IF 16.7 2区 医学 Q1 MEDICINE, GENERAL & INTERNAL
Xin-Ling Li, Yu-Qing Zhao, Li Miao, Yan-Xin An, Fan Wu, Jin-Yu Han, Jing-Yuan Han, Franklin R Tay, Zhao Mu, Yang Jiao, Jing Wang
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引用次数: 0

摘要

骨骼组织依赖于血管和神经纤维之间错综复杂的相互作用,两者对于骨骼系统的许多生理和病理过程都至关重要。血管为神经和骨组织提供必要的氧气和营养物质,并清除代谢废物。同时,神经纤维在生长过程中先于血管,促进血管生成,并通过分泌神经递质影响骨细胞,刺激骨生成。尽管这两种成分都起着关键作用,但目前的生物材料一般都侧重于加强骨内血管的修复,而往往忽视了神经的作用。了解血管和神经纤维在骨中的分布和主要功能对于开发有效的骨组织工程生物材料至关重要。本综述首先探讨了骨内血管和神经纤维的解剖结构,强调了它们在骨胚胎发育、新陈代谢和修复中的重要作用。它涵盖了过去 10 年中旨在加速骨内神经血管系统的创新骨再生策略。涉及的问题包括材料特性(硬度、表面形貌、孔隙结构、导电性和压电性)和细胞生物因子[神经营养素、肽、核糖核酸(RNA)、无机离子和外泌体]。此外,还强调了神经血管化材料在临床转化过程中遇到的主要挑战。此外,综述还讨论了未来的研究方向和潜在发展,旨在生产出能更准确模拟骨组织自然愈合过程的骨修复材料。这篇综述将为研究人员和临床医生开发新型神经血管化生物材料并加速将其转化为临床实践提供有价值的参考。通过弥合实验研究与实际应用之间的差距,这些进展有可能改变骨缺损的治疗方法,并显著改善骨相关疾病患者的生活质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Strategies for promoting neurovascularization in bone regeneration.

Bone tissue relies on the intricate interplay between blood vessels and nerve fibers, both are essential for many physiological and pathological processes of the skeletal system. Blood vessels provide the necessary oxygen and nutrients to nerve and bone tissues, and remove metabolic waste. Concomitantly, nerve fibers precede blood vessels during growth, promote vascularization, and influence bone cells by secreting neurotransmitters to stimulate osteogenesis. Despite the critical roles of both components, current biomaterials generally focus on enhancing intraosseous blood vessel repair, while often neglecting the contribution of nerves. Understanding the distribution and main functions of blood vessels and nerve fibers in bone is crucial for developing effective biomaterials for bone tissue engineering. This review first explores the anatomy of intraosseous blood vessels and nerve fibers, highlighting their vital roles in bone embryonic development, metabolism, and repair. It covers innovative bone regeneration strategies directed at accelerating the intrabony neurovascular system over the past 10 years. The issues covered included material properties (stiffness, surface topography, pore structures, conductivity, and piezoelectricity) and acellular biological factors [neurotrophins, peptides, ribonucleic acids (RNAs), inorganic ions, and exosomes]. Major challenges encountered by neurovascularized materials during their clinical translation have also been highlighted. Furthermore, the review discusses future research directions and potential developments aimed at producing bone repair materials that more accurately mimic the natural healing processes of bone tissue. This review will serve as a valuable reference for researchers and clinicians in developing novel neurovascularized biomaterials and accelerating their translation into clinical practice. By bridging the gap between experimental research and practical application, these advancements have the potential to transform the treatment of bone defects and significantly improve the quality of life for patients with bone-related conditions.

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来源期刊
Military Medical Research
Military Medical Research Medicine-General Medicine
CiteScore
38.40
自引率
2.80%
发文量
485
审稿时长
8 weeks
期刊介绍: Military Medical Research is an open-access, peer-reviewed journal that aims to share the most up-to-date evidence and innovative discoveries in a wide range of fields, including basic and clinical sciences, translational research, precision medicine, emerging interdisciplinary subjects, and advanced technologies. Our primary focus is on modern military medicine; however, we also encourage submissions from other related areas. This includes, but is not limited to, basic medical research with the potential for translation into practice, as well as clinical research that could impact medical care both in times of warfare and during peacetime military operations.
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