence (http://creativecommons.org/licenses/by-sa/4.0/ (https://creativecommons.org/licenses/by-sa/4.0/) ).
spellingShingle Article
Tang, S.
Salazar-Puerta, A.
Richards, J.
Khan, S.
Hoyland, J.A.
Gallego-Perez, D.
Walter, B.
Higuita-Castro, N.
Purmessur, D.
NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY
title NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY
title_full NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY
title_fullStr NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY
title_full_unstemmed NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY
title_short NON-VIRAL REPROGRAMMING OF HUMAN NUCLEUS PULPOSUS CELLS WITH FOXF1 VIA EXTRACELLULAR VESICLE DELIVERY: AN IN VITRO AND IN VIVO STUDY
title_sort non-viral reprogramming of human nucleus pulposus cells with foxf1 via extracellular vesicle delivery: an in vitro and in vivo study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8514169/
https://www.ncbi.nlm.nih.gov/pubmed/33465243
http://dx.doi.org/10.22203/eCM.v041a07
work_keys_str_mv AT tangs nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT salazarpuertaa nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT richardsj nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT khans nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT hoylandja nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT gallegoperezd nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT walterb nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT higuitacastron nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy
AT purmessurd nonviralreprogrammingofhumannucleuspulposuscellswithfoxf1viaextracellularvesicledeliveryaninvitroandinvivostudy