Engineered cell-free scaffold with two-stage delivery of miRNA-26a for bone repair

被引:9
作者
Paquet, Joseph [1 ]
Moya, Adrien [1 ]
Bensidhoum, Morad [1 ]
Petite, Herve [1 ]
机构
[1] Univ Paris Diderot, Lab Bioingn & Bioimagerie Osteoarticulaires B2OA, UMR CNRS 7052, 10 Ave Verdun, F-75010 Paris, France
关键词
Bone; microRNAs (miRNAs); scaffold; bone grafts; TISSUE; MICRORNAS;
D O I
10.21037/atm.2016.05.28
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The treatment of non-unions and bone defects is a major challenge. In these situations, autologous bone is the preferred treatment but has several serious limitations. Treatment alternatives including the use of calcium-based scaffolds alone or associated with either growth factors or stem cells have therefore been developed, or are under development, to overcome these shortcomings. Each of these are, however, associated with their own drawbacks, such as the lack of sustained/controlled delivery system for growth factors and poor cell survival and engraftment for stem cells. MicroRNAs (miRNAs), a class of small noncoding RNAs fine-tune the expression of as much as 30% of all mammalian protein-encoding genes. For instance, miRNA26a is able to promote the repair of critical-size calvarial bone defects. Yet, the clinical application of these fascinating molecules has been hampered by a lack of appropriate delivery systems. In an elegant report entitled cell-free 3D scaffold with two-stage delivery of miRNA-26a to regenerate critical-sized bone defects, Zhang et al. 2016, developped a non-viral vector with high affinity to miR-26a that ensured its efficient delivery in bone defects. Engineered scaffolds were able to induce the regeneration of calvarial bone defects in healthy and osteoporotic mice. Taken together, these data pave the way for the development of advanced bone substitutes that at least will match, and preferably supersede, the clinical efficiency of autologous bone grafts. However, the transfer from the bench to the bedside of such scaffolds requires further investigations including (I) a better understanding of the underlying biological mechanisms involved in bone formation via miRNA26a; (II) evidences of polymer scaffold biocompatibility upon its complete degradation; and (III) demonstration of the engineered scaffold functionality in defects of clinically relevant volume.
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页数:4
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共 20 条
[1]   The functions of animal microRNAs [J].
Ambros, V .
NATURE, 2004, 431 (7006) :350-355
[2]   MicroRNAs: Target Recognition and Regulatory Functions [J].
Bartel, David P. .
CELL, 2009, 136 (02) :215-233
[3]   MicroRNAs: Genomics, biogenesis, mechanism, and function (Reprinted from Cell, vol 116, pg 281-297, 2004) [J].
Bartel, David P. .
CELL, 2007, 131 (04) :11-29
[4]   The effect of implants loaded with autologous mesenchymal stem cells on the healing of canine segmental bone defects [J].
Bruder, SP ;
Kraus, KH ;
Goldberg, VM ;
Kadiyala, S .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1998, 80A (07) :985-996
[5]   Bone substitutes in orthopaedic surgery: from basic science to clinical practice [J].
Campana, V. ;
Milano, G. ;
Pagano, E. ;
Barba, M. ;
Cicione, C. ;
Salonna, G. ;
Lattanzi, W. ;
Logroscino, G. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2014, 25 (10) :2445-2461
[6]   A tissue engineering approach to bone repair in large animal models and in clinical practice [J].
Cancedda, Ranieri ;
Giannoni, Paolo ;
Mastrogiacomo, Maddalena .
BIOMATERIALS, 2007, 28 (29) :4240-4250
[7]  
Cypher T J, 1996, J Foot Ankle Surg, V35, P413
[8]   Changes in osteoblast, chondrocyte, and adipocyte lineages mediate the bone anabolic actions of PTH and small molecule GSK-3 inhibitor [J].
Kulkarni, Nalini H. ;
Wei, Tao ;
Kumar, Amar ;
Dow, Ernst R. ;
Stewart, Trent R. ;
Shou, Jianyong ;
N'cho, Mathias ;
Sterchi, Diane L. ;
Gitter, Bruce D. ;
Higgs, Richard E. ;
Halladay, David L. ;
Engler, Thomas A. ;
Martin, T. John ;
Bryant, Henry U. ;
Ma, Yanfei L. ;
Onyia, Jude E. .
JOURNAL OF CELLULAR BIOCHEMISTRY, 2007, 102 (06) :1504-1518
[9]   Orally bioavailable GSK-3α/β dual inhibitor increases markers of cellular differentiation in vitro and bone mass in vivo [J].
Kulkarni, Nalini H. ;
Onyia, Jude E. ;
Zeng, QingQiang ;
Tian, Xioayan ;
Liu, Min ;
Halladay, David L. ;
Frolik, Charles A. ;
Engler, Thomas ;
Wei, Tao ;
Kriauciunas, Aidas ;
Martin, T. John ;
Sato, Masahiko ;
Bryant, Henry U. ;
Ma, Yanfei L. .
JOURNAL OF BONE AND MINERAL RESEARCH, 2006, 21 (06) :910-920
[10]   The promotion of bone regeneration through positive regulation of angiogenic-osteogenic coupling using microRNA-26a [J].
Li, Yan ;
Fan, Longkun ;
Liu, Shiyu ;
Liu, Wenjia ;
Zhang, Hao ;
Zhou, Tao ;
Wu, Dan ;
Yang, Ping ;
Shen, Lijuan ;
Chen, Jihua ;
Jin, Yan .
BIOMATERIALS, 2013, 34 (21) :5048-5058