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Cellular responses and gene expression profile changes due to bleomycin-induced DNA damage in human fibroblasts in space.太空环境中博来霉素诱导的人类成纤维细胞DNA损伤所引起的细胞反应和基因表达谱变化
PLoS One. 2017 Mar 1;12(3):e0170358. doi: 10.1371/journal.pone.0170358. eCollection 2017.
2
Detection of DNA damage by space radiation in human fibroblasts flown on the International Space Station.在国际空间站飞行的人类成纤维细胞中检测空间辐射引起的 DNA 损伤。
Life Sci Space Res (Amst). 2017 Feb;12:24-31. doi: 10.1016/j.lssr.2016.12.004. Epub 2016 Dec 24.
3
A priming dose of protons alters the early cardiac cellular and molecular response to (56)Fe irradiation.质子的预照射剂量改变了(56)Fe 照射后的早期心脏细胞和分子反应。
Life Sci Space Res (Amst). 2016 Feb;8:8-13. doi: 10.1016/j.lssr.2015.12.001. Epub 2015 Dec 14.
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Long-duration bed rest as an analog to microgravity.长时间卧床休息作为微重力的模拟状态。
J Appl Physiol (1985). 2016 Apr 15;120(8):891-903. doi: 10.1152/japplphysiol.00935.2015. Epub 2016 Feb 18.
5
Combined exposure to protons and (56)Fe leads to overexpression of Il13 and reactivation of repetitive elements in the mouse lung.质子和(56)Fe 的联合暴露导致小鼠肺部 Il13 的过表达和重复元件的重新激活。
Life Sci Space Res (Amst). 2015 Nov;7:1-8. doi: 10.1016/j.lssr.2015.08.001. Epub 2015 Aug 18.
6
Effects of microgravity on DNA damage response in Caenorhabditis elegans during Shenzhou-8 spaceflight.神舟八号航天飞行期间微重力对秀丽隐杆线虫DNA损伤反应的影响。
Int J Radiat Biol. 2015 Jul;91(7):531-9. doi: 10.3109/09553002.2015.1043754. Epub 2015 May 12.
7
Free-radical chemistry as a means to evaluate lunar dust health hazard in view of future missions to the moon.鉴于未来的月球任务,自由基化学作为评估月球尘埃健康危害的一种手段。
Astrobiology. 2015 May;15(5):371-80. doi: 10.1089/ast.2014.1216. Epub 2015 May 6.
8
Increased sensitivity of DNA damage response-deficient cells to stimulated microgravity-induced DNA lesions.DNA损伤反应缺陷细胞对模拟微重力诱导的DNA损伤的敏感性增加。
PLoS One. 2015 Apr 27;10(4):e0125236. doi: 10.1371/journal.pone.0125236. eCollection 2015.
9
Relationship between carbon dioxide levels and reported headaches on the international space station.国际空间站二氧化碳水平与报告头痛之间的关系。
J Occup Environ Med. 2014 May;56(5):477-83. doi: 10.1097/JOM.0000000000000158.
10
Interplay between DNA repair and inflammation, and the link to cancer.DNA 修复与炎症的相互作用及其与癌症的关联。
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空间辐射与微重力在DNA损伤及DNA损伤反应中的相互作用。

Interplay of space radiation and microgravity in DNA damage and DNA damage response.

作者信息

Moreno-Villanueva María, Wong Michael, Lu Tao, Zhang Ye, Wu Honglu

机构信息

NASA, Johnson Space Center, Houston, TX USA.

University of Konstanz, Konstanz, 78457 Germany.

出版信息

NPJ Microgravity. 2017 May 10;3:14. doi: 10.1038/s41526-017-0019-7. eCollection 2017.

DOI:10.1038/s41526-017-0019-7
PMID:28649636
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5460239/
Abstract

In space, multiple unique environmental factors, particularly microgravity and space radiation, pose constant threat to the DNA integrity of living organisms. Specifically, space radiation can cause damage to DNA directly, through the interaction of charged particles with the DNA molecules themselves, or indirectly through the production of free radicals. Although organisms have evolved strategies on Earth to confront such damage, space environmental conditions, especially microgravity, can impact DNA repair resulting in accumulation of severe DNA lesions. Ultimately these lesions, namely double strand breaks, chromosome aberrations, micronucleus formation, or mutations, can increase the risk for adverse health effects, such as cancer. How spaceflight factors affect DNA damage and the DNA damage response has been investigated since the early days of the human space program. Over the years, these experiments have been conducted either in space or using ground-based analogs. This review summarizes the evidence for DNA damage induction by space radiation and/or microgravity as well as spaceflight-related impacts on the DNA damage response. The review also discusses the conflicting results from studies aimed at addressing the question of potential synergies between microgravity and radiation with regard to DNA damage and cellular repair processes. We conclude that further experiments need to be performed in the true space environment in order to address this critical question.

摘要

在太空中,多种独特的环境因素,尤其是微重力和空间辐射,持续威胁着生物体的DNA完整性。具体而言,空间辐射可直接通过带电粒子与DNA分子本身的相互作用,或间接通过自由基的产生对DNA造成损伤。尽管生物体在地球上已经进化出应对此类损伤的策略,但太空环境条件,尤其是微重力,会影响DNA修复,导致严重DNA损伤的积累。最终,这些损伤,即双链断裂、染色体畸变、微核形成或突变,会增加不良健康影响的风险,如癌症。自人类太空计划早期以来,人们就一直在研究太空飞行因素如何影响DNA损伤和DNA损伤反应。多年来,这些实验要么在太空中进行,要么使用地面模拟装置。本综述总结了空间辐射和/或微重力诱导DNA损伤的证据,以及太空飞行对DNA损伤反应的影响。该综述还讨论了旨在解决微重力和辐射在DNA损伤和细胞修复过程中潜在协同作用问题的研究中相互矛盾的结果。我们得出结论,需要在真实的太空环境中进行进一步实验,以解决这个关键问题。