scholarly journals Adipose-Derived Stem Cells in Bone Tissue Engineering: Useful Tools with New Applications

2019 ◽  
Vol 2019 ◽  
pp. 1-18 ◽  
Author(s):  
Gabriele Storti ◽  
Maria Giovanna Scioli ◽  
Bong-Sung Kim ◽  
Augusto Orlandi ◽  
Valerio Cervelli

Adipose stem cells (ASCs) are a crucial element in bone tissue engineering (BTE). They are easy to harvest and isolate, and they are available in significative quantities, thus offering a feasible and valid alternative to other sources of mesenchymal stem cells (MSCs), like bone marrow. Together with an advantageous proliferative and differentiative profile, they also offer a high paracrine activity through the secretion of several bioactive molecules (such as growth factors and miRNAs) via a sustained exosomal release which can exert efficient conditioning on the surrounding microenvironment. BTE relies on three key elements: (1) scaffold, (2) osteoprogenitor cells, and (3) bioactive factors. These elements have been thoroughly investigated over the years. The use of ASCs has offered significative new advancements in the efficacy of each of these elements. Notably, the phenotypic study of ASCs allowed discovering cell subpopulations, which have enhanced osteogenic and vasculogenic capacity. ASCs favored a better vascularization and integration of the scaffolds, while improvements in scaffolds’ materials and design tried to exploit the osteogenic features of ASCs, thus reducing the need for external bioactive factors. At the same time, ASCs proved to be an incredible source of bioactive, proosteogenic factors that are released through their abundant exosome secretion. ASC exosomes can exert significant paracrine effects in the surroundings, even in the absence of the primary cells. These paracrine signals recruit progenitor cells from the host tissues and enhance regeneration. In this review, we will focus on the recent discoveries which have involved the use of ASCs in BTE. In particular, we are going to analyze the different ASCs’ subpopulations, the interaction between ASCs and scaffolds, and the bioactive factors which are secreted by ASCs or can induce their osteogenic commitment. All these advancements are ultimately intended for a faster translational and clinical application of BTE.

2014 ◽  
Vol 356 (1) ◽  
pp. 97-107 ◽  
Author(s):  
Wei Lu ◽  
Kun Ji ◽  
Jennifer Kirkham ◽  
Yu Yan ◽  
Aldo R. Boccaccini ◽  
...  

2008 ◽  
Vol 84A (1) ◽  
pp. 191-197 ◽  
Author(s):  
Natsuko Kakudo ◽  
Ayuko Shimotsuma ◽  
Shogo Miyake ◽  
Satoshi Kushida ◽  
Kenji Kusumoto

RSC Advances ◽  
2015 ◽  
Vol 5 (67) ◽  
pp. 54551-54562 ◽  
Author(s):  
Gracielle F. Andrade ◽  
Juliana L. Carvalho ◽  
Armando S. C. Júnior ◽  
Alfredo M. Goes ◽  
Edésia M. B. Sousa

Adipose-derived stem cells (ASCs) are currently a point of focus for bone tissue engineering applications.


Pharmaceutics ◽  
2020 ◽  
Vol 12 (9) ◽  
pp. 902
Author(s):  
Madhumita Patel ◽  
Won-Gun Koh

Composite hydrogels with electrospun nanofibers (NFs) have recently been used to mimic the native extracellular matrix. In this study, composite hydrogels of methacrylated hyaluronic acid containing fragmented polycaprolactone NFs were used for bone tissue engineering. The composite (NF/hydrogel) was crosslinked under ultraviolet (UV) light. The incorporation of fragmented polycaprolactone NFs increased the compression modulus from 1762.5 to 3122.5 Pa. Subsequently, adipose-derived stem cells incorporated into the composite hydrogel exhibited a more stretched and elongated morphology and osteogenic differentiation in the absence of external factors. The mRNA expressions of osteogenic biomarkers, including collagen 1 (Col1), alkaline phosphatase, and runt-related transcription factor 2, were 3–5-fold higher in the composite hydrogel than in the hydrogel alone. In addition, results of the protein expression of Col1 and alizarin red staining confirmed osteogenic differentiation. These findings suggest that our composite hydrogel provides a suitable microenvironment for bone tissue engineering.


2017 ◽  
Vol 2 (2) ◽  
pp. 71-81 ◽  
Author(s):  
Esen Sayin ◽  
Rosti Hama Rashid ◽  
José Carlos Rodríguez-Cabello ◽  
Ahmed Elsheikh ◽  
Erkan Türker Baran ◽  
...  

Author(s):  
Zhuowen Hao ◽  
Zhenhua Xu ◽  
Xuan Wang ◽  
Yi Wang ◽  
Hanke Li ◽  
...  

The repair of critical bone defects remains challenging worldwide. Three canonical pillars (biomaterial scaffolds, bioactive molecules, and stem cells) of bone tissue engineering have been widely used for bone regeneration in separate or combined strategies, but the delivery of bioactive molecules has several obvious drawbacks. Biophysical stimuli have great potential to become the fourth pillar of bone tissue engineering, which can be categorized into three groups depending on their physical properties: internal structural stimuli, external mechanical stimuli, and electromagnetic stimuli. In this review, distinctive biophysical stimuli coupled with their osteoinductive windows or parameters are initially presented to induce the osteogenesis of mesenchymal stem cells (MSCs). Then, osteoinductive mechanisms of biophysical transduction (a combination of mechanotransduction and electrocoupling) are reviewed to direct the osteogenic differentiation of MSCs. These mechanisms include biophysical sensing, transmission, and regulation. Furthermore, distinctive application strategies of biophysical stimuli are presented for bone tissue engineering, including predesigned biomaterials, tissue-engineered bone grafts, and postoperative biophysical stimuli loading strategies. Finally, ongoing challenges and future perspectives are discussed.


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