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Activation of dimeric glucocorticoid receptors in osteoclast progenitors potentiates RANKL induced mature osteoclast bone resorbing activity

机译:破骨细胞祖细胞中二聚体糖皮质激素受体的激活增强了RANKL诱导的成熟破骨细胞骨吸收活性

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Glucocorticoid (GC) therapy is the greatest risk factor for secondary osteoporosis. Pathogenic mechanisms involve an initial increase in bone resorption followed by decreased bone formation. To gain a better understanding of the resorptive activity of GCs, we have used mouse bone marrow macrophages (BMM) to determine if GCs can directly modulate RANKL stimulated osteoclast formation and/or activity. In agreement with previous studies, experiments performed in plastic wells showed that GCs (dexamethasone, hydrocortisone, and prednisolone) inhibited osteoclast number and size during the initial phases of RANKL stimulated osteoclastogenesis; however, in prolonged cultures, decreased apoptosis was observed and escape from GC induced inhibition occurred with an enhanced number of osteoclasts formed, many with an increased area. When BMM cells were seeded on bone slices, GCs robustly enhanced RANKL stimulated formation of resorption pits and release of CTX without affecting the number or size of osteoclasts formed and with no effect on apoptosis. Stimulation of pit formation was not associated with increased life span of osteoclasts or an effect on mRNA expression of several osteoclastic or osteoclastogenic genes. The potentiation of RANKL induced CTX release by dexamethasone was significantly less in BMM cells from mice with conditional knockout of the osteoclastic glucocorticoid receptor and completely absent in cells from Gem mice, which carry a point mutation in one dimerizing interface of the GC receptor. These data suggest that: 1. Plastic is a poor medium to use for studying direct effects of GCs on osteoclasts 2. GCs can enhance bone resorption without decreasing apoptosis, and 3. A direct enhancement of RANKL mediated resorption is stimulated by the dimeric GC -receptor. (C) 2016 Elsevier Inc All rights reserved.
机译:糖皮质激素(GC)治疗是继发性骨质疏松症的最大危险因素。致病机理涉及骨吸收的最初增加,然后是骨形成减少。为了更好地了解GC的吸收活性,我们使用了小鼠骨髓巨噬细胞(BMM)来确定GC是否可以直接调节RANKL刺激的破骨细胞的形成和/或活性。与先前的研究一致,在塑料井中进行的实验表明,在RANKL刺激的破骨细胞形成初期,GC(地塞米松,氢化可的松和泼尼松龙)抑制破骨细胞的数量和大小。然而,在长时间的培养中,观察到细胞凋亡减少,并且由于形成的破骨细胞数量增加而许多细胞面积增加,从而逃避了GC诱导的抑制。当将BMM细胞接种在骨切片上时,GC强烈增强了RANKL刺激了吸收坑的形成和CTX的释放,而不会影响所形成的破骨细胞的数量或大小,并且对凋亡没有影响。刺激凹坑形成与破骨细胞的寿命增加或对几种破骨或破骨细胞基因的mRNA表达没有影响。在有条件敲除破骨细胞糖皮质激素受体的小鼠的BMM细胞中,地塞米松对RANKL诱导的CTX释放的增强作用显着降低,而在Gem小鼠的细胞中则完全不存在,后者在GC受体的一个二聚化界面中带有点突变。这些数据表明:1.塑料是用于研究GC对破骨细胞的直接作用的不良培养基2. GC可增强骨吸收而不降低细胞凋亡,并且3.二聚体GC刺激RANKL介导的吸收直接增强-受体。 (C)2016 Elsevier Inc保留所有权利。

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