载人深空探索中空间辐射防护技术的研究进展
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  • 英文篇名:Research progress of space radiation protection technologies in manned deep space exploration missions
  • 作者:赵磊 ; 尚钰轩 ; 袁爽 ; 何欣叶 ; 宓东 ; 孙野青
  • 英文作者:Lei Zhao;Yuxuan Shang;Shuang Yuan;Xinye He;Dong Mi;Yeqing Sun;Institute of Environmental Systems Biology,College of Environmental Science and Engineering,Dalian Maritime University;College of Science,Dalian Maritime University;
  • 关键词:载人深空探索 ; 空间辐射防护 ; 物理防护 ; 生物医学防护
  • 英文关键词:manned deep space exploration;;space radiation;;physical shielding;;biomedical protection
  • 中文刊名:KXTB
  • 英文刊名:Chinese Science Bulletin
  • 机构:大连海事大学环境科学与工程学院环境系统生物学研究所;大连海事大学理学院;
  • 出版日期:2019-06-11 09:49
  • 出版单位:科学通报
  • 年:2019
  • 期:v.64
  • 基金:国家自然科学基金(31700742);; 中国科协“青年人才托举工程”(2017QNRC001);; 博士后创新人才支持计划(BX20190050);; 中国科学院“空间科学(二期)”战略性先导科技专项(XDA15014500);; 中央高校基本科研业务费专项(3132018172,3132019603)资助
  • 语种:中文;
  • 页:KXTB201920006
  • 页数:17
  • CN:20
  • ISSN:11-1784/N
  • 分类号:27-43
摘要
空间辐射防护是载人深空探索任务中降低航天员的空间辐射损伤和致病风险,确保航天员健康与安全的重要保障措施.然而,由于空间辐射环境的独特性与复杂性,目前的辐射防护技术面临着一系列的问题与挑战.本文在分析载人深空探索任务中空间辐射环境特点的基础上,系统综述了空间辐射防护技术中物理防护和生物医学防护技术的研究进展,提出了深空探索任务中空间辐射防护研究涉及的关键技术问题以及后续开展深入研究的一些设想,可为载人深空探索任务的实施提供参考与借鉴.
        Unlike the low-Earth orbit(LEO) project, space radiation, mainly coming from galactic cosmic radiation(GCR) and solar particle event(SPE), has been generally considered to be one of the most important health risk factors for astronauts in manned deep space exploration missions. In fact, space radiation environment in deep space is substantially different from that in low Earth orbit, in which high-energy protons and heavy nuclei provide the main contribution to the equivalent dose and health risk. Both the total equivalent dose and health risk in deep space are significantly higher than those in LEO missions, which may exceed the permissible radiation exposure limits in the career of astronauts. And, health risks from space radiation exposure remain a primary concern for manned deep space explorations. Space radiation protection is an important strategy to reduce astronauts' risks of damage and disease induced by space radiation and ensure their health and safety in manned deep space exploration missions. Therefore, space radiation protection is considered to be an important technical problem to be solved in the further manned spaceflight project. However, the complexity and particularity of space radiation environment in manned deep space exploration missions make space radiation protection extremely difficult. Based on the analysis of space radiation environment characteristics in manned deep space exploration missions,this review systematically summarizes and analyzes the current research progresses of space radiation protection, including physical protection and biomedical protection. In general, the physical protection refers to the passive shielding and acitve shielding. The passive shielding of materials with different thickness is the simplest and feasible physical countermeasure to deal with deep space radiation, especially in the case of SPE occurrences. The passive shielding technologies were raised and reviewed from four aspects, including radiation shielding performance indexes and their applications in new material selections, manned spacecraft radiation shielding, personal radiation shielding, and astral surface soil radiation shielding.However, the passive shielding is problematic for GCR due to the penetration of primary high-energy particles, the production of secondary radiation and the mass constraints of manned spacecraft. While, active shielding, involving the generation of electromagnetic fields to deflect space radiation, is a promising and interesting technical improvement to overcome challenging technical hindrance to prevent GCR. But different kinds of active shielding technologies, such as electrostatic shielding, plasma shielding, confined and unconfined magnetic field shielding, have not been applicable in practical cases. Moreover, a series of radioprotectors and radiomitigators in the biomedical protection, including(1)antioxidants,(2) inhibitors of various pathways,(3) cytokines, chemokines, growth factors and hormones,(4) protein molecules,(5) cellular therapeutic agents, and(6) plant derived products, were also summarized and reviewed. Most radioprotectors and radiomitigators are currently being researched and developed under early preclinical phase, and have not been approved by the food and drug administrations. At the same time, the deficiency of some present radioprotectors and radiomitigators, such as the unclear biomedical mechanisms and unavoidable side-effects, limited the popularity in actual applications. In a word, the review points out that the current space radiation protection technologies still face a series of problems and challenges, and puts forward the key technologies and countermeasures of the current space radiation protection. The summary and analysis of the critical challenges and key countermeasures of space radiation protection are of great significance for the follow-up researches and provide a theoretical basis and a solution for the implementation of manned deep space exploration mission.
引文
1 Ye P J,Guo L L,Zhang Z X,et al.Risks and challenges of manned deep space exploration mission(in Chinese).Manned Spacefl,2016,22:143-149[叶培建,果琳丽,张志贤,等.有人参与深空探测任务面临的风险和技术挑战.载人航天,2016,22:143-149]
    2 NASA.Managing Space Radiation Risk in the New Era of Space Exploration.Technical Report,National Research Council.2008
    3 Qi P,Guo L L,Zhang Z X,et al.Issues of space medical-engineering in manned deep space exploration mission(in Chinese).Spacecr Environ Eng,2016,(1):21-27[齐玢,果琳丽,张志贤,等.载人深空探测任务航天医学工程问题研究.航天器环境工程,2016,(1):21-27]
    4 Wu D W,Zhang H,Zhao Y L,et al.Research progress of space radiation for manned spaceflight(in Chinese).Space Med Med Eng,2018,31:152-162[吴大蔚,张华,赵亚丽,等.载人航天飞行空间辐射研究进展.航天医学与医学工程,2018,31:152-162]
    5 Mcphee J C,Charles J B.Human Health and Performance Risks of Space Exploration Missions.Technical Report,Johnson Space Center,National Aeronautics and Space Administration.2009
    6 Zhao L,Mi D,Sun Y Q.Issues and challenges of space radiation risk assessment in manned deep space exploration missions(in Chinese).Chin Sci Bull,2018,63:1523-1537[[赵磊,宓东,孙野青.载人深空探索中空间辐射风险评估所面临的问题和挑战.科学通报,2018,63:1523-1537]
    7 Durante M,Cucinotta F A.Heavy ion carcinogenesis and human space exploration.Nat Rev Cancer,2008,8:465-472
    8 Durante M.Space radiation protection:Destination Mars.Life Sci Space Res,2014,1:2-9
    9 Durante M,Bruno C.Impact of rocket propulsion technology on the radiation risk in missions to Mars.Eur Phys J D,2010,60:215-218
    10 Huff J L,Carnell L,Blattnig S,et al.Evidence Report:Risk of Radiation Carcinogenesis.Technical Report,Johnson Space Center,National Aeronautics and Space Administration.2016
    11 Bai Y Q,Wu D W.Space medical challenges and countermeasures in long-term manned spaceflight(in Chinese).Space Med Med Eng,2008,21:210-214[白延强,吴大蔚.长期载人航天中的医学挑战与对策.航天医学与医学工程,2008,21:210-214]
    12 Chancellor J C,Scott G B I,Sutton J P.Space radiation:The number one risk to astronaut health beyond low earth orbit.Life,2014,4:491-510
    13 Durante M,Cucinotta F A.Physical basis of radiation protection in space travel.Rev Mod Phys,2011,83:1245-1281
    14 Lebel E A,Rusek A,Sivertz M B,et al.Analyses of the secondary particle radiation and the DNA damage it causes to human keratinocytes.JRadiat Res,2011,52:685-693
    15 Cucinotta F A,Kim M H Y,Willingham V,et al.Physical and biological organ dosimetry analysis for International Space Station astronauts.Radiat Res,2008,170:127-138
    16 Cucinotta F A,Kim M Y,Chappell L J.Space Radiation Cancer Risk Projections and Uncertainties-2012.Technical Report,Johnson Space Center,National Aeronautics and Space Administration.2013
    17 Zeitlin C,Hassler D M,Cucinotta F A,et al.Measurements of energetic particle radiation in transit to Mars on the Mars Science Laboratory.Science,2013,340:1080-1084
    18 Hassler D M,Zeitlin C,Wimmer-Schweingruber R F,et al.Mars’surface radiation environment measured with the Mars Science Laboratory’s curiosity rover.Science,2014,343:1244797
    19 Cucinotta F A,Hu S,Schwadron N A,et al.Space radiation risk limits and Earth-Moon-Mars environmental models.Space Weather,2010,8:S00E09
    20 Cucinotta F A,Kim M H Y,Chappell L J,et al.How safe is safe enough?Radiation risk for a human mission to Mars.PLoS One,2013,8:e74988
    21 Cucinotta F A,To K,Cacao E.Predictions of space radiation fatality risk for exploration missions.Life Sci Space Res,2017,13:1-11
    22 Cucinotta F A,Cacao E.Non-targeted effects models predict significantly higher Mars mission cancer risk than targeted effects models.Sci Rep,2017,7:1832
    23 Rea G,Cristofaro F,Pani G,et al.Microgravity-driven remodeling of the proteome reveals insights into molecular mechanisms and signal networks involved in response to the space flight environment.J Proteom,2016,137:3-18
    24 Yatagai F,Ishioka N.Are biological effects of space radiation really altered under the microgravity environment?Life Sci Space Res,2014,3:76-89
    25 Zhao L,Gao Y,Mi D,et al.Mining potential biomarkers associated with space flight in Caenorhabditis elegans experienced Shenzhou-8 mission with multiple feature selection techniques.Mutat Res/Fund Mol M,2016,791-792:27-34
    26 Wilson J W,Townsend L W,Schimmerling W,et al.Transport methods and interactions for space radiations.In:Swenberg C E,Horneck G,Stassinopoulos E G,eds.Biological Effects and Physics of Solar and Galactic Cosmic Radiation.Boston:Springer,1993.187-786
    27 Matthi?D,Sihver L,Meier M.Monte-Carlo calculations of particle fluences and neutron effective dose rates in the atmosphere.Radiat Prot Dosim,2008,131:222-228
    28 Sato T,Niita K,Shurshakov VA,et al.Evaluation of dose rate reduction in a spacecraft compartment due to additional water shield.Cosmic Res,2011,49:319-324
    29 Trovati S,Ballarini F,Battistoni G,et al.Human exposure to space radiation:Role of primary and secondary particles.Radiat Prot Dosim,2006,122:362-366
    30 Lobascio C,Briccarello M,Destefanis R,et al.Accelerator-based tests of radiation shielding properties of materials used in human space infrastructures.Health Phys,2008,94:242-247
    31 Zeitlin C,Guetersloh S B,Heilbronn L H,et al.Measurements of materials shielding properties with 1GeV/nuc56Fe.Nucl Instrum Meth B,2006,252:308-318
    32 Silvestri M,Tracino E,Briccarello M,et al.Impact of spacecraft-shell composition on 1 GeV/nucleon56Fe ion-fragmentation and dose reduction.IEEE Trans Nucl Sci,2011,58:3126-3133
    33 Norbury J W,Miller J.Review of nuclear physics experimental data for space radiation.Health Phys,2012,103:640-642
    34 Zeitlin C,Guetersloh S,Heilbronn L,et al.Shielding and fragmentation studies.Radiat Prot Dosim,2005,116:123-124
    35 Townsend L W,Fry R J M.Radiation protection guidance for activities in low-earth orbit.Adv Space Res,2002,30:957-963
    36 Zhao L,Guo Y Y,Mi D,et al.Space radiation risk assessment for astronauts in simulated manned lunar exploration(in Chinese).Spacecr Environ Eng,2016,33:571-580[赵磊,郭祎祎,宓东,等.模拟载人探月中航天员空间辐射风险评估.航天器环境工程,2016,33:571-580]
    37 Townsend L W,Wilson J W,Shinn J L,et al.Human exposure to large solar particle events in space.Adv Space Res,1992,12:339-348
    38 Simonsen L C,Nealy J E,Townsend L W,et al.Space Radiation Shielding for a Martian Habitat.Technical Report,SAE International.1990
    39 Cucinotta F A,Plante I,Ponomarev A L,et al.Nuclear interactions in heavy ion transport and event-based risk models.Radiat Prot Dosim,2011,143:384-390
    40 Kodaira S,Tolochek R V,Ambrozova I,et al.Verification of shielding effect by the water-filled materials for space radiation in the International Space Station using passive dosimeters.Adv Space Res,2014,53:1-7
    41 SzántóP,Apáthy I,Deme S,et al.Onboard cross-calibration of the Pille-ISS detector system and measurement of radiation shielding effect of the water filled protective curtain in the ISS crew cabin.Radiat Meas,2015,82:59-63
    42 Yang C X,Mei M T.Metagalaxy Radiobiology(in Chinese).Guangzhou:Zhongshan University Press,1995[杨垂绪,梅曼彤.太空放射生物学.广州:中山大学出版社,1995]
    43 Vuolo M,Baiocco G,Barbieri S,et al.Exploring innovative radiation shielding approaches in space:A material and design study for a wearable radiation protection spacesuit.Life Sci Space Res,2017,15:69-78
    44 Baiocco G,Giraudo M,Bocchini L,et al.A water-filled garment to protect astronauts during interplanetary missions tested on board the ISS.Life Sci Space Res,2018,18:1-11
    45 Maalouf M,Durante M,Foray N.Biological effects of space radiation on human cells:History,advances and outcomes.J Radiat Res,2011,52:126-146
    46 McCormack P D.Radiation hazards in low earth orbit,polar orbit,geosynchronous orbit,and deep space.In:McCormack P D,Swenberg C E,Bücker H,eds.Terrestrial Space Radiation and its Biological Effects.Boston:Springer,1988.71-96
    47 Xu F,Bai Y Q,Wu D W,et al.Active shielding methods against radiation in manned spaceflight(in Chinese).Space Med Med Eng,2012,25:225-229[许峰,白延强,吴大蔚,等.载人航天空间辐射主动防护方法.航天医学与医学工程,2012,25:225-229]
    48 Kennedy A R.Biological effects of space radiation and development of effective countermeasures.Life Sci Space Res,2014,1:10-43
    49 Singh V K,Hanlon B K,Santiago P T,et al.A review of radiation countermeasures focusing on injury-specific medicinals and regulatory approval status:Part III.Countermeasures under early stages of development along with‘standard of care’medicinal and procedures not requiring regulatory approval for use.Int J Radiat Biol,2017,93:885-906
    50 Mun G I,Kim S,Choi E,et al.Pharmacology of natural radioprotectors.Arch Pharm Res,2018,41:1033-1050
    51 Cheng P C,Min R.Review on radiation protection/mitigating/regulating agents(in Chinese).J Radiat Res Radiat Process,2015,33:060101[程彭超,闵锐.辐射防护/减轻/调节剂研究综述.辐射研究与辐射工艺学报,2015,33:060101]
    52 Smith S M,Zwart S R,Block G,et al.The nutritional status of astronauts is altered after long-term space flight aboard the International Space Station.J Nutr,2005,135:437-443
    53 Weiss J F,Landauer M R.Protection against ionizing radiation by antioxidant nutrients and phytochemicals.Toxicology,2003,189:1-20
    54 Xiao M,Whitnall M.Pharmacological countermeasures for the acute radiation syndrome.Curr Mol Pharmacol,2009,2:122-133
    55 Boccia R.Improved tolerability of amifostine with rapid infusion and optimal patient preparation.Semin Oncol,2002,29:9-13
    56 Koukourakis M I,Panteliadou M,Abatzoglou I M,et al.Postmastectomy hypofractionated and accelerated radiation therapy with(and without)subcutaneous amifostine cytoprotection.Int J Radiat Oncol Biol Phys,2013,85:e7-e13
    57 Peebles D D,Soref C M,Copp R R,et al.ROS-scavenger and radioprotective efficacy of the new PrC-210 aminothiol.Radiat Res,2012,178:57-68
    58 Soref C M,Hacker T A,Fahl W E.A new orally active,aminothiol radioprotector-free of nausea and hypotension side effects at its highest radioprotective doses.Int J Radiat Oncol Biol Phys,2012,82:e701-e707
    59 Singh V K,Beattie L A,Seed T M.Vitamin E:Tocopherols and tocotrienols as potential radiation countermeasures.J Radiat Res,2013,54:973-988
    60 Singh P K,Wise S Y,Ducey E J,et al.α-Tocopherol succinate protects mice against radiation-induced gastrointestinal injury.Radiat Res,2012,177:133-145
    61 Kim S G,Nam S Y,Kim C W.In vivo radioprotective effects of Oltipraz inγ-irradiated mice.Biochem Pharmacol,1998,55:1585-1590
    62 Hepgül G,Tanrikulu S,Unalp H R,et al.Preventive effect of pentoxifylline on acute radiation damage via antioxidant and anti-inflammatory pathways.Dig Dis Sci,2010,55:617-625
    63 Lu L,Dong J,Li D,et al.3,3’-diindolylmethane mitigates total body irradiation-induced hematopoietic injury in mice.Free Radical Biol Med,2016,99:463-471
    64 Rübe C E,Wilfert F,Uthe D,et al.Modulation of radiation-induced tumour necrosis factorα(TNF-α)expression in the lung tissue by pentoxifylline.Radiother Oncol,2002,64:177-187
    65 Sato T,Kinoshita M,Yamamoto T,et al.Treatment of irradiated mice with high-dose ascorbic acid reduced lethality.PLoS One,2015,10:e0117020
    66 Xu P T,Maidment 3rd B W,Antonic V,et al.Cerium oxide nanoparticles:A potential medical countermeasure to mitigate radiation-induced lung injury in CBA/J Mice.Radiat Res,2016,185:516-526
    67 Jia D,Koonce N A,Griffin R J,et al.Prevention and mitigation of acute death of mice after abdominal irradiation by the antioxidant N-acetylcysteine(NAC).Radiat Res,2010,173:579-589
    68 Xu G,Wu H,Zhang J,et al.Metformin ameliorates ionizing irradiation-induced long-term hematopoietic stem cell injury in mice.Free Radical Biol Med,2015,87:15-25
    69 Wang X,Wei L,Cramer J M,et al.Pharmacologically blocking p53-dependent apoptosis protects intestinal stem cells and mice from radiation.Sci Rep,2015,5:8566
    70 van der Veen S J,Ghobadi G,de Boer R A,et al.ACE inhibition attenuates radiation-induced cardiopulmonary damage.Radiother Oncol,2015,114:96-103
    71 Lu X,Nurmemet D,Bolduc D L,et al.Radioprotective effects of oral 17-dimethylaminoethylamino-17-demethoxygeldanamycin in mice:Bone marrow and small intestine.Cell Biosci,2013,3:36
    72 Miller A C,Cohen S,Stewart M,et al.Radioprotection by the histone deacetylase inhibitor phenylbutyrate.Radiat Environ Biophys,2011,50:585-596
    73 Ostrau C,Hülsenbeck J,Herzog M,et al.Lovastatin attenuates ionizing radiation-induced normal tissue damage in vivo.Radiother Oncol,2009,92:492-499
    74 Olcina M M,Giaccia A J.Reducing radiation-induced gastrointestinal toxicity-The role of the PHD/HIF axis.J Clin Invest,2016,126:3708-3715
    75 Wei L,Leibowitz B J,Wang X,et al.Inhibition of CDK4/6 protects against radiation-induced intestinal injury in mice.J Clin Invest,2016,126:4076-4087
    76 Maclachlan T,Narayanan B,Gerlach V L,et al.Human fibroblast growth factor 20(FGF-20;CG53135-05):A novel cytoprotectant with radioprotective potential.Int J Radiat Biol,2005,81:567-579
    77 Doan P L,Himburg H A,Helms K,et al.Epidermal growth factor regulates hematopoietic regeneration after radiation injury.Nat Med,2013,19:295-304
    78 Himburg H A,Muramoto G G,Daher P,et al.Pleiotrophin regulates the expansion and regeneration of hematopoietic stem cells.Nat Med,2010,16:475-482
    79 Xu L,Xiong S,Guo R,et al.Transforming growth factorβ3 attenuates the development of radiation-induced pulmonary fibrosis in mice by decreasing fibrocyte recruitment and regulating IFN-γ/IL-4 balance.Immunol Lett,2014,162:27-33
    80 Wang C,Zhang B,Wang S,et al.Recombinant human thrombopoietin promotes hematopoietic reconstruction after severe whole body irradiation.Sci Rep,2015,5:12993
    81 Gu X F,Wang X F,Xiao H,et al.Silencing of R-Spondin1 increases radiosensitivity of glioma cells.Oncotarget,2015,6:9756-9765
    82 Kantara C,Moya S M,Houchen C W,et al.Novel regenerative peptide TP508 mitigates radiation-induced gastrointestinal damage by activating stem cells and preserving crypt integrity.Lab Invest,2015,95:1222-1233
    83 Singh V K,Ducey E J,Fatanmi O O,et al.CBLB613:A TLR 2/6 agonist,natural lipopeptide of Mycoplasma arginini,as a novel radiation countermeasure.Radiat Res,2012,177:628-642
    84 Rotolo J,Stancevic B,Zhang J,et al.Anti-ceramide antibody prevents the radiation gastrointestinal syndrome in mice.J Clin Invest,2012,122:1786-1790
    85 Prockop D J.Further proof for an unpopular concept:A single cell from bone marrow can serve as a stem cell for both hematopoiesis and osteogenesis.Mol Ther,2013,21:1116-1117
    86 Saha S,Bhanja P,Kabarriti R,et al.Bone marrow stromal cell transplantation mitigates radiation-induced gastrointestinal syndrome in mice.PLoSOne,2011,6:e24072
    87 Singh V K,Brown D S,Kao T C.Alpha-tocopherol succinate protects mice from gamma-radiation by induction of granulocyte-colony stimulating factor.Int J Radiat Biol,2010,86:12-21
    88 Coleman C N,Hrdina C,Bader J L,et al.Medical response to a radiologic/nuclear event:Integrated plan from the office of the assistant secretary for preparedness and response,department of health and human services.Ann Emerg Med,2009,53:213-222
    89 Sauvaget C,Kasagi F,Waldren C A.Dietary factors and cancer mortality among atomic-bomb survivors.Mutat Res/Fund Mol M,2004,551:145-152
    90 Weiss J F,Landauer M R.Radioprotection by antioxidants.Ann NY Acad Sci,2000,899:44-60
    91 Okunieff P,Xu J,Hu D,et al.Curcumin protects against radiation-induced acute and chronic cutaneous toxicity in mice and decreases mRNAexpression of inflammatory and fibrogenic cytokines.Int J Radiat Oncol Biol Phys,2006,65:890-898
    92 Hall S,Rudrawar S,Zunk M,et al.Protection against radiotherapy-induced toxicity.Antioxidants,2016,5:22
    93 Halliwell B.The antioxidant paradox.Lancet,2000,355:1179-1180
    94 Bingham S,Riboli E.Diet and cancer-The European prospective investigation into cancer and nutrition.Nat Rev Cancer,2004,4:206-215

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