Bone biomaterials and interactions with stem cells

Костные биоматериалы и взаимодействие со стволовыми клетками
Pei Feng, Cijun Shuai, Shuping Peng, Chengde Gao
2017-12-21

bioactive ceramicsbiodegradable metalsbiodegradable polymersbone biomaterialsstem cell interactions
Bone biomaterials play a vital role in bone repair by providing the necessary substrate for cell adhesion, proliferation, and differentiation and by modulating cell activity and function. In past decades, extensive efforts have been devoted to developing bone biomaterials with a focus on the following issues: (1) developing ideal biomaterials with a combination of suitable biological and mechanical properties; (2) constructing a cell microenvironment with pores ranging in size from nanoscale to submicro- and microscale; and (3) inducing the oriented differentiation of stem cells for artificial-to-biological transformation. Here we present a comprehensive review of the state of the art of bone biomaterials and their interactions with stem cells. Typical bone biomaterials that have been developed, including bioactive ceramics, biodegradable polymers, and biodegradable metals, are reviewed, with an emphasis on their characteristics and applications. The necessary porous structure of bone biomaterials for the cell microenvironment is discussed, along with the corresponding fabrication methods. Additionally, the promising seed stem cells for bone repair are summarized, and their interaction mechanisms with bone biomaterials are discussed in detail. Special attention has been paid to the signaling pathways involved in the focal adhesion and osteogenic differentiation of stem cells on bone biomaterials. Finally, achievements regarding bone biomaterials are summarized, and future research directions are proposed.
1
Bone biomaterials are critical for bone repair by providing substrates for cell adhesion, proliferation, differentiation, and by modulating cell activity and function.
2
Creating cell microenvironments with pore sizes from nanoscale to micro- and submicroscale is essential for bone biomaterials.
3
Ideal bone biomaterials require a combination of suitable biological and mechanical properties.
4
Inducing oriented differentiation of stem cells is important for achieving artificial-to-biological transformation in bone repair.
5
Porous structures and corresponding fabrication methods are necessary design considerations to support the cell microenvironment in bone biomaterials.
6
Promising seed stem cells for bone repair are identified and their interaction mechanisms with bone biomaterials are summarized.
7
Signaling pathways involved in focal adhesion and osteogenic differentiation of stem cells on bone biomaterials are highlighted as key mechanisms.
8
The review summarizes current achievements in bone biomaterials and proposes future research directions.
9
Typical classes of bone biomaterials reviewed include bioactive ceramics, biodegradable polymers, and biodegradable metals, each with distinct characteristics and applications.

Bone biomaterials (bioactive ceramics, biodegradable polymers, biodegradable metals) as scaffolds providing porous cell microenvironments for bone repair

Interactions between bone biomaterials and stem cells, including cell adhesion, proliferation, oriented osteogenic differentiation, focal adhesion signaling pathways, and the role of porous scaffold architecture and fabrication methods in modulating these behaviors

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2017-12-21
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Pei Feng
Cijun Shuai
Shuping Peng
Chengde Gao
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