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本文引用的文献

1
Minced muscle autografting improves bone healing but not muscle function in a porcine composite injury model.碎化肌肉自体移植可改善猪复合伤模型中的骨愈合,但不能改善肌肉功能。
J Orthop Res. 2023 Sep;41(9):1890-1901. doi: 10.1002/jor.25551. Epub 2023 Mar 26.
2
Hindlimb unloading in C57BL/6J mice induces bone loss at thermoneutrality without change in osteocyte and lacuno-canalicular network.C57BL/6J小鼠后肢卸载在热中性条件下会导致骨质流失,而骨细胞和骨陷窝-小管网络无变化。
Bone. 2023 Apr;169:116640. doi: 10.1016/j.bone.2022.116640. Epub 2022 Dec 13.
3
The impact of bilateral injuries on the pathophysiology and functional outcomes of volumetric muscle loss.双侧损伤对容积性肌肉损失的病理生理学及功能结局的影响。
NPJ Regen Med. 2022 Oct 15;7(1):59. doi: 10.1038/s41536-022-00255-2.
4
Early initiation of electrical stimulation paired with range of motion after a volumetric muscle loss injury does not benefit muscle function.早期启动电刺激联合容积缺失性损伤后进行的关节活动度训练对肌肉功能无益。
Exp Physiol. 2023 Jan;108(1):76-89. doi: 10.1113/EP090630. Epub 2022 Sep 30.
5
Acyloxyacyl hydrolase deficiency induces chronic inflammation and bone loss in male mice.酰氧基酰基水解酶缺乏导致雄性小鼠慢性炎症和骨丢失。
J Mol Med (Berl). 2022 Nov;100(11):1599-1616. doi: 10.1007/s00109-022-02252-w. Epub 2022 Sep 16.
6
Pharmaceutical Agents for Contractile-Metabolic Dysfunction After Volumetric Muscle Loss.容积性肌肉损失后收缩代谢功能障碍的药物治疗。
Tissue Eng Part A. 2022 Sep;28(17-18):795-806. doi: 10.1089/ten.TEA.2022.0036. Epub 2022 Aug 1.
7
Mast Cells Drive Systemic Inflammation and Compromised Bone Repair After Trauma.肥大细胞驱动创伤后全身炎症和骨修复受损。
Front Immunol. 2022 Apr 26;13:883707. doi: 10.3389/fimmu.2022.883707. eCollection 2022.
8
Evaluating the potential use of functional fibrosis to facilitate improved outcomes following volumetric muscle loss injury.评估功能性纤维化在改善容积性肌肉损失损伤后的预后中的潜在应用。
Acta Biomater. 2022 Mar 1;140:379-388. doi: 10.1016/j.actbio.2021.11.032. Epub 2021 Nov 26.
9
Independent of physical activity, volumetric muscle loss injury in a murine model impairs whole-body metabolism.与体力活动无关,鼠模型中的容积性肌肉损失损伤会损害全身代谢。
PLoS One. 2021 Jun 25;16(6):e0253629. doi: 10.1371/journal.pone.0253629. eCollection 2021.
10
Sex differences in systemic bone and muscle loss following femur fracture in mice.小鼠股骨骨折后系统性骨和肌肉丢失的性别差异。
J Orthop Res. 2022 Apr;40(4):878-890. doi: 10.1002/jor.25116. Epub 2021 Jun 13.

胫骨骨强度会受到雄性小鼠邻近肌肉容积性肌肉损失损伤的负面影响。

Tibial bone strength is negatively affected by volumetric muscle loss injury to the adjacent muscle in male mice.

机构信息

Department of Kinesiology, University of Georgia, Athens, Georgia, USA.

Department of Oral Biology and Diagnostic Sciences, Dental College of Georgia, August University, Augusta, Georgia, USA.

出版信息

J Orthop Res. 2024 Jan;42(1):123-133. doi: 10.1002/jor.25643. Epub 2023 Jun 27.

DOI:10.1002/jor.25643
PMID:37337074
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10728344/
Abstract

This study's objective was to investigate how contractile strength loss associated with a volumetric muscle loss (VML) injury affects the adjacent tibial bone structural and functional properties in male C57BL/6J mice. Mice were randomized into one of two experimental groups: VML-injured mice that were injured at age 12 weeks and aged to 20 weeks (8 weeks postinjury, VML) and 20-week-old age-matched uninjured mice (Uninjured-20). Tibial bone strength, mid-diaphysis cortical geometry, intrinsic material properties, and metaphyseal trabecular bone structure were assessed by three-point bending and microcomputed tomography (µCT). The plantar flexor muscle group (gastrocnemius, soleus, plantaris) was analyzed for its functional capacities, that is, peak-isometric torque and peak-isokinetic power. VML-injured limbs had 25% less peak-isometric torque and 31% less peak-isokinetic power compared to those of Uninjured-20 mice (p < 0.001). Ultimate load, but not stiffness, was significantly less (10%) in tibias of VML-injured limbs compared to those from Uninjured-20 (p = 0.014). µCT analyses showed cortical bone thickness was 6% less in tibias of VML-injured limbs compared to Uninjured-20 (p = 0.001). Importantly, tibial bone cross-section moment of inertia, the primary determinant of bone ultimate load, was 16% smaller in bones of VML-injured limbs compared to bones from Uninjured-20 (p = 0.046). Metaphyseal trabecular bone structure was also altered up to 23% in tibias of VML-injured limbs (p < 0.010). These changes in tibial bone structure and function after a VML injury occur during a natural maturation phase between the age of 12 and 20 weeks, as evidenced by Uninjured-20 mice having greater tibial bone size and strength compared to uninjured-aged 12-week mice.

摘要

本研究旨在探究与容积性肌肉损失(VML)损伤相关的收缩力丧失如何影响雄性 C57BL/6J 小鼠胫骨的邻近骨结构和功能特性。将小鼠随机分为以下两组:12 周龄时受伤并在 20 周龄(受伤后 8 周,VML)时进行评估的 VML 损伤组,以及年龄匹配的 20 周龄未受伤组(未受伤-20)。通过三点弯曲和微计算机断层扫描(µCT)评估胫骨强度、中干骺端皮质几何形状、固有材料特性和骺端小梁骨结构。对跖屈肌(比目鱼肌、腓肠肌、跖肌)进行了功能容量分析,即峰值等长扭矩和峰值等速功率。与未受伤-20 组相比,VML 损伤组的峰值等长扭矩降低了 25%,峰值等速功率降低了 31%(p < 0.001)。与未受伤-20 组相比,VML 损伤组的胫骨最终负荷(而非刚度)显著降低了 10%(p = 0.014)。与未受伤-20 组相比,VML 损伤组的胫骨皮质厚度降低了 6%(p = 0.001)。重要的是,VML 损伤组的胫骨骨截面惯性矩(骨最终负荷的主要决定因素)比未受伤-20 组小 16%(p = 0.046)。VML 损伤组的骺端小梁骨结构也发生了高达 23%的改变(p < 0.010)。这些 VML 损伤后胫骨骨结构和功能的变化发生在 12 至 20 周之间的自然成熟阶段,这可从未受伤-20 组的胫骨大小和强度明显大于未受伤的 12 周龄组的结果中得到证明。