Bone tissue engineering via nanostructured calcium phosphate biomaterials and stem cells

被引:0
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作者
Ping Wang
Liang Zhao
Jason Liu
Michael D Weir
Xuedong Zhou
Hockin H K Xu
机构
[1] Prosthodontics and Operative Dentistry,Biomaterials & Tissue Engineering Division, Department of Endodontics
[2] University of Maryland Dental School,Department of Orthopaedic Surgery
[3] State Key Laboratory of Oral Diseases,Mechanical Engineering Department
[4] West China Hospital of Stomatology,undefined
[5] Sichuan University,undefined
[6] Nanfang Hospital,undefined
[7] Southern Medical University,undefined
[8] University of Maryland Baltimore County,undefined
[9] Center for Stem Cell Biology and Regenerative Medicine,undefined
[10] University of Maryland School of Medicine,undefined
来源
Bone Research | / 2卷
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摘要
Tissue engineering is promising to meet the increasing need for bone regeneration. Nanostructured calcium phosphate (CaP) biomaterials/scaffolds are of special interest as they share chemical/crystallographic similarities to inorganic components of bone. Three applications of nano-CaP are discussed in this review: nanostructured calcium phosphate cement (CPC); nano-CaP composites; and nano-CaP coatings. The interactions between stem cells and nano-CaP are highlighted, including cell attachment, orientation/morphology, differentiation and in vivo bone regeneration. Several trends can be seen: (i) nano-CaP biomaterials support stem cell attachment/proliferation and induce osteogenic differentiation, in some cases even without osteogenic supplements; (ii) the influence of nano-CaP surface patterns on cell alignment is not prominent due to non-uniform distribution of nano-crystals; (iii) nano-CaP can achieve better bone regeneration than conventional CaP biomaterials; (iv) combining stem cells with nano-CaP accelerates bone regeneration, the effect of which can be further enhanced by growth factors; and (v) cell microencapsulation in nano-CaP scaffolds is promising for bone tissue engineering. These understandings would help researchers to further uncover the underlying mechanisms and interactions in nano-CaP stem cell constructs in vitro and in vivo, tailor nano-CaP composite construct design and stem cell type selection to enhance cell function and bone regeneration, and translate laboratory findings to clinical treatments.
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