[1] WEI Q, HE J, YANG D, et al.Status of sturgeon aquaculture and sturgeon trade in China: a review based on two recent nationwide surveys[J]. Journal of Applied Ichthyology, 2004, 20(5): 321-332. [2] 黄宁宇, 夏连军, 么宗利, 等. 西伯利亚鲟鱼回归生物学特性研究[J]. 上海海洋大学学报, 2005, 14(4): 370-374. [3] 覃川杰, 杨川, 陈昌福. 水温对鱼类免疫活动的影响[J]. 河南师范大学学报(自然版), 2011, 39(5): 129-133. [4] 许友卿, 曹占旺, 丁兆坤, 等. 高温对鱼类的影响及其预防研究[J]. 水产科学, 2010, 29(4): 235-242. [5] 王洪臣, 于金国. 水温对鱼类的作用与影响[J]. 黑龙江水产, 2011(3): 30-31. [6] 王静波, 曹欢, 王小亮, 等. 高水温对杂交鲟主要免疫指标的影响[J]. 大连海洋大学学报, 2015, 30(5): 484-488. [7] 崔素丽, 刘波, 徐跑, 等. 两种温度下大黄素对团头鲂生长、血液指标及肝脏HSP70 mRNA表达的影响[J]. 水生生物学报, 2013(5): 919-928. [8] 杨洪帅, 王辉, 刘加慧, 等. 高温对吉富罗非鱼幼鱼生长及超氧化物歧化酶、乳酸脱氢酶活力的影响[J]. 广东海洋大学学报, 2014, 34(1): 15-20. [9] 徐冬冬, 楼宝, 詹炜, 等. 高温胁迫对褐牙鲆生长及肝脏抗氧化酶活性的影响[J]. 水产学报, 2010, 34(7): 1099-1105. [10] 罗伟, 许艳, 刘晓娟, 等. 水温对草鱼血清活性氧含量及抗氧化防御系统的影响[J]. 淡水渔业, 2017, 47(4): 3-7. [11] 刘峰, 刘阳阳, 楼宝, 等. 温度对小黄鱼体内抗氧化酶及消化酶活性的影响[J]. 海洋学报, 2016, 38(12): 76-85. [12] 管标, 温海深, 刘群, 等. 急性温度胁迫对虹鳟肝脏代谢酶活性及生长相关基因表达的影响[J]. 大连海洋大学学报, 2014, 29(6): 566-571. [13] 夏斌鹏, 刘哲, 周彦静, 等. 慢性热应激对虹鳟部分血清非特异性免疫指标的影响[J]. 农业生物技术学报, 2017, 25(7): 1078-1085. [14] 王艳妮, 刘哲, 康玉军, 等. 热应激对虹鳟部分非特异性免疫指标的影响[J]. 农业生物技术学报, 2015, 23(5): 634-642. [15] 田照辉, 徐绍刚, 王巍, 等. 急性热应激对西伯利亚鲟HSP70 mRNA表达、血清皮质醇和非特异性免疫的影响[J]. 水生生物学报, 2013, 37(2): 344-350. [16] PALANIVELU V, VIJAYAVEL K, BALASUBRAMANIAN S E, et al.Influence of insecticidal derivative (Cartap Hydrochloride) from the marine polychaete on certain enzyme systems of the fresh water fish Oreochromis mossambicus[J]. Journal of environ- mental biology/Academy of Environmental Biology, India, 2005, 26(2): 191. [17] HUTCHINSON T H, MANNING M J.Seasonal trends in serum lysozyme activity and total protein concentration in dab (Limanda limanda L.) sampled from Lyme Bay, U. K[J]. Fish & Shellfish Immunology, 1996, 6(7): 473-482. [18] 高宇, 袁改玲, 李大鹏, 等. 杂交鲟和匙吻鲟HSP70 cDNA克隆与序列分析[J]. 华中农业大学学报, 2010, 29(1): 85-89. [19] RASHMIKANT K. KOTHARY, ELIZABETH A. Burgess, E.Peter M. Candido. The heat-shock phenomenon in cultured cells of rainbow trout hsp70 mRNA synthesis and turnover[J]. BBA-Gene Structure and Expression, 1984, 783(2): 137-143. [20] MOYES C D, CURRIE S, TUFTS B L.Influence of bioenergetic stress on heat shock protein gene expression in nucleated red blood cells of fish[J]. American Journal of Physiology, 1999, 276(2): 990-996. [21] SAMPLES B L, POOL G L, LUMB R H.Polyunsaturated fatty acids enhance the heat induced stress response in rainbow trout (Oncorhynchus mykiss) leukocytes[J]. Comparative Biochemistry & Physiology Part B Biochemistry & Molecular Biology, 1999, 123(4): 389-397. [22] PARSELL D A, LINDQUIST S.The function of heat-shock proteins in stress tolerance: degradation and reactivation of damaged proteins[J]. Annual Review of Genetics, 1993, 27(1): 437. [23] PICARD D.Heat-shock protein 90, a chaperone for folding and regulation[J]. Cellular and Molecular Life Sciences, CMLS, 2002, 59(10): 1640-1648. [24] 李文龙, 石振广, 王云山, 等. 三种鲟科鱼类临界水温试验[J]. 水产养殖, 2000(5): 3-4. [25] 李佳凯, 王志勇, 刘贤德, 等. 高温对大黄鱼(Larimichthyscrocea)幼鱼血清生化指标的影响[J]. 海洋通报, 2015, 34(4): 457-462. [26] 孙学亮, 邢克智, 陈成勋, 等. 急性温度胁迫对半滑舌鳎血液指标的影响[J]. 水产科学, 2010, 29(7): 387-392. [27] 张亚晨, 温海深, 李兰敏, 等. 急性温度胁迫对妊娠期许氏平鲉血清皮质醇和血液生理指标的影响[J]. 水产学报, 2015, 39(12): 1872-1882. [28] ROBERTS R J, AGIUS C, SALIBA C, et al.Heat shock proteins (chaperones) in fish and shellfish and their potential role in relation to fish health: a review[J]. Journal of Fish Diseases, 2010, 33(10): 789-801. [29] LUND S, RUBERTE M, HOFMANN G.Turning up the heat: the effects of thermal acclimation on the kinetics of hsp70 gene expression in the eurythermal goby, Gillichthys mirabilis[J]. Com- parative Biochemistry & Physiology Part A Molecular & Integrative Physiology, 2006, 143(4): 435-446. [30] RENDELL J L, FOWLER S, COCKSHUTT A, et al.Development-dependent differences in intracellular localization of stress proteins (hsps) in rainbow trout, Oncorhynchus mykiss, following heat shock[J]. Comparative Biochemistry & Physiology Part D Genomics & Proteomics, 2006, 1(2): 238-252. [31] WU C X, ZHAO F Y, ZHANG Y, et al.Overexpression of Hsp90 from grass carp(Ctenopharyngodon idella) increases thermal protection against heat stress[J]. Fish & Shellfish Immunology, 2012, 33(1): 42. [32] WANG Y, XU J, SHENG L, et al.Field and laboratory investigations of the thermal influence on tissue-specific Hsp70 levels in common carp (Cyprinus carpio)[J]. Comparative Biochemistry & Physiology Part A Molecular & Integrative Physiology, 2007, 148(4): 821-827. [33] JONSSON H, SCHIEDEK D, GOKS YR A, et al.Expression of cytoskeletal proteins, cross-reacting with anti-CYP1A, in Mytilus sp. exposed to organic contaminants[J]. Aquatic Toxicology, 2006, 78(s1): 42-48. [34] NEWTON J R, DE SANTIS C, JERRY D R.The gene expression response of the catadromous perciform barramundi Lates calcarifer, to an acute heat stress[J]. Journal of Fish Biology, 2012, 81(1): 81-93. [35] 刘甜雨, 王清, 陈慕雁. 热刺激对栉孔扇贝免疫功能和热休克蛋白表达的影响[J]. 中国海洋大学学报(自然科学版), 2017, 47(8): 31-43. [36] YAN J, LIANG X, ZHANG Y, et al.Cloning of three heat shock protein genes (HSP70, HSP90α and HSP90β) and their expressions in response to thermal stress in loach(Misgurnus anguillicaudatus) fed with different levels of vitamin C[J]. Fish & Shell-fish Immunology, 2017, 66: 103-111. |