Bone fracture healing in mechanobiological modeling: A review of principles and methods

Заживление переломов костей в механобиологическом моделировании: обзор принципов и методов
Mohammad S. Ghiasi, Jason Chen, Ashkan Vaziri, Edward K. Rodriguez, Ara Nazarian
2017-03-16

angiogenesisbone fracture healingbone healing simulationmechanical stimulimechanobiological modeling
Bone fracture is a very common body injury. The healing process is physiologically complex, involving both biological and mechanical aspects. Following a fracture, cell migration, cell/tissue differentiation, tissue synthesis, and cytokine and growth factor release occur, regulated by the mechanical environment. Over the past decade, bone healing simulation and modeling has been employed to understand its details and mechanisms, to investigate specific clinical questions, and to design healing strategies. The goal of this effort is to review the history and the most recent work in bone healing simulations with an emphasis on both biological and mechanical properties. Therefore, we provide a brief review of the biology of bone fracture repair, followed by an outline of the key growth factors and mechanical factors influencing it. We then compare different methodologies of bone healing simulation, including conceptual modeling (qualitative modeling of bone healing to understand the general mechanisms), biological modeling (considering only the biological factors and processes), and mechanobiological modeling (considering both biological aspects and mechanical environment). Finally we evaluate different components and clinical applications of bone healing simulation such as mechanical stimuli, phases of bone healing, and angiogenesis.
1
Bone fracture healing is governed by interacting biological processes and mechanical regulation, including cell migration, differentiation, tissue synthesis, and signaling-factor release.
2
Bone-healing simulations have been used to clarify repair mechanisms, address clinical questions, and support the design of healing strategies.
3
Mechanobiological modeling integrates mechanical environment with biological factors to represent fracture-healing processes more comprehensively than biology-only approaches.
4
The review distinguishes conceptual, biological, and mechanobiological simulation approaches according to whether they represent general mechanisms, biological processes, or coupled biology–mechanics.
5
The review evaluates mechanical stimuli, healing phases, angiogenesis, and other model components in relation to clinical applications of bone-healing simulation.

bone fracture healing process

the biological and mechanical mechanisms, factors, and simulation methods governing bone fracture repair

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2017-03-16
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Mohammad S. Ghiasi
Jason Chen
Ashkan Vaziri
Edward K. Rodriguez
Ara Nazarian
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