Ecology and Environmental Sciences ›› 2025, Vol. 34 ›› Issue (8): 1182-1191.DOI: 10.16258/j.cnki.1674-5906.2025.08.003
• Papers on “Nuclear Contamination and Ecosystem Security” • Previous Articles Next Articles
DU Fangni(), FENG Qingliang, YUAN Han, CAO Shaofei*(
)
Received:
2024-11-16
Online:
2025-08-18
Published:
2025-08-01
通讯作者:
*E-mail: 作者简介:
杜方旎(1997年生),女,助理研究员,博士,研究方向为放射生态学。E-mail: dufn525@163.com
基金资助:
CLC Number:
DU Fangni, FENG Qingliang, YUAN Han, CAO Shaofei. Application and Prospects of Model Fish Biomarkers in Radioecology[J]. Ecology and Environmental Sciences, 2025, 34(8): 1182-1191.
杜方旎, 冯青靓, 原寒, 曹少飞. 模式鱼类生物标志物在放射生态学研究中的应用及前景[J]. 生态环境学报, 2025, 34(8): 1182-1191.
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地域 | 核素类型 | 浓度分布 | 参考文献 |
---|---|---|---|
印度尼西亚 南苏拉威西省 | 137Cs | 0.21-0.34 Bq·m−3 | Prihatiningsih et al., |
马来西亚 东海岸半岛 专属经济区 | 137Cs | 3.40-5.89 Bq·m−3 | Yii et al., |
239+240Pu | 2.33-7.95 mBq·m−3 | ||
日本福岛 | 236U | 106 atoms·kg−1 | Sakaguchi et al., |
137Cs(2011) | 6.8×107 Bq·m−3 | Buesseler et al., | |
137Cs(2012) | 10000 Bq·m−3 | Tsumune et al., | |
137Cs(2015) | 1000 Bq·m−3 | ||
134Cs | 6.12 Bq·m−3 | ||
北太平洋 | 137Cs | 1-2 Bq·m−3 | Aoyama et al., |
Table 1 The distribution of different nuclides in the marine environment
地域 | 核素类型 | 浓度分布 | 参考文献 |
---|---|---|---|
印度尼西亚 南苏拉威西省 | 137Cs | 0.21-0.34 Bq·m−3 | Prihatiningsih et al., |
马来西亚 东海岸半岛 专属经济区 | 137Cs | 3.40-5.89 Bq·m−3 | Yii et al., |
239+240Pu | 2.33-7.95 mBq·m−3 | ||
日本福岛 | 236U | 106 atoms·kg−1 | Sakaguchi et al., |
137Cs(2011) | 6.8×107 Bq·m−3 | Buesseler et al., | |
137Cs(2012) | 10000 Bq·m−3 | Tsumune et al., | |
137Cs(2015) | 1000 Bq·m−3 | ||
134Cs | 6.12 Bq·m−3 | ||
北太平洋 | 137Cs | 1-2 Bq·m−3 | Aoyama et al., |
生物标志物分类 | 检测种类 | 暴露剂量/剂量率 | 毒理学效应 | 参考文献 |
---|---|---|---|---|
分子 | 活性氧 | 22、170、470 µGy·h−1; 1×104、1×105、1×106 Bq·mL−1 | 活性氧增加 | Gagnaire et al., Di Lombo et al., |
激素 | 0.1 Gy和1 Gy | 褪黑激素增加 | Zhao et al., | |
蛋白质 | 2.25、21.01、204.3 mGy·d−1 | 蛋白质丰度发生显著变化 | Perez-Gelvez et al., | |
DNA | 0.8 mGy·d−1 | DNA链断裂 | Gagnaire et al., | |
0.01 Gy | DNA损伤显著提高 | Gagnaire et al., | ||
53 mGy·h−1 | 基因表达的全局变化 | Hurem et al., | ||
1 Gy | 干扰时钟基因的表达 | Zhao et al., | ||
2.21×103-5.95×105 Bq·mL−1 | OBT与DNA内化 | Di Lombo et al., | ||
mRNA | 15 mGy | axin2的mRNA表达水平显著上调,β-catenin、camk2、TCF/LEF和bcl9的mRNA表达水平显著下调 | Zhao et al., | |
0.1、0.2、0.4 mGy·h−1 | miRNA加工酶基因表达改变 | He et al., | ||
细胞/组织 | 神经元细胞 | 0.015、0.25、0.5、1.0、2.0 Gy | 不同程度的发育异常 | 刘美娟, |
红细胞 | 2、10、15 Gy | 细胞凋亡和和异常现象 | Sayed et al., | |
肌肉 | 3.3×101、1.3×102、1.2×103 µGy·h−1 | 肌肉损伤 | Gagnaire et al., | |
生物个体/种群 | 浓集系数 | - | BCF值与钾离子浓度有很强的依赖性 | Srivastava et al., |
产卵量 | 0.01 Gy | 产卵量显著降低 | 赵维超等, | |
孵化率 | 100 R·d−1和1000 R·d−1 | 孵化率降低 | Hyodo Taguchi et al., | |
昼夜节律 | 0.01、0.1、1 Gy | 昼夜节律改变 | Zhao et al., | |
运动行为 | 0.2 mGy·h−1和0.4 mGy·h−1 | 游泳速度增加 | He et al., | |
代际遗传 | 8.7 mGy·h−1 | 胚胎基因出现差异表达 | Hurem et al., | |
种群变化 | 5 mGy·h−1 | F1雌雄比产生差异 | Guirandy et al., |
Table 2 Summary table of different types of biomarkers
生物标志物分类 | 检测种类 | 暴露剂量/剂量率 | 毒理学效应 | 参考文献 |
---|---|---|---|---|
分子 | 活性氧 | 22、170、470 µGy·h−1; 1×104、1×105、1×106 Bq·mL−1 | 活性氧增加 | Gagnaire et al., Di Lombo et al., |
激素 | 0.1 Gy和1 Gy | 褪黑激素增加 | Zhao et al., | |
蛋白质 | 2.25、21.01、204.3 mGy·d−1 | 蛋白质丰度发生显著变化 | Perez-Gelvez et al., | |
DNA | 0.8 mGy·d−1 | DNA链断裂 | Gagnaire et al., | |
0.01 Gy | DNA损伤显著提高 | Gagnaire et al., | ||
53 mGy·h−1 | 基因表达的全局变化 | Hurem et al., | ||
1 Gy | 干扰时钟基因的表达 | Zhao et al., | ||
2.21×103-5.95×105 Bq·mL−1 | OBT与DNA内化 | Di Lombo et al., | ||
mRNA | 15 mGy | axin2的mRNA表达水平显著上调,β-catenin、camk2、TCF/LEF和bcl9的mRNA表达水平显著下调 | Zhao et al., | |
0.1、0.2、0.4 mGy·h−1 | miRNA加工酶基因表达改变 | He et al., | ||
细胞/组织 | 神经元细胞 | 0.015、0.25、0.5、1.0、2.0 Gy | 不同程度的发育异常 | 刘美娟, |
红细胞 | 2、10、15 Gy | 细胞凋亡和和异常现象 | Sayed et al., | |
肌肉 | 3.3×101、1.3×102、1.2×103 µGy·h−1 | 肌肉损伤 | Gagnaire et al., | |
生物个体/种群 | 浓集系数 | - | BCF值与钾离子浓度有很强的依赖性 | Srivastava et al., |
产卵量 | 0.01 Gy | 产卵量显著降低 | 赵维超等, | |
孵化率 | 100 R·d−1和1000 R·d−1 | 孵化率降低 | Hyodo Taguchi et al., | |
昼夜节律 | 0.01、0.1、1 Gy | 昼夜节律改变 | Zhao et al., | |
运动行为 | 0.2 mGy·h−1和0.4 mGy·h−1 | 游泳速度增加 | He et al., | |
代际遗传 | 8.7 mGy·h−1 | 胚胎基因出现差异表达 | Hurem et al., | |
种群变化 | 5 mGy·h−1 | F1雌雄比产生差异 | Guirandy et al., |
生物标志物分类 | 反应时间 | 检测时长 | 检测成本 | 可重复性 | 生态相关性 |
---|---|---|---|---|---|
生化指标 | 短 | 短 | 低 | 高 | 低 |
分子指标 | 短 | 短 | 低 | 高 | 低 |
细胞和组织指标 | 短 | 短 | 低 | 高 | 低 |
生物个体指标 | 长 | 长 | 高 | 较高 | 高 |
Table 3 Differences in the characteristics of different biomarkers
生物标志物分类 | 反应时间 | 检测时长 | 检测成本 | 可重复性 | 生态相关性 |
---|---|---|---|---|---|
生化指标 | 短 | 短 | 低 | 高 | 低 |
分子指标 | 短 | 短 | 低 | 高 | 低 |
细胞和组织指标 | 短 | 短 | 低 | 高 | 低 |
生物个体指标 | 长 | 长 | 高 | 较高 | 高 |
[1] | AOYAMA M, FUKASAWA M, HIROSE K, et al., 2011. Cross equator transport of 137Cs from North Pacific Ocean to South Pacific Ocean (BEAGLE2003 cruises)[J]. Progress in Oceanography, 89(1-4): 7-16. |
[2] | AOYAMA M, HAMAJIMA Y, HULT M, et al., 2016. 134Cs and 137Cs in the North Pacific Ocean derived from the March 2011 TEPCO Fukushima Dai-ichi Nuclear Power Plant accident, Japan. Part one: Surface pathway and vertical distributions[J]. Journal of Oceanography, 72: 53-65. |
[3] | AOYAMA M, HIROSE K, NEMOTO K, et al., 2008. Water masses labeled with global fallout 137Cs formed by subduction in the North Pacific[J]. Geophysical Research Letters, 35(1): 568-569. |
[4] |
ARCANJO C, ARMANT O, FLORIANI M, et al., 2018. Tritiated water exposure disrupts myofibril structure and induces mis-regulation of eye opacity and DNA repair genes in zebrafish early life stages[J]. Aquatic Toxicology, 200: 114-126.
DOI PMID |
[5] | AUTHMAN M M, ZAKI M S, KHALLAF E A, et al., 2015. Use of fish as bio-indicator of the effects of heavy metals pollution[J]. Journal of Aquaculture Research & Development, 6(4): 1-13. |
[6] | BERTUCCI EM, MASON MW, CAMUS AC, et al., 2020. Chronic low dose irradiation alters hepatic transcriptional profiles, but not global DNA methylation in medaka (Oryzias latipes)[J]. Science of The Total Environment, 729: 138680. |
[7] | BUESSELER K, AOYAMA M, FUKASAWA M, 2011. Impacts of the Fukushima nuclear power plants on marine radioactivity[J]. Environmental Science & Technology, 45(23): 9931-9935. |
[8] |
BUESSELER K, DAI M, AOYAMA M, et al., 2017. Fukushima Daiichi-derived radionuclides in the ocean: Transport, fate, and impacts[J]. Annual Review of Marine Science, 9: 173-203.
DOI PMID |
[9] | CONNELL D W, LAM P, RICHARDSON B, et al., 2019. Introduction to ecotoxicology[M]. New Jersey: John Wiley & Sons: 184. |
[10] | COUNCIL N R, 1987. Committee on biological markers[J]. Environmental Health Perspectives, 74: 3-9. |
[11] |
CRISTINA FOSSI M, MARSILI L, 1997. The use of non destructive biomarkers in the study of marine mammals[J]. Biomarkers, 2(4): 205-216.
DOI PMID |
[12] | DAI Y J, JIA Y F, CHEN N, et al., 2014. Zebrafish as a model system to study toxicology[J]. Environmental Toxicology and Chemistry, 33(1): 11-17. |
[13] | DI LOMBO M S, CAVALIE I, CAMILLERI V, et al., 2023a. Tritiated thymidine induces developmental delay, oxidative stress and gene overexpression in developing zebrafish (Danio rerio)[J]. Aquatic Toxicology, 265: 106766. |
[14] | DI LOMBO MS, CAVALIE I, CAMILLERI V, et al., 2023b. Tritiated thymidine internalization in zebrafish early life stages: Joint use of experimental procedures and microdosimetry[J]. Radiation Research, 199(4): 373-384. |
[15] | DONG S J, KANG M, WU X L, et al., 2014. Development of a promising fish model (Oryzias melastigma) for assessing multiple responses to stresses in the marine environment[J]. BioMed Research International, 1: 563131. |
[16] | FERREIRA M F, TURNER A, JHA A N, 2024. Controlled release of radioactive water from the fukushima daiichi nuclear power plant: Should we be concerned?[J]. Environmental Science & Technology, 58(11): 4840-4843. |
[17] | FERREIRA M F, TURNER A, VERNON E L, et al., 2023. Tritium: Its relevance, sources and impacts on non-human biota[J]. Science of the Total Environment, 876: 162816. |
[18] | FUKAMACHI S, SHIMADA A, NARUSE K, et al., 2001. Genomic analysis of γ-ray-induced germ-cell mutations at the b locus recovered from the medaka specific-locus test[J]. Mutation Research/Mutation Research Genomics, 458(1-2): 19-29. |
[19] | GAGNAIRE B, ARCANJO C, CAVALIÉ I, et al., 2021. Effects of gamma ionizing radiation exposure on Danio rerio embryo-larval stages- comparison with tritium exposure[J]. Journal of Hazardous Materials, 408: 124866. |
[20] | GAGNAIRE B, ARCANJO C, CAVALIÉ I, et al., 2020. Tritiated Water Exposure in Zebrafish (Danio rerio): Effects on the Early‐Life Stages[J]. Environmental Toxicology and Chemistry, 39(3): 648-658. |
[21] | GAGNAIRE B, CAVALIÉ I, PEREIRA S, et al., 2015. External gamma irradiation-induced effects in early-life stages of zebrafish, Danio rerio[J]. Aquatic Toxicology, 169: 69-78. |
[22] | GALLOWAY T S, SANGER R C, SMITH K L, et al., 2002. Rapid assessment of marine pollution using multiple biomarkers and chemical immunoassays[J]. Environmental Science & Technology, 36: 2219-2226. |
[23] | GEIGER G A, PARKER S E, BEOTHY A P, et al., 2006. Zebrafish as a “biosensor”? Effects of ionizing radiation and amifostine on embryonic viability and development[J]. Cancer Research, 66: 8172-8181. |
[24] | GUIRANDY N, GAGNAIRE B, CAMILLERI V, et al., 2022. Multigenerational exposure to gamma radiation affects offspring differently over generations in zebrafish[J]. Aquatic Toxicology, 244: 106101. |
[25] | HE C Q, MAO L, YAO J, et al., 2021. The threshold effects of low-dose-rate radiation on miRNA-mediated neurodevelopment of zebrafish[J]. Radiation Research, 196(6): 633-646. |
[26] |
HINTON T G, COUGHLIN D P, YI Y, et al., 2004. Low Dose Rate Irradiation Facility: initial study on chronic exposures to medaka[J]. Journal of Environmental Radioactivity, 74(1-3): 43-55.
PMID |
[27] | HU Q H, WENG J Q, WANG J S, 2010. Sources of anthropogenic radionuclides in the environment: A review[J]. Journal of Environmental Radioactivity, 101(6): 426-437. |
[28] |
HUREM S, MARTÍN LM, LINDEMAN L, et al., 2018. Parental exposure to gamma radiation causes progressively altered transcriptomes linked to adverse effects in zebrafish offspring[J]. Environmental Pollution, 234: 855-863.
DOI PMID |
[29] | HYODO TAGUCHI Y, ETOH H, 1983. The fecundity and fertility of medaka exposed to chronic γ-radiation in their embryonic stages[J]. Journal of Radiation Research, 24: 270-277. |
[30] | JUN E J, CHO Y J, LEE K H, 2024. Nuclear power to mitigate climate change: Pathways to a sustainable future[J]. Korean Journal of Chemical Engineering, 41(10): 2843-2849. |
[31] |
KONG R Y C, GIESY J P, WU R S S, et al., 2008. Development of a marine fish model for studying in vivo molecular responses in ecotoxicology[J]. Aquatic Toxicology, 86(2): 131-141.
PMID |
[32] | LAM P K S, 2009. Use of biomarkers in environmental monitoring[J]. Ocean & Coastal Management, 52(7): 348-354. |
[33] |
LEONELLI S, ANKENY R A, 2013. What makes a model organism?[J]. Endeavour, 37(4): 209-212.
DOI PMID |
[34] | LIN W H, FENG Y, YU K F, et al., 2020. Comparative study of radioactivity levels and radionuclide fingerprints in typical marine ecosystems of coral reefs, mangroves, and hydrothermal vents[J]. Marine Pollution Bulletin, 152: 110913. |
[35] | LINTON D M, WARNER G F, 2003. Biological indicators in the Caribbean coastal zone and their role in integrated coastal management[J]. Ocean & Coastal Management, 46(3-4): 261-276. |
[36] | LITTLEFIELD-WYER J, BROOKS P, KATOULI M, 2008. Application of biochemical fingerprinting and fatty acid methyl ester profiling to assess the effect of the pesticide Atradex on aquatic microbial communities[J]. Environmental Pollution, 153(2): 393-400. |
[37] | LOMARTIRE S, MARQUES J C, GONÇALVES A M M, 2021. Biomarkers based tools to assess environmental and chemical stressors in aquatic systems[J]. Ecological Indicators, 122: 107207. |
[38] |
MØLLER A, MOUSSEAU T A, 2007. Species richness and abundance of forest birds in relation to radiation at Chernobyl[J]. Biology Letters, 3(5): 483-486.
PMID |
[39] |
MØLLER A P, BARNIER F, MOUSSEAU T A, 2012. Ecosystems effects 25 years after Chernobyl: Pollinators, fruit set and recruitment[J]. Oecologia, 170(4): 1155-1165.
DOI PMID |
[40] | MØLLER A P, MOUSSEAU T A, 2006. Biological consequences of Chernobyl: 20 years on[J]. Trends in Ecology & Evolution, 21(4): 200-207. |
[41] | MøLLER A P, MOUSSEAU T A, 2011. Efficiency of bio-indicators for low-level radiation under field conditions[J]. Ecological Indicators, 11: 424-430. |
[42] | NAGATA K, OHASHI K, HASHIMOTO C, et al., 2023. Responses of hematopoietic cells after ionizing-irradiation in anemic adult medaka (Oryzias latipes)[J]. International Journal of Radiation Biology, 99(4): 663-672. |
[43] | NELSON N, 2016. Model homes for model organisms: Intersections of animal welfare and behavioral neuroscience around the environment of the laboratory mouse[J]. BioSocieties, 11: 46-66. |
[44] | NORTON W, BALLY-CUIF L, 2010. Adult zebrafish as a model organism for behavioural genetics[J]. BMC Neuroscience, 11: 1-11. |
[45] | PEREZ-GELVEZ Y N C, CAMUS A C, BRIDGER R, et al., 2021. Effects of chronic exposure to low levels of IR on Medaka (Oryzias latipes): A proteomic and bioinformatic approach[J]. International Journal of Radiation Biology, 97(10): 1485-1501. |
[46] | PRIHATININGSIH W, MAKMUR M, 2021. Radioactivity monitoring and radiological assessment of radionuclides at western coastal of South Sulawesi[J]. IOP Conference Series: Earth and Environmental Science. IOP Publishing, 860(1): 012012. |
[47] | SAKAGUCHI A, KADOKURA A, STEIER P, et al., 2012. Isotopic determination of U, Pu and Cs in environmental waters following the Fukushima Daiichi Nuclear Power Plant accident[J]. Geochemical Journal, 46(4): 355-360. |
[48] | SAYED AE, IGARASHI K, WATANABE-ASAKA T, et al., 2017. Double strand break repair and γ-H2AX formation in erythrocytes of medaka (Oryzias latipes) after γ-irradiation [J]. Environmental Pollution, 224: 35-43. |
[49] | SAYED A E, NAGATA K, NAKAZAWA T, et al., 2021. Low Dose-Rate Irradiation of Gamma-Rays-Induced Cytotoxic and Genotoxic Alterations in Peripheral Erythrocytes of p53-Deficient Medaka (Oryzias latipes)[J]. Frontiers in Marine Science, 8: 773481. |
[50] | SAYED A E, ODA S, MITANI H, 2014. Nuclear and cytoplasmic changes in erythrocytes of p53-deficient medaka fish (Oryzias latipes) after exposure to gamma-radiation[J]. Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 771: 64-70. |
[51] | SHIMA A, SHIMADA A, 1991. Development of a possible nonmammalian test system for radiation-induced germ-cell mutagenesis using a fish, the Japanese medaka (Oryzias latipes)[J]. Proceedings of the National Academy of Sciences, 88(6): 2545-2549. |
[52] | SHIMADA A, SHIMA A, 2001. High incidence of mosaic mutations induced by irradiating paternal germ cells of the medaka fish, Oryzias latipes[J]. Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 495(1-2): 33-42. |
[53] | SRIVASTAVA A, DENSCHLAG H, KELBER O, et al., 1990. Accumulation and discharge behavior of Cs-137 by zebra fish (Brachydanio rerio) in different aquatic environments[J]. Journal of Radioanalytical and Nuclear Chemistry, 138(1): 165-170. |
[54] | SRIVASTAVA A, REDDY S, KELBER O, et al., 1994. Uptake and release kinetics of 134Cs by Goldfish (Carassius auratus) and 137Cs by Zebra Fish (Brachydanio rerio) in controlled aquatic environment[J]. Journal of Radioanalytical and Nuclear Chemistry, 182: 63-69. |
[55] |
SUGANO Y, NEUHAUSS S C, 2013. Reverse genetics tools in zebrafish: A forward dive into endocrinology[J]. General and Comparative Endocrinology, 188: 303-308.
DOI PMID |
[56] | TSUMUNE D, TSUBONO T, AOYAMA M, et al., 2013. One-year, regional-scale simulation of 137Cs radioactivity in the ocean following the Fukushima Dai-ichi Nuclear Power Plant accident[J]. Biogeosciences, 10(8): 5601-5617. |
[57] | TSYUSKO O, GLENN T, YI Y, et al., 2011. Differential genetic responses to ionizing irradiation in individual families of Japanese medaka, Oryzias latipes[J]. Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 718(1-2): 18-23. |
[58] | TSYUSKO O, YI Y, COUGHLIN D, et al., 2007. Radiation-induced untargeted germline mutations in Japanese medaka[J]. Comparative Biochemistry and Physiology Part C: Toxicology & Pharmacology, 145(1): 103-110. |
[59] | WANG XW, ZHANG HC, LU J, et al., 2013. Radiation sensitivity differences of zebrafish embryos with different development stages to X-rays[J]. Progress in Modern Biomedicine, 13: 3225-3229. |
[60] |
WIRGIN II, GRUNWALD C, COURTENAY S, et al., 1994. A biomarker approach to assessing xenobiotic exposure in Atlantic tomcod from the North American Atlantic coast[J]. Environmental Health Perspectives, 102(9): 764-770.
PMID |
[61] |
WU R S S, SIU W H L, SHIN P K S, 2005. Induction, adaptation and recovery of biological responses: Implications for environmental monitoring[J]. Marine Pollution Bulletin, 51(8-12): 623-634.
PMID |
[62] | YASUDA T, FUNAYAMA T, NAGATA K, et al., 2020. Collimated microbeam reveals that the proportion of non-damaged cells in irradiated blastoderm determines the success of development in medaka (Oryzias latipes) Embryos[J]. Biology, 9(12): 447. |
[63] | YASUDA T, ISHIKAWA Y, SHIOYA N, et al., 2018. Radical change of apoptotic strategy following irradiation during later period of embryogenesis in medaka (Oryzias latipes)[J]. PloS ONE, 13(8): e0201790. |
[64] | YII M W, ZAL-U'YUN W M, ZAHARUDIN A, et al., 2011. Inventories of natural and anthropogenic radioactivities within exclusive economic zone of east coast Peninsular Malaysia[R]. |
[65] | ZHAO W C, HU N, LONG D X, et al., 2018. Development and genetic toxicity in zebrafish embryo induced by low dose γ-ray irradiation[J]. Atomic Energy Science and Technology, 26(4): 3869-3881. |
[66] | ZHAO W C, MAO L, HE C Q, et al., 2023. Effects of low dose radiation on behavior rhythm of zebrafish (Danio rerio)[J]. Ecotoxicology and Environmental Safety, 255: 114779. |
[67] |
ZHAO W C, YUAN P H, HU N, et al., 2020. Effects of low-dose gamma-ray radiation on apoptosis and development of zebrafish embryo brain[J]. Radiation Research, 194(1): 61-70.
DOI PMID |
[68] | ZHOU R, SI J, ZHANG H, et al., 2014. The effects of x-ray radiation on the eye development of zebrafish[J]. Human & Experimental Toxicology, 33(10): 1040-1050. |
[69] | 冯青靓, 曹少飞, 龙泽宇, 等, 2023. 斑马鱼在放射生物学领域的研究进展[J]. 中国实验动物学报, 31(4): 549-556. |
FENG Q L, CAO S F, LONG Z Y, et al., 2023. Research progress of zebrafish in the field of radiobiology[J]. Acta Laboratorium Animalis Scientia Sinica, 31(4): 549-556. | |
[70] |
冯永富, 胡南, 丁德馨, 等, 2017. γ电离辐射对斑马鱼胚胎肝、脾和肾发育形态学的影响[J]. 原子能科学技术, 51(10): 1886-1892.
DOI |
FNEG Y F, HU N, DING D X, et al., 2017. Effect of γ-ray irradiation on developmental morphology of liver, spleen and pronephros in zebrafish embryo[J]. Atomic Energy Science and Technology, 51(10): 1886-1892. | |
[71] |
林武辉, 张帆, 余克服, 等, 2023. 人工放射性核素在珊瑚岛礁系统中的富集与评估[J]. 地球科学进展, 38(3): 286-295.
DOI |
LIN W H, ZHANG F, YU K F, et al., 2023. Assessment and enrichment of artificial radionuclides in coral reef ecosystems[J]. Advances in Earth Science, 38(3): 286-295.
DOI |
|
[72] | 刘美娟, 2017. Hedgehog信号通路在γ辐射致斑马鱼胚胎神经发育毒性中的作用及机制研究[D]. 衡阳: 南华大学:65. |
LIU M J, 2017. The role and mechanism study of hedgehog signaling pathway in γ radiation induced developmental neurotoxicity in zeberfish embryos[D]. Hengyang: University of South China:65. | |
[73] | 苑朋辉, 赵维超, 胡南, 等, 2019. 低剂量率γ射线辐照对斑马鱼胚胎脑部发育形态学的影响[J]. 南华大学学报(自然科学版), 33(3): 28-32. |
YUAN P H, ZHAO W C, HU N, et al., 2019. Effects of low dose rate γ-ray irradiation on the developmental morphology of brain in zebrafish embryo[J]. Journal of University of South China: Science and Technology, 33(3): 28-32. | |
[74] |
赵维超, 胡南, 龙鼎新, 等, 2018. 低剂量γ射线辐照对斑马鱼胚胎的发育和遗传毒性效应[J]. 原子能科学技术, 52(9): 1695-1703.
DOI |
ZHAO W C, HU N, LONG D X, et al., 2018. Development and genetic toxicity in zebrafish embryo induced by low doseγ-ray irradiation[J]. Atomic Energy Science and Technology, 52(9): 1695-1703. |
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