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Engineering vascularized and innervated bone biomaterials for improved skeletal tissue regeneration

机译:工程化血管化和神经支配的骨生物材料以改善骨骼组织再生

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摘要

Blood vessels and nerve fibers are distributed throughout the entirety of skeletal tissue, and play important roles during bone development and fracture healing by supplying oxygen, nutrients, and cells. However, despite the successful development of bone mimetic materials that can replace damaged bone from a structural point of view, most of the available bone biomaterials often do not induce sufficient formation of blood vessels and nerves. In part, this is due to the difficulty of integrating and regulating multiple tissue types within artificial materials, which causes a gap between native skeletal tissue. Therefore, understanding the anatomy and underlying interaction mechanisms of blood vessels and nerve fibers in skeletal tissue is important to develop biomaterials that can recapitulate its complex microenvironment. In this perspective, we highlight the structure and osteogenic functions of the vascular and nervous system in bone, in a coupled manner. In addition, we discuss important design criteria for engineering vascularized, innervated, and neurovascularized bone implant materials, as well as recent advances in the development of such biomaterials. We expect that bone implant materials with neurovascularized networks can more accurately mimic native skeletal tissue and improve the regeneration of bone tissue.
机译:血管和神经纤维分布在整个骨骼组织中,并通过提供氧气,营养和细胞在骨骼发育和骨折愈合中发挥重要作用。然而,尽管从结构的角度成功开发了可以替代受损骨骼的模拟骨骼材料,但大多数可用的骨骼生物材料通常无法诱导血管和神经的充分形成。部分地,这是由于难以在人造材料中整合和调节多种组织类型而造成的,这导致了天然骨骼组织之间的间隙。因此,了解骨骼组织中血管与神经纤维的解剖结构及其相互作用机理对于开发可概括其复杂微环境的生物材料很重要。从这个角度来看,我们以耦合的方式突出了骨骼中血管和神经系统的结构以及成骨功能。此外,我们讨论了工程化血管化,神经支配和神经血管化骨植入材料的重要设计标准,以及此类生物材料开发的最新进展。我们期望具有神经血管网络的骨植入物材料可以更准确地模拟天然骨骼组织并改善骨组织的再生。

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