镉对河南华溪蟹副性腺抗氧化酶活性及脂质、蛋白质和DNA的影响
BIOACCUMULATION OF CADMIUM AND ITS EFFECTS ON ANTIOXIDANT ENZYME ACTIVITIES, LIPID, PROTEIN AND DNA IN MALE ACCESSORY GLAND OF THE FRESHWATER CRAB SINOPOTAMON HENANENSE
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[1] Tang J X, Tang Y Y, Sun H X, et al. Effects of Cu2 + and Pb2 + (single factor and joint toxicity) on DNA damage in Misgurnus anguillicaudatus oocytes [J]. Acta Hydrobiologica Sinica, 2013, 37(3): 501506 [唐建勋, 唐奕扬, 孙红祥, 等. 重金属Cu2+、Pb2+单因子及联合毒性对泥鳅卵细胞DNA的损伤效应. 水生生物学报, 2013, 37(3): 501506]
[2] Jiang H C, Liu A Y, Song X K, et al. The toxic effects of heavy metals on the embryonic development of Apostichopus japonicus [J]. Acta Hydrobiologica Sinica, 2014, 38(2): 393400 [姜会超, 刘爱英, 宋秀凯, 等. 重金属胁迫对刺参胚胎发育的影响. 水生生物学报, 2014, 38(2): 393400]
[3] Jia X Y, Shi C L, Zhang H J. DNA damage and oxidative damage in testes of Rana nigromaculata exposed to cadmium [J]. Acta Scientiae Circumstantiae, 2011, 31(7): 15371541 [贾秀英, 施蔡雷, 张杭君. 镉暴露对黑斑蛙精巢氧化损伤与DNA损伤. 环境科学学报, 2011, 31(7): 15371541]
[4] Dietrich G J, Dietrich M, Kowalski R K, et al. Exposure of rainbow trout milt to mercury and cadmium alters sperm motility parameters and reproductive success [J]. Aquatic Toxicology, 2010, 97: 277284
[5] Wang L, Du N S, Lai W. Ultrastructure of vas deferens and formation of spermatophore of freshwater crab, Sinopotamon yangtsekiense (Crustacea, Decapoda) [J]. Oceanologia et Limnologia Sinica, 1996, 27(4): 374379 [王兰, 堵南山, 赖伟. 长江华溪蟹输精管的超微结构与精荚形成的研究. 海洋与湖沼, 1996, 27(4): 374379]
[6] Lung O, Kuo L, Wolfner M F. Drosophila males transfer antibacterial proteins from their accessory gland and ejaculatory duct to their mates [J]. Journal of Insect Physiology, 2001, 47: 617622
[7] Baldini F, Gabrieli P, Rogers D W, et al. Function and composition of male accessory gland secretions in Anopheles gambiae: a comparison with other insect vectors of infectious diseases [J]. Pathog Glob Health, 2012, 106(2): 8293
[8] Chen H, Cheung M P L, Chow P H, et al. Protection of sperm DNA against oxidative stress in vivo by accessory sex gland secretions in male hamsters [J]. Reproduction, 2002, 124: 491499
[9] Chen H, Liao S B, Cheung M P L, et al. Effects of sperm DNA damage on the levels of RAD51 and p53 proteins in zygotes and 2-cell embryos sired by golden hamsters without the major accessory sex glands [J]. Free Radical Biology and Medicine, 2012, 53(4): 885892
[10] Henault M A, Killian G J, Kavanaugh J F. Effect of accessory sex gland fluid from bulls of differing fertilities on the ability of cauda epididymal sperm to penetrate zone-free bovine oocytes [J]. Biology of Reproduction, 1995, 52(2): 390397
[11] Hou X L, Mao Q, He L, et al. Accessory sex gland proteins affect spermatophore digestion rate and spermatozoa acrosin activity in Eriocheir sinensis [J]. Journal of Crustacean Biology, 2010, 30(3): 435440
[12] Wang J, Fang D A, Wang Y, et al. Cathepsin A protein from the accessory sex gland of the Chinese mitten crab (Eriocheir sinensis) plays a key role in spermatophore digestion [J]. Journal of Insect Physiology, 2013, 59(9): 953960
[13] Sun J X. Study on the structure and function of male accessory gland of Eriocheir sinensis [D]. The dissertation of master degree. East China Normal University, Shanghai. 2007 [孙菊香. 中华绒螯蟹(Eriocheir sinensis)副性腺的结构和功能研究. 硕士学位论文, 华东师范大学, 上海. 2007]
[14] Mao Q. Studies on the function of the male accessory gland protein in Eriocheir sinensis [D].The dissertation of master degree. East China Normal University, Shanghai. 2009 [毛倩. 中华绒螯蟹副性腺蛋白功能的初步研究. 硕士学位论文, 华东师范大学, 上海. 2009]
[15] Hou X L. Studies on the differentially expressed genes in accessory sex gland and function of Eriocheir sinensis [D]. The dissertation of master degree. East China Normal University, Shanghai. 2009 [侯雪丽. 中华绒螯蟹副性腺差减cDNA文库的构建及内容物功能的研究. 硕士学位论文, 华东师范大学, 上海. 2009]
[16] O W, Chen H, Chow P H. Male genital tract antioxidant enzymesTheir ability to preserve sperm DNA integrity [J]. Molecular and Cellular Endocrinology, 2006, 250: 8083
[17] Jelezarsky L, Vaisberg C, Chaushev T, et al. Localization and characterization of glutathione peroxidase (GPx) in boar accessory sex glands, seminal plasma, and spermatozoa and activity of GPx in boar semen [J]. Theriogenology, 2008, 69: 139145
[18] Wang L, Xu T, Lei W W, et al. Cadmium-Induced oxidative stress and apoptotic changes in the testis of freshwater crab, Sinopotamon henanense [J]. PLoS ONE, 2011, 6 (11)e27853
[19] Ma D D, Hou Y H, Du L J, et al. Oxidative damages and ultrastructural changes in the sperm of freshwater crab Sinopotamon henanense exposed to cadmium [J]. Ecotoxicology and Environmental Safety, 2013, 98: 244249
[20] Li R J, Zhou Y Y, Ji J F, et al. Oxidative damages by cadmium and the protective effects of low-molecular-weight chitosan in the freshwater crab (Sinopotamon yangtsekiense Bott 1967) [J]. Aquaculture Research, 2011,42: 506515
[21] Bian P J, Qiu C G, Xu S L, et al. Effects of salinity on growth, activity of non-specific immune and antioxidant enzymes in obscure puffer takifugu obscure [J]. Acta Hydrobiologica Sinica, 2014, 38(1): 108114 [边平江, 邱成功, 徐善良, 等. 盐度对暗纹东方鲀生长、非特异性免疫和抗氧化酶活力的影响. 水生生物学报, 2014, 38(1): 108114]
[22] Lawniczak M, Romestaing C, Roussel D, et al. Preventive antioxidant responses to extreme oxygen level fluctuation in a subterranean crustacean [J]. Comparative Biochemistry and Physiology (Part A), 2013, 165: 299303
[23] Yao C L, Wang Z Y, Xiang J H. Crustacean haemocytes and their function in immune responses [J]. Zoological Research, 2006, 27: 549-557
[24] Zumkley H. Clinical aspects of selenium metabolism [J]. Biological Trace Element Research, 1988, 15:139-146
[25] Lavaras S, Heras H, Pedrini N, et al. Antioxidant response and oxidative stress levels in Macrobrachium borellii (Crustacea: Palaemonidae) exposed to the water-soluble fraction of petroleum [J]. Comparative Biochemistry and Physiology (Part C), 2011, 153: 415421
[26] Zhu S L, Chen L. The research advance of cadmium toxicity and its mechanism [J]. Biology Teaching, 2006, 31(8): 25 [朱善良, 陈龙. 镉毒性损伤及其机制的研究进展. 生物学教学, 2006, 31(8): 25]
[27] Wu L T, Chu K H. Characterization of an ovary-specific glutathione peroxidase from the shrimp Metapenaeus ensis and its role in crustacean reproduction [J]. Comparative Biochemistry and Physiology (Part B), 2010, 155: 2633
[28] Pan L Q, Zhang H X. Metallothionein, antioxidant enzymes and DNA strand breaks as biomarkers of Cd exposure in a marine crab, Charybdis japonica [J]. Comparative Biochemistry and Physiology (Part C), 2006, 144: 6775
[29] Del Rio D, Stewart A J, Pellegrini N. A review of recent studies on malondialdehyde as toxic molecule and biological marker of oxidative stress [J]. Nutrition Metabolism Cardiovas, 2005, 15: 316328
[30] Geihs M A, Vargas M A, Maciel F E, et al. Effect of melatonin in the antioxidant defense system in the locomotor muscles of the estuarine crab Neohelice granulata (Decapoda, Brachyura) [J]. General and Comparative Endocrinology, 2010, 166: 7282
[31] Parrilla-Taylor D P, Zenteno-Savn T, Magalln-Barajas F J. Antioxidant enzyme activity in pacific whiteleg shrimp (Litopenaeus vannamei) in response to infection with white spot syndrome virus [J]. Aquaculture, 2013, 380383: 4146
[32] Jiang Q C, Dilixiati A, Zhang C, et al. Metabolic and antioxidant responses in juveniles of Cherax quadricarinatus under acute cadmium stress [J]. Journal of Crustacean Biology, 2013, 33(4): 552556
[33] Ma D D, Lei W W, Wu H, et al. Effects of acute cadmium on sperm quality of Sinopotamon henanense [J]. Acta Scientiae Circumstantiae, 2013, 33(7): 20442049 [马丹旦, 雷雯雯, 吴昊, 等. 急性镉染毒对河南华溪蟹精子质量的影响. 环境科学学报, 2013, 33(7): 20442049]
[34] Jena N R. DNA damage by reactive species: Mechanisms, mutation and repair [J]. Journal of Biosciences, 2012, 37(3): 503517
[35] Barker S, Weinfeld M, Murray D, et al. DNA-protein crosslinks: their induction, repair, and biological consequences [J]. Mutation Research, 2005, 589: 111-135
[36] Dorts J, Silvestre F, Tu H T, et al. Oxidative stress, protein carbonylation and heat shock proteins in the black tiger shrimp, Penaeus monodon, following exposure to endosulfan and deltamethrin [J]. Environmental Toxicology and Pharmacology, 2009, 28: 302310
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