骨生物电和骨细胞对电刺激的反应:综述。

Taylor deVet, Akiv Jhirad, Laura Pravato, Gregory R Wohl
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引用次数: 7

摘要

假设骨细胞可以通过电信号感知细胞外网络中的机械力。这导致使用电刺激(ES)来改善骨折修复和减轻骨质流失。尽管在骨维持和骨折愈合力学中存在重叠,但两者所涉及的过程非常不同,导致细胞的行为不同。骨细胞是骨组织中最丰富的细胞类型,它们的基本结构和谱系已被很好地理解,但关于它们的行为存在许多争论,对它们在电环境中的行为知之甚少。目前对不同类型ES下细胞行为的研究比较广泛,但由于刺激参数、细胞类型、来源(地点和物种)差异较大,难以得出结论。通过探索多种骨细胞类型在不同ES形式下的行为,以及通过流体流动的机械刺激,我们可以更多地了解细胞对刺激的反应。反过来,更好地了解细胞反应有可能改善和扩大胚胎干细胞在骨愈合和减轻骨质流失方面的治疗应用,并提高植入性医疗器械的骨整合效果。这需要从电学角度对骨细胞环境以及细胞对ES的反应有更深入的了解。
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Bone Bioelectricity and Bone-Cell Response to Electrical Stimulation: A Review.

It is hypothesized that bone cells can sense mechanical force in the extracellular network via an electrical signal. This has led to the use of electrical stimulation (ES) to improve fracture repair and mitigate bone loss. Although overlap exists in bone maintenance and fracture healing mechanics, the processes involved in both are very different, resulting in dissimilar behaviors from the cells. Osteocytes are the most abundant cell type in bone tissue, and their basic structure and lineage are fairly well understood, but much debate is present regarding their behavior, with even less known about their behavior in electrical environments. A wide range of research exists on cell behavior under different types of ES, but it is difficult to draw conclusions due to the large variance in stimulation parameters, cell types, and origins (locations and species). By exploring behavior of multiple bone-cell types under different forms of ES, as well as mechanical stimulation through fluid flow, we can determine more about cell reactions to stimuli. In turn, a better understanding of cell response has the potential to improve and broaden therapeutic applications of ES for bone healing and bone loss mitigation, and enhance outcomes for osseointegration into implantable medical devices. These require greater understanding of the bone cellular environment from an electrical perspective as well as cellular responses to ES.

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来源期刊
Critical Reviews in Biomedical Engineering
Critical Reviews in Biomedical Engineering Engineering-Biomedical Engineering
CiteScore
1.80
自引率
0.00%
发文量
25
期刊介绍: Biomedical engineering has been characterized as the application of concepts drawn from engineering, computing, communications, mathematics, and the physical sciences to scientific and applied problems in the field of medicine and biology. Concepts and methodologies in biomedical engineering extend throughout the medical and biological sciences. This journal attempts to critically review a wide range of research and applied activities in the field. More often than not, topics chosen for inclusion are concerned with research and practice issues of current interest. Experts writing each review bring together current knowledge and historical information that has led to the current state-of-the-art.
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