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首页> 外文期刊>Tissue engineering >Effects of Mechanical Stimulation on the Biomechanics and Histology of Stem Cell-Collagen Sponge Constructs for Rabbit Patellar Tendon Repair
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Effects of Mechanical Stimulation on the Biomechanics and Histology of Stem Cell-Collagen Sponge Constructs for Rabbit Patellar Tendon Repair

机译:机械刺激对兔Pat骨腱修复干细胞-胶原海绵构建体的生物力学和组织学的影响

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摘要

The objective of this study was to determine how mechanical stimulation affects the biomechanics and histology of stem cell-collagen sponge constructs used to repair central rabbit patellar tendon defects. Autogenous tissue-engineered constructs were created for both in vitro and in vivo analyses by seeding mesenchymal stem cells from 10 adult rabbits at 0.14 x 10~6 cells/construct in type I collagen sponges. Half of these constructs were mechanically stimulated once every 5 min for 8 h/day to a peak strain of 4% for 2 weeks. The other half remained in an incubator without mechanical stimulation for 2 weeks. Samples allocated for in vitro testing revealed that mechanically stimulated constructs had 2.5 times the linear stiffness of nonstimulated constructs. The remaining paired constructs for in vivo studies were implanted in bilateral full-thickness, full-length defects in the central third of rabbit patellar tendons. Twelve weeks after surgery, repair tissues were assigned for biomechanical (7 pairs) and histologic (3 pairs) analyses. Maximum force, linear stiffness, maximum stress, and linear modulus for the stimulated (vs. non-stimulated) repairs averaged 70% (vs. 55%), 85% (vs. 55%), 70% (vs. 50%), and 50% (vs. 40%) of corresponding values for the normal central third of the patellar tendons. The average force-elongation curve for the mechanically stimulated repairs also matched the corresponding curve for the normal patellar tendons, up to 150% of the peak in vivo force values recorded in a previous study. Construct and repair linear stiffness and linear modulus were also positively correlated (r = 0.6 and 0.7, respectively). Histologically both repairs showed excellent cellular alignment and mild staining for decorin and collagen type V, and moderate staining for fibronectin and collagen type III. This study shows that mechanical stimulation of stem cell-collagen sponge constructs can significantly improve tendon repair biomechanics up to and well beyond the functional limits of in vivo loading.
机译:这项研究的目的是确定机械刺激如何影响用于修复兔central骨中央肌腱缺损的干细胞胶原海绵构造的生物力学和组织学。通过将10只成年兔的间充质干细胞以0.14 x 10〜6个细胞/构建体的形式接种在I型胶原海绵中,创建用于体外和体内分析的自体组织工程构建体。每5分钟以机械方式刺激这些构建体的一半,持续8小时/天,持续2周,达到4%的峰值应变。另一半在没有机械刺激的恒温箱中放置了2周。分配用于体外测试的样品显示,机械刺激的构建体的线性刚度是未刺激的构建体的2.5倍。其余用于体内研究的配对构建体植入兔rabbit腱中央三分之一的双侧全层,全长缺损中。手术后十二周,修复组织被指定进行生物力学分析(7对)和组织学分析(3对)。刺激(相对于非刺激)修复的最大力,线性刚度,最大应力和线性模量平均为70%(相对于55%),85%(相对于55%),70%(相对于50%) ,以及the骨中央正中三分之一的相应值的50%(相对于40%)。机械刺激修复的平均力-伸长率曲线也与正常pa骨肌腱的相应曲线相匹配,最高可达先前研究中记录的体内峰值力值的150%。构造和修复的线性刚度和线性模量也呈正相关(分别为r = 0.6和0.7)。从组织学上看,这两种修复均显示出优异的细胞排列性,以及对于得体和V型胶原的温和染色,以及对纤连蛋白和III型胶原的中等染色。这项研究表明,干细胞胶原海绵构造物的机械刺激可以显着改善肌腱修复的生物力学,甚至达到并超过体内负荷的功能极限。

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