空间辐射与骨质流失。

Jeffrey S Willey, Shane A J Lloyd, Gregory A Nelson, Ted A Bateman
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摘要

在前往月球、火星或近地小行星的长期太空飞行任务中,暴露于电离辐射可能会对骨骼完整性产生负面影响。然而,与失重的影响相比,我们对辐射对骨骼影响的理解是有限的。除了微重力外,宇航员还将暴露在来自太阳和宇宙源的空间辐射中。从历史上看,辐射暴露已被证明会损害受照射体积内的成骨细胞前体和局部血管系统。由此导致的骨形成抑制和低骨转换的普遍状态被认为是骨质流失和最终骨折的主要原因。最近使用小鼠模型的研究发现,在航天和临床相关的辐射质量和剂量照射后,破骨细胞活性立即迅速但短暂地增加。再加上辐射暴露后骨形成的慢性抑制,这种急性骨骼损伤可能导致骨质量的长期恶化,潜在地增加骨折风险。辐射对人体骨骼的破坏性影响的直接证据主要表现在癌症治疗期间吸收高剂量辐射的部位骨折发生率的增加:暴露量大大高于航天飞行期间的预期暴露量。然而,在不同的暴露情况下,骨损伤的快速性和变化的慢性性质似乎是相似的。这篇综述将概述我们目前的知识空间和临床探索暴露于电离辐射对骨骼健康。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Space Radiation and Bone Loss.

Exposure to ionizing radiation may negatively impact skeletal integrity during extended spaceflight missions to the moon, Mars, or near-Earth asteroids. However, our understanding of the effects of radiation on bone is limited when compared to the effects of weightlessness. In addition to microgravity, astronauts will be exposed to space radiation from solar and cosmic sources. Historically, radiation exposure has been shown to damage both osteoblast precursors and local vasculature within the irradiated volume. The resulting suppression of bone formation and a general state of low bone-turnover is thought to be the primary contributor to bone loss and eventual fracture. Recent investigations using mouse models have identified a rapid, but transient, increase in osteoclast activity immediately after irradiation with both spaceflight and clinically-relevant radiation qualities and doses. Together with a chronic suppression of bone formation after radiation exposure, this acute skeletal damage may contribute to long-term deterioration of bone quality, potentially increasing fracture risk. Direct evidence for the damaging effects of radiation on human bone are primarily demonstrated by the increased incidence of fractures at sites that absorb high doses of radiation during cancer therapy: exposures are considerably higher than what could be expected during spaceflight. However, both the rapidity of bone damage and the chronic nature of the changes appear similar between exposure scenarios. This review will outline our current knowledge of space and clinical exploration exposure to ionizing radiation on skeletal health.

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