Adipose-Derived Mesenchymal Stem Cells: A Promising Tool in the Treatment of Musculoskeletal Diseases
Abstract
:1. Introduction
2. AMSCs in the Treatment of Muscular Disorders
3. AMSCs in the Treatment of Tendon Injuries
4. Application of AMSCs in the Treatment of Osseous Diseases
5. Application of AMSCs in the Treatment of Cartilage Disorders
6. Materials and Methods
7. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
AMSCs | Adipose-derived mesenchymal stem cells |
AVN | Avascular necrosis |
BM-MSCs | Bone marrow mesenchymal stem cells |
CSD | Critical size defect |
DMD | Duchenne muscular dystrophy |
DO | Distraction osteogenesis |
FGF | Fibroblast growth factor |
FRI | Functional rating index |
GDF 5 | Growth differentiation factor 5 |
GF | Growth factors |
HA | Hyaluronic acid |
HGF | Hepatocyte growth factor |
IA | Intra-articular |
IGF | Insulin growth factor |
IL | Interleukin |
ISCT | International Society for Cell Therapy |
KOOS | Knee Injury and Osteoarthritis Outcome Score |
MRI | Magnetic resonance imaging |
MSCs | Mesenchymal stem cells |
MSK | Musculoskeletal |
NPRS | Numeric Pain Rating Scale |
NSAIDs | Non-steroideal anti-inflammatory drugs |
OA | Osteoarthritis |
PRGF | Plasma Rich in Growth Factors |
PRP | Platelet rich plasma |
PVF | Peak vertical force |
RM | Regenerative medicine |
ROM | Range of movement |
SDF-1 | Stromal cell derived factor-1 |
SFDLT | Superficial flexor digitorium longus tendon |
SVF | Stromal vascular fraction |
TGF-β | Transformig growth factor β |
TNF-α | Tumor necrosis factor α |
VAS | Visual analogue scale |
VEGF | Vascular endothelial growth factor |
VI | Vertical impulse |
WOMAC | Western Ontario and MCMaster Universities Osteoarthritis Index |
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Authors | Patients | Injury | Treatment | AMSCs Origin | Outcomes |
---|---|---|---|---|---|
Brown et al., 2012 [68] | Dogs | Semitendinosus tear | Locally injected AMSCs | Autologous alciform fat | Reduction in lesion size with well organized fibers. No gait abnormalities. |
Gibson et al., 2017 [67] | Dogs | Semitendinosus tear | Locally injected AMSCs | Autologous falciform fat | Reduction in lesion size and VAS. All dogs returned to normal activity within 3 months. |
Authors | Patients | Injury | Treatment | AMSCs Origin | Outcomes |
---|---|---|---|---|---|
Lee et al., 2015 [77] | Human | Lateral epicondylosis | Locally injected AMSCs + fibrin glue | Allogenic subcutaneous fat | VAS score improvement. Tendon’s defect size decreased |
Skutella, 2016 [87] | Race horses | SFDLT tear | Local injection of AMSCs | Autologous subcutaneous fat | Improvements in gait and lameness assessment. Sonographyc improvement of the defect size and organization of collagen bundles |
Kim et al., 2017 [89] | Human | Rotator cuff tear | Arthroscopy + local AMSCs + fibrin glue | Autologous buttock fat pad | Lower retear rate with almost complete healing of the defect by 12 months follow-up |
Usuelli et al., 2018 [90] | Human | Non-insertional Achilles tendinopathy | Intratendinous adipose-derived SVF | Autologous abdominal subcutaneous fat | Pain relif and function restoration during at least 6 months |
Authors | Patients | Injury | Treatment | AMSCs Origin | Outcomes |
---|---|---|---|---|---|
Lendeckel, 2004 [113] | Human | Cranial CSD | AMSCs + fibrin glue + bone graft | Autologous buttock fat | New bone formation and almost comlete calvarial continuity at 3 months |
Pak, 2011 [120] | Human | Hip osteonecrosis | AMSCs + PRP + HA | Autologous subcutaneous abdominal fat | MRI improvements reflected in pain and functional recovery |
Pak, 2012 [121] | Human | AVN of the femoral head | AMSCs + PRP + HA | Autologous subcutaneous abdominal fat | Complete bone regeneration at 16 months follow-up with improved symptoms |
Pak et al., 2014 [118] | Human | AVN of the femoral head | AMSCs + PRP | Autologous subcutaneous abdominal fat | Complete MRI resolution at 18 months follow-up with improved VAS and ROM |
Lee et al., 2015 [110] | Race horses | Long bone fracture | IA injection of AMSCs | Autologous subcutaneous fat from the tail | Lower levels of proinflamatory factors in synovial fluid |
Saxer et al., 2016 [109] | Human | Long bone fracure | Adipose SVF + fibrin gel + open reduction | Autologous subcutaneous abdominal fat | Formation of bone ossicles at 12 months follow-up |
Authors | Patients | Injury | Treatment | AMSCs Origin | Outcomes |
---|---|---|---|---|---|
Pak, 2011 [120] | Human | Knee OA | IA injection of adipose SVF | Autologous subcutaneous abdominal fat | MRI evidence of cartilage regeneration with VAS, FRI and ROM improvements |
Pak, 2013 [154] | Human | Meniscal tear | AMSCs + PRP + HA | Autologous subcutaneous abdominal fat | MRI evidence of cartilage regeneration with VAS and FRI improvements |
Hyunchul, 2014 [145] | Human | Knee OA | IA injection of AMSCs | Autologous subcutaneous abdominal fat | WOMAC and VAS scores improvemements. MRI evidenced that the size of the defect decreased while the volume of cartilage increased. Second-look arthroscopy showed regenerated cartilage |
Cuervo et al., 2014 [136] | Dogs | Hip OA | IA injection of AMSCs | Autologous subcutaneous inguinal fat | ROM, VAS, functional limitation, and quality of life improvements |
Vilar et al., 2014 [143] | Dogs | Hip OA | IA injection of AMSCs | Autologous subcutaneous inguinal fat | PVF and VI improvements aftr the treatment |
Pak, 2014 [156] | Human | Meniscal tear | AMSCS + PRP + HA | Autologous subcutaneous abdominal fat | Almost complete disappearance of the torn meniscus at 3 months after treatment |
Pers et al., 2016 [147] | Human | Knee OA | IA injection of AMSCs | Autologous subcutaneous abdominal fat | Improvements in pain levels and function after 6 months follow-up |
Hyunchul, 2017 [146] | Human | Knee OA | IA injection of AMSCs | Autologous subcutaneous abdominal fat | Clinical, functional, and MRI improvements after a 2-year follow-up |
Freitag et al., 2017 [151] | Human | Post-traumatic isolated chondral defect of the patella | IA injection of AMSCs | Autologous subcutaneous abdominal fat | Complete fill of the chondral defect with normal hyaline-like cartilage. Improvements in pain and functional scales |
Freitag et al., 2017 [152] | Human | Osteochondritis disecans | IA injection of AMSCs | Autologous subcutaneous abdominal fat | Improvements in cartilage volume with normal hyaline-like cartilage regeneration |
Spasovski et al., 2018 [26] | Human | Knee OA | IA injection of AMSCs | Autologous subcutaneous abdominal fat | MRI evidenced cartilage restoration with clinical improvements within 6 months that persisted during at least 18 months |
Song et al., 2018 [148] | Human | Knee OA | Three IA injections of AMSCs within 48 h | Autologous subcutaneous abdominal fat | Improved pain, function, and cartilage volume at 24 months follow-up |
Panni et al., 2019 [149] | Human | Knee OA | IA injection of AMSCs + debridment arthroscopy | Autologous subcutaneous abdominal fat | Clinical and functional scores improvements at mid-term follow up, especially patients with higher pre-operative VAS score |
Olsen et al., 2019 [144] | Dogs | Elbow OA | 3 intravenous injection of AMSCs | Autologous subcutaneous inguinal fat | Improved activity and behavior reported by owners. No changes in synovial fluid biomarkers and mean peak vertical force |
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Torres-Torrillas, M.; Rubio, M.; Damia, E.; Cuervo, B.; del Romero, A.; Peláez, P.; Chicharro, D.; Miguel, L.; Sopena, J.J. Adipose-Derived Mesenchymal Stem Cells: A Promising Tool in the Treatment of Musculoskeletal Diseases. Int. J. Mol. Sci. 2019, 20, 3105. https://doi.org/10.3390/ijms20123105
Torres-Torrillas M, Rubio M, Damia E, Cuervo B, del Romero A, Peláez P, Chicharro D, Miguel L, Sopena JJ. Adipose-Derived Mesenchymal Stem Cells: A Promising Tool in the Treatment of Musculoskeletal Diseases. International Journal of Molecular Sciences. 2019; 20(12):3105. https://doi.org/10.3390/ijms20123105
Chicago/Turabian StyleTorres-Torrillas, Marta, Monica Rubio, Elena Damia, Belen Cuervo, Ayla del Romero, Pau Peláez, Deborah Chicharro, Laura Miguel, and Joaquin J. Sopena. 2019. "Adipose-Derived Mesenchymal Stem Cells: A Promising Tool in the Treatment of Musculoskeletal Diseases" International Journal of Molecular Sciences 20, no. 12: 3105. https://doi.org/10.3390/ijms20123105
APA StyleTorres-Torrillas, M., Rubio, M., Damia, E., Cuervo, B., del Romero, A., Peláez, P., Chicharro, D., Miguel, L., & Sopena, J. J. (2019). Adipose-Derived Mesenchymal Stem Cells: A Promising Tool in the Treatment of Musculoskeletal Diseases. International Journal of Molecular Sciences, 20(12), 3105. https://doi.org/10.3390/ijms20123105