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脉冲电磁场(PEMF)在成骨的 3 维环培养模型中短暂刺激矿化速率。

Pulsed electromagnetic field (PEMF) transiently stimulates the rate of mineralization in a 3-dimensional ring culture model of osteogenesis.

机构信息

Department of Orthopaedic Surgery, David Geffen School of Medicine, University of California Los Angeles, Los Angeles, California, United States of America.

Department of Architecture and Urban Design, University of California Los Angeles, Los Angeles, California, United States of America.

出版信息

PLoS One. 2021 Feb 4;16(2):e0244223. doi: 10.1371/journal.pone.0244223. eCollection 2021.

Abstract

Pulsed Electromagnetic Field (PEMF) has shown efficacy in bone repair and yet the optimum characteristics of this modality and its molecular mechanism remain unclear. To determine the effects of timing of PEMF treatment, we present a novel three-dimensional culture model of osteogenesis that demonstrates strong de novo generation of collagen and mineral matrix and exhibits stimulation by PEMF in multiple stages over 62 days of culture. Mouse postnatal day 2 calvarial pre-osteoblasts were cast within and around Teflon rings by polymerization of fibrinogen and cultured suspended without contact with tissue culture plastic. Ring constructs were exposed to PEMF for 4h/day for the entire culture (Daily), or just during Day1-Day10, Day11-Day 27, or Day28-Day63 and cultured without PEMF for the preceding or remaining days, and compared to no-PEMF controls. PEMF was conducted as HF Physio, 40.85 kHz frequency with a 67 ms burst period and an amplitude of 1.19 mT. Osteogenesis was kinetically monitored by repeated fluorescence measurements of continuously present Alizarin Red S (ARS) and periodically confirmed by micro-CT. PEMF treatment induced early-onset and statistically significant transient stimulation (~4-fold) of the mineralization rate when PEMF was applied Daily, or during D1-D10 and D11-D27. Stimulation was apparent but not significant between D28-D63 by ARS but was significant at D63 by micro-CT. PEMF also shifted the micro-CT density profiles to higher densities in each PEMF treatment group. Ring culture generated tissue with a mineral:matrix ratio of 2.0 by thermogravimetric analysis (80% of the calvaria control), and the deposited crystal structure was 50% hydroxyapatite by X-ray diffraction (63% of the calvaria and femur controls), independent of PEMF. These results were consistent with backscatter, secondary electron, and elemental analysis by scanning electron microscopy. Thus, in a defined, strong osteogenic environment, PEMF applied at different times was capable of further stimulation of osteogenesis with the potential to enhance bone repair.

摘要

脉冲电磁场(PEMF)已被证明在骨修复中有效,但该治疗模式的最佳特性及其分子机制仍不清楚。为了确定 PEMF 治疗时间的影响,我们提出了一种新的骨生成三维培养模型,该模型显示出强烈的胶原和矿物质基质的从头生成,并在 62 天的培养过程中经历了多个阶段的 PEMF 刺激。通过纤维蛋白原聚合,将出生后第 2 天的小鼠颅骨前成骨细胞铸入聚四氟乙烯环内和周围,并在没有与组织培养塑料接触的情况下悬浮培养。环构建体每天暴露于 PEMF 4 小时,整个培养期(每日),或仅在第 1 天至第 10 天、第 11 天至第 27 天或第 28 天至第 63 天,以及在前或剩余天不进行 PEMF 培养,并与无 PEMF 对照进行比较。PEMF 采用 HF Physio 进行,频率为 40.85 kHz,爆发周期为 67 ms,幅度为 1.19 mT。通过反复测量持续存在的茜素红 S(ARS)的荧光来动态监测成骨作用,并通过微计算机断层扫描定期确认。当 PEMF 每日应用时,或在 D1-D10 和 D11-D27 期间应用时,PEMF 处理会诱导早期和统计学上显著的矿化率短暂刺激(约 4 倍)。通过 ARS,D28-D63 之间的刺激虽然明显但无统计学意义,但通过微计算机断层扫描在 D63 时有统计学意义。PEMF 还将微计算机断层扫描密度曲线移向每个 PEMF 处理组的较高密度。环培养物通过热重分析生成具有矿物质:基质比为 2.0 的组织(与颅骨对照的 80%),通过 X 射线衍射,沉积的晶体结构为 50%羟磷灰石(颅骨和股骨对照的 63%),与 PEMF 无关。这些结果与背散射、二次电子和扫描电子显微镜的元素分析一致。因此,在定义明确、强烈的成骨环境中,在不同时间应用的 PEMF 能够进一步刺激成骨作用,从而有可能增强骨修复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7778/7861434/d9c1f779381b/pone.0244223.g001.jpg

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