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一种使用新型刚性内固定系统的用于骨组织工程的鼠股骨节段性缺损模型。

A murine femoral segmental defect model for bone tissue engineering using a novel rigid internal fixation system.

机构信息

The State Key Laboratory Breeding Base of Basic Science of Stomatology (Hubei-MOST) and Key Laboratory of Oral Biomedicine Ministry of Education, School and Hospital of Stomatology, Wuhan University, Wuhan, PR China.

出版信息

J Surg Res. 2013 Aug;183(2):493-502. doi: 10.1016/j.jss.2013.02.041. Epub 2013 Mar 15.

Abstract

BACKGROUND

As a model animal, the mouse has already been widely used in bone-related research. However, there is a lack of ideal long bone segmental defect mouse model. Since external fixation has disadvantages of heavy weight, penetrating the skin, and hampering mobility, an internal fixation device is probably more preferable to maintain the segmental bone defect. The aim of this study was to establish a simple, reproducible, and standardized murine critical-size defect model through designing an internal fixation system, verifying its adaptability, and investigating the critical size of femoral segmental defect.

METHODS

By utilizing computer-aided measuring and processing system, anatomical data of adult C57BL/6 mouse femur was obtained, and a plate-bolts system was designed for rigid fixation. The plate and screws were fixed in 67 mice and 1.5 or 2.0 mm defect gaps were created in the femoral midshaft. Compression and three-point bending of bone-implant construct were tested in mice at 0, 2, 5, and 12 wk postoperative to test the biomechanical stability. X-ray, micro-computed tomography, and histology were used to investigate the defect healing process.

RESULTS

The plate- and screws-fitted mouse femur and unilateral or bilateral operation had seemingly no adverse impact on the mouse in general. Mechanical tests indicated that there were no significant differences between the bone-implant construct and intact femur in compression and three-point bending loading. Micro-computed tomography scanning showed the bone mineral density had not been affected by the implantation of fixation device. There was no union of the 2.0 mm segmental defect in 12-wk period.

CONCLUSION

Using the specifically designed rigid internal fixation device, a segmental defect size of 2.0 mm in C57BL/6 mouse femur will show nonunion and can serve as a critical defect size for bone tissue engineering and bone regeneration research.

摘要

背景

作为一种模型动物,小鼠已广泛应用于骨相关研究。然而,目前缺乏理想的长骨节段性缺损小鼠模型。由于外固定具有重量大、穿透皮肤和妨碍活动的缺点,内固定装置可能更适合维持节段性骨缺损。本研究旨在通过设计一种内固定系统来建立一种简单、可重复和标准化的小鼠临界尺寸缺陷模型,验证其适应性,并研究股骨节段性缺损的临界尺寸。

方法

利用计算机辅助测量和处理系统获取成年 C57BL/6 小鼠股骨的解剖学数据,并设计用于刚性固定的板-螺栓系统。将板和螺钉固定在 67 只小鼠中,并在股骨中段制造 1.5 或 2.0mm 的缺损间隙。在术后 0、2、5 和 12 周时,对小鼠的骨-植入物结构进行压缩和三点弯曲测试,以测试生物力学稳定性。X 射线、微计算机断层扫描和组织学用于研究缺损愈合过程。

结果

板和螺钉固定的小鼠股骨和单侧或双侧手术似乎对小鼠总体没有不良影响。力学测试表明,在压缩和三点弯曲加载下,骨-植入物结构与完整股骨之间没有显著差异。微计算机断层扫描显示,植入固定装置并未影响骨密度。在 12 周的时间内,2.0mm 节段性缺损没有愈合。

结论

使用专门设计的刚性内固定装置,C57BL/6 小鼠股骨的 2.0mm 节段性缺损将显示不愈合,并可作为骨组织工程和骨再生研究的临界缺损尺寸。

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