Cargando…

Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma

While many groups demonstrated new muscle tissue formation after muscle precursor cell (MPC) injection, the capacity of these cells to heal muscle damage, for example, sphincter in stress urinary incontinence, in long-term is still limited. Therefore, the first goal of our project was to optimize th...

Descripción completa

Detalles Bibliográficos
Autores principales: Haralampieva, Deana, Salemi, Souzan, Betzel, Thomas, Dinulovic, Ivana, Krämer, Stefanie D., Schibli, Roger, Sulser, Tullio, Handschin, Christoph, Ametamey, Simon M., Eberli, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5827889/
https://www.ncbi.nlm.nih.gov/pubmed/29531537
http://dx.doi.org/10.1155/2018/4658503
_version_ 1783302544456417280
author Haralampieva, Deana
Salemi, Souzan
Betzel, Thomas
Dinulovic, Ivana
Krämer, Stefanie D.
Schibli, Roger
Sulser, Tullio
Handschin, Christoph
Ametamey, Simon M.
Eberli, Daniel
author_facet Haralampieva, Deana
Salemi, Souzan
Betzel, Thomas
Dinulovic, Ivana
Krämer, Stefanie D.
Schibli, Roger
Sulser, Tullio
Handschin, Christoph
Ametamey, Simon M.
Eberli, Daniel
author_sort Haralampieva, Deana
collection PubMed
description While many groups demonstrated new muscle tissue formation after muscle precursor cell (MPC) injection, the capacity of these cells to heal muscle damage, for example, sphincter in stress urinary incontinence, in long-term is still limited. Therefore, the first goal of our project was to optimize the functional regenerative potential of hMPC by genetic modification to overexpress human peroxisome proliferator-activated receptor gamma coactivator 1-alpha (hPGC-1α), key regulator of exercise-mediated adaptation. Moreover, we aimed at establishing a feasible methodology for noninvasive PET visualization of implanted cells and their microenvironment in muscle crush injury model. PGC-1α-bioengineered muscles showed enhanced marker expression for myogenesis (α-actinin, MyHC, and Desmin), vascularization (VEGF), neuronal (ACHE), and mitochondrial (COXIV) activity. Consistently, use of hPGC-1α_hMPCs produced significantly increased contractile force one to three weeks postinjury. PET imaging showed distinct differences in radiotracer signals ([(18)F]Fallypride and [(11)C]Raclopride (both targeting dopamine 2 receptors (D2R)) and [(64)Cu]NODAGA-RGD (targeting neovascularization)) between GFP_hMPCs and hD2R_hPGC-1α_hMPCs. After muscle harvesting, inflammation levels were in parallel to radiotracer uptake amount, with significantly lower uptake in hPGC-1α overexpressing samples. In summary, we facilitated early functional muscle tissue regeneration, introducing a novel approach to improve skeletal muscle regeneration. Besides successful tracking of hMPCs in muscle crush injuries, we showed that in high-inflammation areas, the specificity of radioligands might be significantly reduced, addressing a possible bottleneck of neovascularization PET imaging.
format Online
Article
Text
id pubmed-5827889
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-58278892018-03-12 Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma Haralampieva, Deana Salemi, Souzan Betzel, Thomas Dinulovic, Ivana Krämer, Stefanie D. Schibli, Roger Sulser, Tullio Handschin, Christoph Ametamey, Simon M. Eberli, Daniel Stem Cells Int Research Article While many groups demonstrated new muscle tissue formation after muscle precursor cell (MPC) injection, the capacity of these cells to heal muscle damage, for example, sphincter in stress urinary incontinence, in long-term is still limited. Therefore, the first goal of our project was to optimize the functional regenerative potential of hMPC by genetic modification to overexpress human peroxisome proliferator-activated receptor gamma coactivator 1-alpha (hPGC-1α), key regulator of exercise-mediated adaptation. Moreover, we aimed at establishing a feasible methodology for noninvasive PET visualization of implanted cells and their microenvironment in muscle crush injury model. PGC-1α-bioengineered muscles showed enhanced marker expression for myogenesis (α-actinin, MyHC, and Desmin), vascularization (VEGF), neuronal (ACHE), and mitochondrial (COXIV) activity. Consistently, use of hPGC-1α_hMPCs produced significantly increased contractile force one to three weeks postinjury. PET imaging showed distinct differences in radiotracer signals ([(18)F]Fallypride and [(11)C]Raclopride (both targeting dopamine 2 receptors (D2R)) and [(64)Cu]NODAGA-RGD (targeting neovascularization)) between GFP_hMPCs and hD2R_hPGC-1α_hMPCs. After muscle harvesting, inflammation levels were in parallel to radiotracer uptake amount, with significantly lower uptake in hPGC-1α overexpressing samples. In summary, we facilitated early functional muscle tissue regeneration, introducing a novel approach to improve skeletal muscle regeneration. Besides successful tracking of hMPCs in muscle crush injuries, we showed that in high-inflammation areas, the specificity of radioligands might be significantly reduced, addressing a possible bottleneck of neovascularization PET imaging. Hindawi 2018-01-21 /pmc/articles/PMC5827889/ /pubmed/29531537 http://dx.doi.org/10.1155/2018/4658503 Text en Copyright © 2018 Deana Haralampieva et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Haralampieva, Deana
Salemi, Souzan
Betzel, Thomas
Dinulovic, Ivana
Krämer, Stefanie D.
Schibli, Roger
Sulser, Tullio
Handschin, Christoph
Ametamey, Simon M.
Eberli, Daniel
Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma
title Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma
title_full Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma
title_fullStr Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma
title_full_unstemmed Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma
title_short Injected Human Muscle Precursor Cells Overexpressing PGC-1α Enhance Functional Muscle Regeneration after Trauma
title_sort injected human muscle precursor cells overexpressing pgc-1α enhance functional muscle regeneration after trauma
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5827889/
https://www.ncbi.nlm.nih.gov/pubmed/29531537
http://dx.doi.org/10.1155/2018/4658503
work_keys_str_mv AT haralampievadeana injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT salemisouzan injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT betzelthomas injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT dinulovicivana injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT kramerstefanied injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT schibliroger injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT sulsertullio injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT handschinchristoph injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT ametameysimonm injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma
AT eberlidaniel injectedhumanmuscleprecursorcellsoverexpressingpgc1aenhancefunctionalmuscleregenerationaftertrauma