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Effect of Proton Irradiation Followed by Hindlimb Unloading on Bone in Mature Mice: A Model of Long-Duration Spaceflight

机译:质子辐照的影响后来的成熟小鼠骨卸载:长持续时间空间模型

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摘要

Bone loss associated with microgravity unloading is well documented; however, the effects of spaceflight-relevant types and doses of radiation on the skeletal system are not well defined. In addition, the combined effect of unloading and radiation has not received much attention. In the present study, we investigated the effect of proton irradiation followed by mechanical unloading via hindlimb suspension (HLS) in mice. Sixteen-week-old female C57BL/6 mice were either exposed to 1 Gy of protons or a sham irradiation procedure (n=30/group). One day later, half of the mice in each group were subjected to four weeks of HLS or normal loading conditions. Radiation treatment alone (IRR) resulted in approximately 20% loss of trabecular bone volume fraction (BV/TV) in the tibia and femur, with no effect in the cortical bone compartment. Conversely, unloading induced substantially greater loss of both trabecular bone (60–70% loss of BV/TV) and cortical bone (approximately 20% loss of cortical bone volume) in both the tibia and femur, with corresponding decreases in cortical bone strength. Histological analyses and serum chemistry data demonstrated increased levels of osteoclast-mediated bone resorption in unloaded mice, but not IRR. HLS+IRR mice generally experienced greater loss of trabecular bone volume fraction, connectivity density, and trabecular number than either unloading or irradiation alone. Although the duration of unloading may have masked certain effects, the skeletal response to irradiation and unloading appears to be additive for certain parameters. Appropriate modeling of the environmental challenges of long duration spaceflight will allow for a better understanding of the underlying mechanisms mediating spaceflight-associated bone loss and for the development of effective countermeasures.
机译:与微重力卸载相关的骨丢失已有详细记录;然而,与航天有关的类型和辐射剂量对骨骼系统的影响尚不清楚。另外,卸载和辐射的综合作用并未引起太多关注。在本研究中,我们研究了质子辐照后通过后肢悬吊(HLS)进行机械卸载的效果。将16周龄的雌性C57BL / 6小鼠暴露于1 Gy质子或进行假辐射程序(n = 30 /组)。一天后,每组中的一半小鼠接受了4周的HLS或正常负荷条件。单独进行放射治疗(IRR)会导致胫骨和股骨的小梁骨体积分数(BV / TV)损失大约20%,而在皮质骨腔中没有影响。相反,卸载会导致胫骨和股骨的小梁骨(BV / TV损失60-70%)和皮质骨的损失大大增加(皮质骨体积损失约20%),皮质骨强度相应降低。组织学分析和血清化学数据表明,空载小鼠中破骨细胞介导的骨吸收水平增加,但IRR没有。与单独卸载或照射相比,HLS + IRR小鼠通常经历的小梁骨体积分数,连接密度和小梁数目的损失更大。尽管卸载的持续时间可能掩盖了某些效果,但是对于某些参数,骨骼对辐照和卸载的响应似乎是相加的。对长时间航天的环境挑战进行适当的建模将有助于更好地理解介导与航天相关的骨丢失的潜在机制,并可以制定有效的对策。

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