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首页> 外文期刊>Stem cells translational medicine. >In vivo hypobaric hypoxia performed during the remodeling process accelerates bone healing in mice
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In vivo hypobaric hypoxia performed during the remodeling process accelerates bone healing in mice

机译:在重塑过程中进行的体内低压缺氧会加速小鼠的骨愈合

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We investigated the effects of respiratory hypobaric hypoxia on femoral bone-defect repair in mice because hypoxia is believed to influence both mesenchymal stromal cell (MSC) and hematopoietic stem cell mobilization, a process involved in the bone-healing mechanism. To mimic conditions of non-weight-bearing limb immobilization in patients suffering from bone trauma, our hypoxic mouse model wasfurther subjected to hind-limb unloading.Aholewasdrilled in the right femur of adult male C57/BL6J mice. Four days after surgery, mice were subjected to hind-limb unloading for 1 week. Seven days after surgery, mice were either housed for 4 days in a hypobaric room (FiO2 at 10%) or kept under normoxic conditions. Unsuspended control mice were housed in either hypobaric or normoxic conditions. Animals were sacrificed on postsurgery day 11 to allow for collection of both contralateral and lesioned femurs, blood, and spleen. As assessed by microtomography, delayed hypoxia enhanced bone-healing efficiency by increasing the closing of the cortical defect and the newly synthesized bone volume in the cavity by155%and135%, respectively. Proteomeanalysis and histomorphometric data suggested that bone-repair improvement likely results from the acceleration of the natural bone-healing process rather than from extended mobilization of MSC-derived osteoprogenitors. Hind-limb unloading had hardly any effect beyond delayed hypoxia-enhanced bone-healing efficiency.
机译:我们研究了呼吸低压对小鼠股骨骨缺损修复的影响,因为人们认为缺氧会影响间充质基质细胞(MSC)和造血干细胞动员,这是一个涉及骨愈合机制的过程。为了模拟患有骨创伤的患者的不负重肢体固定的情况,我们对缺氧小鼠模型进行了后肢卸载。在成年雄性C57 / BL6J小鼠的右股骨中钻孔。手术后四天,将小鼠的后肢卸载1周。手术后7天,将小鼠在低压室(FiO2为10%)饲养4天,或保持在常氧条件下。将未悬浮的对照小鼠置于低压或常氧条件下。术后第11天处死动物,以收集对侧和病变的股骨,血液和脾脏。通过显微照相术评估,延迟缺氧通过将皮质缺损的闭合和腔内新合成的骨体积分别增加155%和135%来增强骨愈合效率。蛋白质组分析和组织形态计量学数据表明,骨修复的改善可能是由于自然的骨愈合过程的加速,而不是由MSC衍生的骨祖细胞的长期动员引起的。后肢卸载除了延迟缺氧增强的骨愈合效率外几乎没有任何作用。

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