随着预期寿命的延长和人口老龄化,骨科缺陷和骨移植手术在全球的患病率不断增加。迄今为止的研究增进了对骨生物学和缺损修复机制的理解,导致合成骨替代品的开发取得了显着的成功。然而,对功能化骨移植的追求促使研究人员寻找一种可行的替代方案,可以调节细胞活动并支持骨再生和愈合过程,而不会引起严重的副作用。最近,研究人员在骨支架中引入了天然药物化合物(NMC),使其能够以理想的速率释放,保持持续释放,为组织生长提供足够的时间,并引导骨再生过程,同时将组织毒性风险降至最低。据世界卫生组织 (WHO) 称,过去 20 年来,NMC 在西方国家越来越受欢迎,全球 80% 的人口都在使用 NMC。与合成药物相比,NMC 具有更广泛的安全窗范围,因此适合长期局部递送以促进骨再生。关注骨移植和天然药物整合的文献有限,这些文献提供了有关 NMC、其毒性极限以及在骨组织工程中的特殊应用的详细科学证据,这可以指导研究人员开发用于各种骨疾病的功能化植入物。本综述将讨论从骨移植物(包括 3D 打印结构和表面改性植入物)输送 NMC 的新兴趋势,强调 NMC 对骨骼健康的重要性和潜力,指导未来开发理想骨组织工程支架的道路。
重要性声明
迄今为止,增材制造技术为我们提供了许多先进的患者特定或缺陷特定的骨骼结构,这些结构表现出三维、明确的微观结构,具有互连的多孔网络,用于缺陷修复应用。然而,理想的支架还应该能够提供积极引导组织再生的生物信号,同时防止植入后并发症。天然生物分子在组织工程中越来越受欢迎,因为与合成药物相比,它们具有更安全、有效的方法。骨支架和天然生物分子的整合利用了定制的多功能骨植入物的优势,以受控的方式提供生化信号的局部传递。这篇综述概述了骨支架作为天然生物分子的输送系统,它可能会显着促进骨骼发育并改善由各种肌肉骨骼疾病引起的缺损愈合。
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Natural medicine delivery from biomedical devices to treat bone disorders: A review
With an increasing life expectancy and aging population, orthopedic defects and bone graft surgeries are increasing in global prevalence. Research to date has advanced the understanding of bone biology and defect repair mechanism, leading to a marked success in the development of synthetic bone substitutes. Yet, the quest for functionalized bone grafts prompted the researchers to find a viable alternative that regulates cellular activity and supports bone regeneration and healing process without causing serious side-effects. Recently, researchers have introduced natural medicinal compounds (NMCs) in bone scaffold that enables them to release at a desirable rate, maintains a sustained release allowing sufficient time for tissue in-growth, and guides bone regeneration process with minimized risk of tissue toxicity. According to World Health Organization (WHO), NMCs are gaining popularity in western countries for the last two decades and are being used by 80% of the population worldwide. Compared to synthetic drugs, NMCs have a broader range of safety window and thus suitable for prolonged localized delivery for bone regeneration. There is limited literature focusing on the integration of bone grafts and natural medicines that provides detailed scientific evidences on NMCs, their toxic limits and particular application in bone tissue engineering, which could guide the researchers to develop functionalized implants for various bone disorders. This review will discuss the emerging trend of NMC delivery from bone grafts, including 3D-printed structures and surface-modified implants, highlighting the significance and potential of NMCs for bone health, guiding future paths toward the development of an ideal bone tissue engineering scaffold.
Statement of significance
To date, additive manufacturing technology provids us with many advanced patient specific or defect specific bone constructs exhibiting three-dimensional, well-defined microstructure with interconnected porous networks for defect-repair applications. However, an ideal scaffold should also be able to supply biological signals that actively guide tissue regeneration while simultaneously preventing post-implantation complications. Natural biomolecules are gaining popularity in tissue engineering since they possess a safer, effective approach compared to synthetic drugs. The integration of bone scaffolds and natural biomolecules exploits the advantages of customized, multi-functional bone implants to provide localized delivery of biochemical signals in a controlled manner. This review presents an overview of bone scaffolds as delivery systems for natural biomolecules, which may provide prominent advancement in bone development and improve defect-healing caused by various musculoskeletal disorders.