脂肪酸营养对中华绒螯蟹(Eriocheirsinensis)免疫及耐低氧能力的影响
详细信息    本馆镜像全文|  推荐本文 |  |   获取CNKI官网全文
摘要
中华绒螯蟹(Eriocheir sinensis)又称毛蟹,河蟹,属甲壳纲,十足目,方蟹科,绒螯蟹属,为我国特产。主要分布于中国东部海域沿岸及通海的河流、湖泊中,现为我国主要养殖的经济蟹类。近几年河蟹的养殖面积不断地增加,其养殖产量2005年高达57万吨。池塘养殖是我国河蟹养殖最主要的养殖形式,在池塘养殖过程中,特别是高温季节,大量的残剩饲料以及生物的排泄物等有机废物无法被及时分解而不断沉积,加之许多养殖池塘由于多年的养殖疏于清淤,造成池塘沉积过多的淤泥,这大大增加了池塘底部有机耗氧,使池塘底质恶化,致使主要底栖习性的河蟹长期处于低氧的环境胁迫下(hypoxia stress)。中华绒螯蟹在低氧胁迫下,一方面可能造成其免疫机能的下降,抗病力降低,继而感染疾病而招致死亡。另一方面免疫能力的下降又会降低其抗低氧能力,两者相互作用的叠加,是最终造成高温季节河蟹大量死亡的重要因素之一。
     改善中华绒螯蟹的营养,研究营养与其抗环境胁迫能力的关系,是提高其免疫性能和抗低氧能力的一个主要途径。必需脂肪酸(EFA)如:花生四烯酸(ARA)、二十碳五烯酸(EPA)和二十二碳六烯酸(DHA)等在水产动物体内的生理和生化合成中起着各种各样的功能。ARA,EPA和DHA等脂肪酸是细胞膜的重要组成部分,能够影响细胞吞噬能力及呼吸爆发强度,还可以通过控制与免疫相关的酶活性而增强水生动物机体的免疫能力。同时ARA和EPA是类二十烷酸的前体,类二十烷酸是一族在各种应激反应中具有高度活性的分子,对水产动物的免疫及抗胁迫能力有重要的作用。但是,关于脂肪酸营养对中华绒螯蟹幼蟹免疫和耐低氧胁迫的研究从未有过报道,在这个方面还是空白。本论文的目的,首先研究低氧对中华绒螯蟹幼蟹免疫及生理的影响;然后改变饲料中高不饱和脂肪酸(ARA,DHA,DHA/EPA)的含量,测定脂肪酸营养对幼蟹免疫和耐低氧能力的影响;最后,对中华绒螯蟹成蟹投喂含三种不同鱼油、豆油的饲料,测定不同油脂对成蟹免疫及耐低氧能力的影响。取得成果具体如下:
     1、低氧对中华绒螯蟹(Eriocheir sinensis)幼蟹免疫及生理的影响中华绒螯蟹幼蟹(1.4±0.43g)放入溶解氧为2.04±0.16(低氧,处理组)和8.01±0.22 mg/L(正常溶氧,对照组)的水体中24h,测量了其在0和24h后的总血细胞密度(THC),透明血细胞密度。在试验和对照组中,对0,2,8和24h时血淋巴中超氧化物歧化酶活性(SOD),乳酸,血蓝蛋白的浓度以及肝胰腺的代谢(葡萄糖,总胆固醇,尿酸,总蛋白,尿素和甘油三酯的浓度)进行了测定分析。总血细胞和透明血细胞密度受低氧影响显著,在低氧24h后比起始浓度分别降低了66%和49%。SOD酶活性在低氧8h后比起始时显著升高,乳酸浓度在低氧2,8和24h后都显著升高。血蓝蛋白浓度呈现一个先降低后上升的趋势,24h时与初始差异不大。试验组中,肝胰腺的葡萄糖,胆固醇和尿酸含量在24h内发生了显著变化。总蛋白,尿素和甘油三酯的浓度在对照和试验组中0,2,8,24h之间均没有显著差异。由此可见,低氧对中华绒螯蟹幼蟹的影响是全面的。
     2、投喂不同DHA或ARA含量的饲料对中华绒螯蟹幼蟹(Eriocheir sinensis)免疫和耐低氧能力的影响
     用含不同浓度的必需脂肪酸(EFA)——DHA(C22:6n-3)或ARA(C20:4n-6)饲料分别投喂中华绒螯蟹幼蟹3个半月和4个月,然后测定了其低氧24h(DHA和ARA试验)和正常溶氧下(ARA试验)的免疫和生理性能。五种不同DHA和ARA饲料(D1,D2,D3,D4,D5和A1,A2,A3,A4,A5)中DHA和ARA的添加比例为0%,0.25%,0.5%,1%,1.5%和0%,0.3%,0.6%,0.9%,1.2%(占饲料干重比例)。在DHA饲料试验中幼蟹低氧24h后血淋巴中THC(总血细胞密度)和透明血细胞密度在五个饲料组之间没有显著性差异。在五个饲料组间,Hc(血蓝蛋白)的变化呈现先降低后上升再下降的趋势,饲料中DHA的添加对Hc的浓度有显著影响。低氧24h后在添加DHA的饲料组SOD酶的活性显著高于0%DHA添加组。在肝胰腺中,随着饲料中添加DHA含量的增加总胆固醇和甘油三酯含量逐渐上升。在ARA试验中,低氧胁迫对幼蟹的生理和免疫指标的影响明显。在正常溶氧下,饲料中ARA的添加使幼蟹血淋巴中THC和透明血细胞密度显著上升,特别是适量添加时更明显(0.6,0.9%)。然而,在正常和低氧下血淋巴中SOD活性和Hc的含量不受饲料中添加ARA量的影响,各个饲料组之间没有显著差异。在两个溶氧下饲料中适当的添加ARA(0.6,0.9%)对血淋巴中乳酸和尿酸的浓度影响显著。低氧胁迫后肝胰腺中的免疫和生理性能在各ARA饲料组间没有显著差异。总之,低氧对幼蟹的免疫生理代谢有明显的负面影响。饲料中DHA的添加对中华绒螯蟹幼蟹的营养和生理性能及抗低氧的能力有改善作用。ARA试验结果表明饲料中添加适量水平的ARA(0.6,0.9%)能显著改善中华绒螯蟹幼蟹免疫和生理代谢功能及抗低氧的能力。
     3、投喂不同DHA/EPA比例饲料对雌雄中华绒螯蟹幼蟹(Eriocheir sinensis)免疫和耐低氧能力的影响
     中华绒螯蟹幼蟹(1.32-1.76g)投喂不同DHA/EPA(DHA,C22:6n-3;EPA,C20:5n-3)比例的饲料3个月,然后将其放入溶解氧为2.34±0.30mg/L和8.02±0.35mg/L的水体中24h,测定其生理和免疫指标的变化。含不同DHA/EPA比例的饲料分为5组(简称:DE1,DE2,DE3,DE4,DE5),其中DHA/EPA的比例分别为:0.3,0.6,1,2和3。测定结果发现,饲料中血液的免疫指标受饲料中DHA/EPA比例变化的影响不大,但是低氧后血蓝蛋白含量及正常溶氧下γ-GGT酶活性受饲料中DHA/EPA比例的影响显著。抗氧化酶SOD在正常溶氧下随DHA/EPA的增加呈现降低的趋势,但是低氧后各组之间的SOD活性没有显著差异。血淋巴中生理代谢指标受DHA/EPA比例变化影响显著,特别是乳酸脱氢酶的活性。另外,低氧对河蟹幼蟹的生理免疫影响显著。在肝胰腺中,受低氧胁迫后,γ-GGT酶活性和葡萄糖含量在DHA/EPA比例为2时显著高于其他组,而乳酸的含量在DHA/EPA比例为1的组最高。幼蟹性别对河蟹免疫和生理代谢指标基本没有影响。总而言之,饲料中DHA/EPA比例为1和2时对中华绒螯蟹幼蟹的免疫和生理更有益,对其抗低氧胁迫也更有帮助。
     4、投喂添加三种不同油脂(鱼油、豆油、鱼油豆油混合(1:1))饲料对中华绒螯蟹(Eriocheir sinensis)免疫及耐低氧能力的影响
     为了研究饲料中添加鱼油,豆油对中华绒螯蟹成蟹体重,免疫,代谢和耐低氧的影响,配制了添加不同鱼油和豆油比例的三种蟹用饲料,分别投喂中华绒螯蟹成蟹115d,然后测量了它们体重的变化,再将其放入溶解氧为2.57±0.44和9.06±0.06mg/L的水体中90h,测量其免疫和代谢指标的变化。结果发现:投喂含三种不同油脂饲料的中华绒螯蟹各组之间体重没有显著性差异;低氧胁迫对河蟹代谢指标影响较大;添加鱼豆混合油组饲料对中华绒螯蟹免疫和抗氧化能力有促进作用,相较于其他两组,此组河蟹耐低氧的能力更强。
     以上研究结果说明,低氧显著影响了中华绒螯蟹幼蟹的免疫和生理代谢性能;对幼蟹投喂含DHA或ARA不同的饲料,发现饲料中DHA的添加对幼蟹免疫系统有益,而饲料中ARA的适量添加(0.6,0.9%)能增强幼蟹的免疫和生理性能;当饲料中DHA/EPA比例为1,2时,对幼蟹的免疫和生理性能更有益;最后,鱼油与豆油在饲料中1:1比例混合添加会使成蟹的免疫和耐低氧能力更好。
Chinese mitten crab (Eriocheir sinensis) is called hair crab, river crab, is belong to crustacea class, decapoda order, square crab family, and mitten crab genus, is a specialty in China. It mainly lives the coast of Chinese eastern sea and the rivers, lakes connected with sea, now is a main aquaculture economic crabs species in China. Recent years, the annual yield of market-sized mitten crabs increased from 17 500mt in 1993 to 570 000mt in 2005. The pond aquaculture is the main form of farming crabs in China. In this kind aquaculture process, especially in hot weather, the organic waste such as abundant residual feed and excretion deposited at the bottom of the pond and could not be decomposed, meanwhile, the pond commonly did not clear up for several years. These all lead to the occurence of oxygen consumption at the bottom of the pond, the crabs lived in the benthic cave of pond were subjected to the hypoxia stress. At hypoxia condition, the immune abilities of crabs could reduce, and its resistance to disease would decrease, then they will die due to the infection. Another, the reduction of immune abilities would influence crabs’anti-hypoxia ability, the interaction of both factors led to massive death of mitten crabs in Chinese ponds.
     Improvement of crab nutrition, the research about the relationship of environmental stress tolerance and nutrition are an important way to enhancing the ability of immune and anti-hypoxia in crabs. Essential fatty acids (EFA) such as DHA, ARA and EPA et al. play a diverse role in the physiological and biochemical processes within aquatic animals. EFA is an important component in cell membrane, can influence the cellular phagocytosis and respiratory burst strength, and increase the aquatic animals’immune ability with regulating the enzymes relating to immune. In addition, the DHA and EPA is the precursors of eicosanoids, the eicosanoids is a kind of highly reactive molecules in a variety of stress response. But the reports about the relationship of nutrition and immune ability and resistance to hypoxia were not seen. The object of this study is to research the effect of hypoxia on the immunological and physiological ability in the juvenile Chinese mitten crab (Eriocheir sinensis); the effect of dietary DHA and ARA on immunological and physiological ability and response to hypoxia in juvenile Chinese mitten crab (Eriocheir sinensis); the effect of dietary different DHA/EPA ratio on immunological and physiological ability and response to hypoxia in juvenile Chinese mitten crab (Eriocheir sinensis); the effect of dietary different oil lipid on immunological and physiological ability and response to hypoxia in adult Chinese mitten crab (Eriocheir sinensis). Results obtains are as follow:
     1、The juvenile Chinese mitten crabs Eriocheir sinensis (1.40±0.43g) were cultured in water of 2.04±0.16 (hypoxia, treatment group) and 8.01±0.22mg/L (high dissolved oxygen (DO), control group) DO for 24h, respectively. The total haemocyte counts (THC), the hyaline haemocyte counts were measured at 0 and 24 h in the treatment group, and superoxide dismutase (SOD) activity, concentrations of lactic acid and hemocyanin (Hc) in haemolymph and the metabolism of hepatopancreas (concentrations of glucose, total cholesterol, uric acid, total protein, urea, triglyceride in hepatopancreas) were assayed at 0, 2, 8 and 24 h in both treatment and control groups. The hyaline haemocyte counts and THC decreased significantly by 66% and 49% after exposure to hypoxic water for 24 h, respectively. SOD activity, Hc and lactic acid content were significantly affected in treatment group, and there were significant differences between treatment and control groups. In the treatment group the concentration of glucose, cholesterol and uric acid in hepatopancreas had a significant variation for 24 h. The concentration of total protein, urea and triglyceride between treatment and control groups was not significantly different after 0, 2, 8, 24 h. However, there were significant differences between treatment and control groups in terms of total protein, glucose and uric acid concentration. Taken together, the effect of hypoxia is comprehensive in juvenile Chinese mitten crab Eriocheir sinensis.
     2、The juveniles of Chinese mitten crab (Eriocheir sinensis) were raised with diets including different contents of the essential fatty acids (EFA)――docosahexaenoic acid (DHA, C22:6n-3) or arachidonic acid (ARA, C20:4n-6) for about 3.5 and 4 months, and their immunological and physiological ability after acclimated to hypoxia 24 h (DHA and ARA diet) and normal DO (dissolved oxygen) level (ARA diet) were evaluated. Five different DHA and ARA dietary preparations (group D1, D2, D3, D4, D5 and A1, A2, A3, A4, A5) were compared: 0%, 0.25%, 0.5%, 1%, 1.5% and 0%, 0.3%, 0.6%, 0.9%, 1.2% (d.w.). In DHA diet experiment the THC (total haemocyte counts), the hyaline haemocyte counts had no significant difference in five dietary groups in hypoxia water for 24 h, the hemocyanin (Hc) appeared an interesting fluctuation trend, higher supplement of DHA in diets significantly influenced the Hc content. SOD activities in supplement of DHA groups were significantly higher than 0% supplement group exposed to hypoxia for 24h. In hepatopancreas total cholesterol and triglyceride content increased with the enrichment of DHA in diets. In ARA diets experiment the immunological and physiological parameters were considerable affected by hypoxia stress. The THC and the hyaline haemocyte counts were significantly increased by the supplementation of ARA, especially in moderate supplementation (0.6%, 0.9% d.w.) in normal DO water. However, there were no differences in both SOD activity and Hc content of haemolymph among dietary treatments in normal and low DO level respectively. The LD and UA content of haemolymph in moderate supplementation ARA (0.6%, 0.9% d.w.) were significantly different with the no supplementation ARA in both DO level. In hepatopancreas the immunological and physiological ability had no difference among the dietary groups in low DO water. Thus, the hypoxia had a considerable negative impact on the immunological and physiological parameters of crabs. Enriching DHA in diets has significant improved the nutrition, physiological ability and adaptation to hypoxia stress in juveniles of E. sinensis. And the results from ARA experiment suggested that dietary ARA, especially moderate ARA level (0.6%, 0.9% d.w.), significantly improved immune and physiological response and the anti-hypoxia ability of Chinese mitten crab juveniles.
     3、The juveniles of Chinese mitten crab (Eriocheir sinensis) (1.32-1.76g) were raised with diets with different DHA/EPA ratios (docosahexaenoic acid (DHA, 22:6n-6); eicosapentaenoic acid (EPA, 20:5n-3)) for 3 months, and their immunological and physiological variables after acclimated to hypoxia (2.34±0.30mg/L) 24 h and at normal DO (DO: dissolved oxygen; 8.02±0.35mg/L) water were measured. Five different DHA/EPA ratio dietary preparations (group 1, 2, 3, 4, 5) were compared: 0.3, 0.6, 1, 2, 3. We found the immunological ability in haemolymph was not significantly affected by the different DHA/EPA ratio diet except the Hc content after exposure to 24 h hypoxia and the activity ofγ-GGT (γ-glutamyltransferase) at normal DO level. The antioxidase activity SOD showed a decreasing trend from diet 1 to 5 at normal DO level but there were no significant difference in the five diets after exposure to 24 h hypoxia. In haemolymph, the physiological metabolism indices were evidently affected by the different dietary DHA/EPA ratio, especially the activity of LDH (lactate dehydrogenase) in diet 4 was significant higher than other diet groups’after exposure to 24 h hypoxia. Moreover, hypoxia significantly influenced the most immunological and physiological indices. In hepatopancreas, the activity ofγ-GGT and Glu (glucose) content in diet 4 were distinctly higher than other diet groups, and the content of LD (lactic acid) in diet 3 was the highest in the five diets after exposure 24h hypoxia. Thus, feeding diet 3 and 4 was better for the immune ability, transport oxygen and metabolism physiology of intermolt juveniles of E. sinensis after exposure to 24 h hypoxia.
     4、The objective of this study is to measure the effect of supplement of fish and soybean oil in diets on the weight, immune, metabolism and resistance to hypoxia in Chinese mitten crab (E.sinensis). The three diets for adult crabs with different ratio fish oil and soybean oil were prepared. These diets were fed crab for 115 days. Their weight changes were measured. And then the crabs were placed into hypoxia water (2.57±0.44mg/L) and normal DO level (9.06±0.06mg/L) for 90 hours,after that their immune and metabolic indices were measured. We found that the hypoxia stress influence the metabolism of crab in some ways. The weights of crab were not significantly affected by the variety of oil lipid in diets; the supplement of fish and soybean oil (1:1) in diets evidently improved the crabs’immune and antioxidant ability, comparing with other two groups, the crabs in mix oil group had a better ability of resistance to hypoxia.
     The above results demonstrated that hypoxia significantly influenced the immunity and physiological ability in the juvenile of Chinese mitten crab; the supplement of DHA in diets improved the immunity system of juvenile crabs, the proper supplement of ARA (0.6, 0.9%) in diets would enhance the immunity and physiological ability of juvenile crabs; when the DHA/EPA in diets is 1 and 2, the juvenile crabs’immunity and resistance to hypoxia is better; and last, the supplement of fish oil and soy oil (1:1) in diets is better for the immunity and resistance to hypoxia in adult crabs.
引文
Bell, J.G., Raynard, R.S., Sargent, J.R., 1991a. The effect of dietary linoleic acid on the fatty acid composition of individual phospholipids and lipoxgenase products from gill and leukocytes of Atlantic salmon (Salmo salar). Lipids 26: 445–450.
    Bell, J.G., McVicar, A.H., Park, M.T., Sargent, J.R., 1991b. Effects of high dietary linoleic acid on fatty acid composition of individual phospholipids from tissues of Atlantic salmon (Salmo salar): association with stress susceptibility and cardiac lesion. Journal of Nutrition 121: 1163–1172.
    Bell, M.V., Dick, J.R., 1991. Molecular species composition of the major diacyl glycerophospholipids from muscle, liver, retina and brain of cod (Gadus morhua). Lipids 26: 565– 573.
    Boyd, J.N., Burnett, L.E., 1999. Reactive oxygen intermediate production by oyster hemocytes exposed to hypoxia. J. Exp. Biol. 202: 3135-3143.
    Breitburg, D.L, 1992. Episodic hypoxia in Chesapeake Bay: interacting effects of recruitment, behavior, and physical disturbance. Ecol. Monogr. 62: 525–546.
    Burnett, L.E., 1979. The effects of environmental oxygen levels on the respiratory function of hemocyanin in the crabs, Libinia emarginata and Ocypode quadrata, J. Exp. Zool., 210,289-300.
    Burnett, L.E., Johansen, K., 1981. The role of brachial ventilation in hemolymph acid-base changes in the shore crab Carcinus maenas during hypoxia, J. Cornp. Physiol., 141,489-494.
    Burnett, L.E., Holman, J.D., Jorgensen, D.D., Ikerd, J.L., Burnett, K.G., 2006. Immune defense reduces respiratory fitness in crustaceans. In revision for Biol. Bull.
    Calder, P.C., 2001. Polyunsaturated fatty acids, inflammation and immunity. Lipids 36: 1007–1024.
    Cameron, J.N., 1978. Effects of hypercapnia on blood acid-base status, NaCl fluxes, and trans-gill potential in freshwater blue crabs Callinectes sapidus, J. Comp. Physiol., 123, 137-141.
    Castell, J.D., Bell, J.G., Tocher, D.R., Sargent, J.R., 1994. Effects of purified diets containing different combinations of arachidonic and docosahexaenoic acid on survival, growth and fatty acid composition of juvenile turbot (Scophthalmus maximus). Aquaculture 128: 315–333.
    Mugnier, C., Zipper, E., Goarant, C., et al., 2008. Combined effect of exposure to ammonia and hypoxia on the blue shrimp Litopenaeus stylirostris survival and physiological response in relation to molt stage. Aquaculture 274: 398-407.
    Chim, L., Lemaire, P., Delaporte, M., Moullac, G.L., Galois, R., Martin, J.L.M., 2001. Could a diet enriched with n-3 highly unsaturated fatty acids be considered a promising way to enhance the immune defences and the resistance of Penaeid prawns to environmental stress? Aquaculture Research February 2001;32(2): 91.
    Christopher, A.T., et.al., 2006. The effects of hypoxia and pH on phenoloxidase activity in the Atlantic blue crab, Callinectes sapidus, Comparative Biochemistry and Physiology, Part A 144:218–223.
    Chen, J.C., Mai, K.S., Ma, H.M., Wang, X.J., Deng, D., et al., 2007. Effects of dissolved oxygen on survival and immune response of scallop (Chlamys farreri Jones et Preston). Fish and Shellfish Immunology 22:272-281.
    Cheng, W., Liu, C.H., Hsu, J.P., Chen, J.C., 2002. Effects of hypoxia on the immune response of jiant freshwater prawn Macrobrachium rosenbergii and its susceptibility to pathogen, Enterococcus. Fish shellfish Immunol.,13:351-365.
    Cochran, R.E., Burnett, L.E., 1996. Respiratory responses of the salt marsh animals, Fundulus heteroclitus, Leiostomus xanthurus, and Palaemonetes pugio to environmental hypoxia and hypercapnia and to the organophosphate pesticide, azinphosmethyl, J. Exp. Mar. Biol. Ecol.,195: 125-144.
    deFur, P.L., Mangum, C.P., Reese, J.E., 1990. Respiratory responses of the blue crab Callinectes sapidus to long-term hypoxia, Biol. Bull., 178,46-54.
    deFur, P. L. and A. L. Pease, 1988. Metabolic and respiratory compensation during long term hypoxia in blue crabs, Callinectes sapidus, in Understanding the fituary: Advances in Chesapeake Bay Research, Chesapeake Research Consortium Publication, pp. 608-616.
    Das, T., Stickle, W.B., 1993. Sensitivity of crabs Callinectes sapidus and C. similis and the gastropod Stramonita haemastoma to hypoxia and anoxia. Mar. Ecol. Prog. Ser., 98, 263-274.
    Das, T., Stickle, W.B., 1994. Detection and avoidance of hypoxic water by juvenile Callinectes sapidus and C. similis. Mar. Biol., 120: 593-600.
    Dawson, M.E., Morris, R.J., Lockwood, A.P.M., 1984. Some combined effects of temperature and salinity on water permeability and gill lipid composition in the amphipod Gammarus duebeni. Comparative Biochemistry and Physiology 78A: 729–735.
    Diaz, R.J., 2001. Overview of hypoxia around the world. Journal of Environmental Quality 2:275-281.
    Direkbusarakom, S., Danayadol, Y., 1998. Effect of oxygen depletion on some parameters of the immune systemin black tiger shrimp (Penaeus monodon). In: Flegel, T.W. (Ed.),“Advances in shrimp biotechnology”. National Center for Genetic Engineering and Biotechniology, Bangkok, Thailand, pp. 147–149.
    Garlo, E.V., Milstein, C.B., Jahn, A.E., 1979. Impact of hypoxic conditions in the vicinity of Little Egg Inlet, New Jersey in summer 1976, Estuar. Cstl. Mar. Sci., 8:421-432.
    Gilbert, L.I., O’Connor, J.D., 1970. Lipid metabolism and transport in Arthropods. In: Florkin M, Scheer BT (eds) Chemical Zoology, pp. 229–253. Academic Press, New York.
    Glencross, B.D., 2009. Exploring the nutritional demand for essential fatty acids by aquaculture species. Review in Aquaculture 1, 72-124.
    Hagerman, L., Sondergaard, T.,Weile, K., Hosie, D., Uglow, R.F., 1990. Aspects of blood physiology and ammonia excretion in Nephrops norvegicus under hypoxia. Comparative Biochemistry and Physiology 97A: 51–55.
    Hagerman, L., Uglow, R.F., 1982. Effects of hypoxia on osmotic and ionic regulation in the brown shrimp Crangon crangon (L.) from brackish water. Journal of Experimental Biology and Ecology 63:93–104.
    Hagerman, L., 1986. Haemocyanin concentration in the shrimp Crangon crangon (L.) after exposure to moderate hypoxia, Comp. Biochem. Physiol., 85A, 721-724.
    Henderson, R.J., Bell, M.V., Sargent, J.R., 1985. The conversion of polyunsaturated fatty acids to prostaglandins by tissue homogenates of turbot, Scopthalamus maximus. Journal of Experimental Marine Biology and Ecology 85: 93–99.
    Immanuel, G., Citarasu, T., Sivaram, V., Michael, B.M., Palavesam, A., 2007. Delivery of HUFA, probionts and biomedicine through bioencapsulated Artemia as a means to enhance the growth and survival and reduce the pathogenesity in shrimp Penaeus monodon postlarvae. Aquacult Int,15:137–152.
    Bernatis, J.L., 2005. Behavioral ecophysiology of Dungeness crabs during feeding and digestion in hypoxia, Master of Science Degree in Biological Science Department of Biological Sciences College of Sciences, Graduate College University of Nevada, Las Vegas August.
    Jiang, L., Pan, L., Fang, B., 2005. Effect of dissolved oxygen on immune parameters of the white shrimp Litopenaeus vannamei. Fish and Shellfish Immunology ,18: 185-188.
    Johansson, M.W., Keyser, P., Sritunyalucksana, K., 2000. Crustacean haemocytes and haematopoiesis [J]. Aquaculture, 191 (1-3) : 45-52.
    Johnson, P.V., 1985. Dietry fat, eicosanoids and immunity. Advanced Lipid Research 21: 103–141.
    Le Moullac, G., Soyez, C., Saulnier, D., Ansquer, D., Avarre, J.C., Ley, P., 1998. Effect of hypoxic stress on the immune response and the resistance to vibriosis of the shrimp Peaneus stylirostris. Fish Shellfish Immunol. 8,621-629.
    Lallier, F., Truchot, J.P., 1989. Hemolymph oxygen transport during environmental hypoxia in the shore crab, Carcinus maenas, Respir. Physiol., 77, 323-336.
    Loesch, H., 1960. Sporadic mass shoreward migrations of demersal fish and crustaceans in Mobile Bay, Alabama, Ecology, 41:292-298.
    Liu, Z., Xiu, M., Zhong, J.L., et al., 2008. Compensatory growth of Chineise shrimp, fenneropenaeus chinensis following hypoxic exposure. Aquacult Int., 16:455-470.
    Brouwer, M., Larkin, P., et al., 2004. Effects of hypoxia on gene and protein expression in the blue crab, Callinectes sapidus. Marine Environmental Research 58:787–792.
    May, E.B., 1973. Extensive oxygen depletion in Mobile Bay, Alabama, Limnol. Oceanogr., 18:353-366.
    Mangum, C.P., Bumett, L.E., 1986. The CO2 sensitivity of the hemocyanins and its relationship to C1- sensitivity, Biol. Bull., 171, 248-263.
    Mangum, C.P., 1997. Adaptation of the oxygen transport system to hypoxia in the blue crab, Callinectes sapidus, Amer. Zool., 37, 604-611.
    Mason, R.P., Mangum, C.P.,Godette, G., 1983. The influence of inorganic ions and acclimation salinity of hemocyanin-oxygen binding in the blue crab Callinectes sapidus. Biol. Bull., 164, 104-123.
    Mangum, C.P., Rainer, J.S., 988. The relationship between subunit composition and oxygen binding of blue crab hemocyanin. Biol. Bull., 174: 77-82.
    Masuda, R., 2003. The critical role of docosahexaenoic acid in marine and terrestrial ecosystems: from bacteria to human behaviour. In: Browman HI, Skiftesvik AB (eds) The Big Fish Bang. Proceedings of the 26th Annual Larval Fish Conference, pp. 249–256. Institute of Marine Research, Bergen, Norway.
    Masuda, R., Takeuchi, T., Tsukamoto, K., Ishizaki, Y., Kanematsu, M., Imaizumi, K., 1998. Critical involvement of dietary docosahexaenoic acid on the ontogeny of schooling behaviour in yellowtail. Journal of Fish Biology, 53: 47
    Mikulski, C.M., Burnett, L.E., Burnett, K.G., 2000. The effects of hypercapnic hypoxia on the survival of shrimp challenged with Vibrio parahaemolyticus. Journal of Shellfish Research 19: 301–311
    McMahon, B.R., 2001. Respiratory and circulatory compensation to hypoxia in Crustaceans. Respiration physiology 128:349-364.
    McMahon, B.R., Wilkens, J.L., 1975. Respiratory and circulatory responses to hypoxia in the lobster Homarus americanus, J. Biol., 62: 637-655.
    Mikulski, C.M., Burnett, L.E., Buunett, K.G., 2000. The effects of hypercapnic hypoxia on the survival of shrimp challenged with Vibrio parahaemolyticus. J. Shellfish Res. 19:301-311.
    McKenzie, D.J., Piraccini, G., Piccolella, M., Steffensen, J.F., Bolis, C.L., Taylor, E.W., 2000. Effects of dietary fatty acid composition on metabolic rate and responses to hypoxia in theEuropean eel (Anguilla anguilla). Fish Physiology and Biochemistry 22: 281-296.
    McKenzie, D.J., Lund, I., Pedersen, P.B., 2008. Essential fatty acids influence metabolic rate and tolerance of hypoxia in Dover sole (Solea solea) larvae and juveniles. Mar Biol 154, 1041-1051.
    McKenzie, D.J., Piraccini, G., Papini, N., Galli, C., Bronzi, P., Bolis, C.G., Taylo,r E.W., 1997. Oxygen consumption and ventilatory reflex responses are influenced by dietary lipids in sturgeon. Fish Physiology and Biochemistry 16: 365-379.
    Menoyo, D., Lopez-Bote, C.J., Bautista, J.M., Obach, A., 2003. Growth, digestibility and fatty acid utilisation in large Atlantic salmon (Salmo salar) fed varying levels of n-3 and saturated fatty acids. Aquaculture 225: 295–307.
    Menoyo, D., Diez, A., Lopez-Bote, C.J., Casado, S., Obach, A., Bautista, J.M., 2006. Dietary fat type affects lipid metabolism in Atlantic salmon (Salmo salar L.) and differentially regulates glucose transporter GLUT4 expression in muscle. Aquaculture 261: 294–304.
    Morson, L.A., Clandinin, M.T., 1986. Diets varying in linoleic and linolenic acid content alter liver plasma membrane lipid composition and glucagon-stimulated adenylate cyclase activity. Journal of Nutrition 116: 2355–2362.
    Mourente, G., Tocher, D.R., 1991. Specific accumulation of docosahexaenoic acid (22:6n-3) in brain lipids during development of juvenile turbot, Scopthalamus maximus. Lipids 26: 871–877.
    Nkbeil, E.G., Wriston, J.C., et al., 1981. Hemocyanin synthesis in the American lobster, Homarus americanus, Comp. Biochem. Phyiol. 68B, 163-171.
    Nestlerode, J.A., Diaz, R.J., 1998. Effects of periodic environmental hypoxia on predation of a tethered polychaete, Glycera americana: implications for trophicdynamics, Mar. Ecol. Prog. Ser., 172, 185-195.
    Noga, E.J., Arroll, T.A., Zhiqin, F., 1996. Specificity and some physicochemical characteristics of
    the antibacterial activity from blue crab Callinectes sapidus. Fish Shellfish Immunol. 6:403–412. Pavela, J.S., Ross, J.L., Chittenden, M.E., et al., 1983. Sharp reductions in abundance of fishes and benthic macro-invertebrates in the Gulf of Mexico off Texas associated with hypoxia, NE Gulj Sci. 6: 167-173.
    Pihl, L., Baden, S.P., Diaz, R.J., 1991. Effects of periodic hypoxia on distribution of demersal fish and crustacean, Mar. Biol. 108: 349-360.
    Pease, A.L., deFur, P.L., Chase, C., 1986. Physiological compensation to long term hypoxia in the blue crab, Callinectes sapidus. Amer. Zool. 26, 122 A.
    Rabalais, N.N., Turner, R.E., Wiseman, W.J., 2001. Hypoxia in the Gulf of Mexico. J. Environ. Qual. 30:320–329.
    Racotta, I.S., Palacios, E., Mendez, L., 2002. Metabolic responses to short and long-term exposure to hypoxia in white shrimp (Penaeus vannamei). Marine Freshwater Behaviour Physiology 35: 269–275.
    Rawn, J.D., 1989. Biochemistry. Neil Patterson Publishers, Burlington.
    Renaud, M.L., 1986. Detecting and avoiding oxygen deficient sea water by brown shrimp, Penaeus aztecus (Ives), and white shrimp, Penaeus setiferus (Linnaeus), J. Exp. Mar. Biol. Ecol., 98, 283-292.
    Rengan, M.D., Kuchel, L.J., Huang, S.S.Y, Higgs, D.A., Wang, J., Schulte, P.M., Brauner, C.J., 2010. The effect of dietary fish oil and poultry fat replacement with canola oil on swimming performance and metabolic response to hypoxia in stream type spring Chinook salmon parr. Aquaculture 308, 183-189.
    Rutledge, P.S., 1981. Effects of temperature acclimation on crayfish hemocyanin oxygen binding, Amer. J. Physiol., 240, R93-R98.
    Sargent, J.R., Bell, M.V., Bell, J.G., Henderson, R.J., Tocher, D.R., 1995a. Origins and functions of n-3 polyunsaturated fatty acids in marine organisms. In: Cevc G, Pactauf F (eds) Phospholipids: Characterisation, Metabolism and Novel Biological Applications, pp. 248–259. American Oil Chemist Press, Champaign.
    Sargent, J.R., Bell, J.G., Bell, M.V., Henderson, R.J., Tocher, D.R., 1993. The metabolism of phospholipids and polyunsaturated fatty acids in fish. In: Callou B, Vittelo P (eds) Coastal and Estuarine Studies– Aquaculture: Fundamental and Applied Research, pp. 103–124. American Geophysical Union, Washington.
    Salte, R., Thomassen, M.S., Wold, K., 1988. Do high levels of dietary polyunsaturated fatty acids (EPAIDHA) prevent diseases associated with membrane degeneration in farmed Atlantic salmon at low water temperatures? Bulletin of the European Association of Fish Pathologists 8: 63–65.
    Stokes, J.B., 1981. Prostaglandin and the regulation of NaCl transport across renal epithelia. Minerals Electrolytes and Metabolism 6: 35–45.
    Spicer, J.I., Thornmasson, M.A., Stromberg, J.o., 1999. Possessing a poor anaerobic capacity does not prevent the die1 vertical migration of Nordic krill Meganyctiphanes norvegica into hypoxic waters, Mar. Ecol. Prog. Ser., 185, 181-187.
    Stickle, W.B., 1985. Effects of environmental factor gradients on scope for growth in several species of carnivorous marine invertebrates, in Marine Biologv of Polar Regions and Effects of Stress on Marine Organisms, edited by J. S. Gray and M. E. Christiansen, John Wiley & Sons, Ltd., London, p. 501-616.
    Stickle, W.B., Kapper, M.A., Liu, L.L., Gnaiger, E., Wang, S.Y., 1989. Metabolic adaptations of several species of crustaceans and molluscs to hypoxia: Tolerance and microcalorimetric studies, Biol. Bull. 177: 303-312.
    Takeuchi, T., Kang, S.J., Watanabe, T., 1989. Effects of environmental salinity on lipid classes and fatty acid composition of gills of Atlantic salmon. Bulletin of the Japanese Society of Scientific Fisheries 55: 1395–1405.
    Terano, T., Salmon, J.S., Higgs, G.A., Moncada, S., 1986. Eicosapentaenoic acid as a modulator of inflammation effect on prostaglandin and leukotriene synthesis. Biochemical Pharmacology 35: 779–785.
    Thompson, K.D., Tatner, M.F., Henderson, R.J., 1996. Effects of dietary (n-3) and (n-6) polyunsaturated fatty acid ratio on the immune response of Atlantic salmon, Salmo salar L. Aquaculture Nutrition 2: 21–31.
    Tocher, D.R., Harvie, D.G., 1988. Fatty acid compositions of the major phosphoglycerides from fish neural tissues; n-3 and n-6 polyunsaturated fatty acids in rainbow trout (Salmo gardneri) and cod (Gadus morhua) brains and retinas. Fish Physiology and Biochemistry 5: 229–239.
    Truchot, J.P., 1975. Changements de l'etat acide-base du sang en foncton de l'oxygenation de I'eau chez le crabe, Carcinus maenas (L), J. Physiol., Paris, 70, 583-592.
    Turner, R.E., Rabalais, N.N., 1994. Evidence for coastal eutrophication near the Mississippi River delta. Nature 368: 619–621.
    陈立侨,江洪波,周忠良,等. n-3 HUFA对中华绒螯蟹幼体存活率及体脂肪酸组成的影响.水产学报, 2000, 24 (5): 448-452.
    陈德斌, 2001.人工养殖河蟹的死亡原因.渔业致富指南, 12: 46.
    高键,李跃华.甲壳类的体液免疫因子及其环境作用.水产养殖, 1992, (6): 21-23.
    刘勃,蒋国春,丁洪祥.池塘养蟹充气增氧技术初报.水产养殖, 2007, 28 (2): 43-44.
    刘长军,郑凯宏,周志强,张达云.海水池塘底充氧增氧养殖三疣梭子蟹高产实验.中国水产, 2007, (6): 52-53.
    施正学,朱俊杰.中华绒螯蟹池塘高效生态养殖技术.水产养殖, 2006, 27 (4): 39-40.
    牟海津,江晓路,刘树青,等.日本对虾溶血素的活性测定及性能研究.海洋与湖沼, 1999, 30 (4): 362-367.
    徐新章,何珍秀,付培峰.不同脂肪源对幼蟹生长的影响. 1998, 18 (5): 16-18.
    王雷,李友光.甲壳动物的体液免疫研究进展[J].海洋科学, 1992, (3): 18-19.
    王武,李应森,成永旭。成蟹养殖技术。水产科技情报,2007,34 (5): 217-220.
    王武主编(陆伟民,吴嘉敏,成永旭等参编), 2000.鱼类增养殖学.中国农业出版社,北京.
    翁幼竹,李少氰,王桂忠.锯缘青蟹幼体饵料的营养强化.水产学报, 2001, 25 (3): 227-231.
    Bachère, E., Miahle, E., Rodriguez, J., 1995. Identification of defence effectors in the haemolymph of crustaceans with particular reference to the shrimp Penaeus japonicus (Bate): prospects and application. Fish & Shellfish Immunology 5: 597–612
    Barham, D., Trinder, P., 1972. Enzymatic determination of uric acid. Analyst 97: 142–145 Bell, G.W., Eggleston, D.B., 2005. Species-specific avoidance responses by blue crabs and fish to chronic and episodic hypoxia. Marine Biology 146: 761–770
    Bell, K.L., Smith, V.J., 1993. In vitro superoxide production by hyaline cells of the shore crab Carcinus maenas (L.). Developmental and Comparative Immunology 17: 211–219
    Bernatis, J.L., Gerstenberger, S.L., McGaw, I.J, 2007. Behavioural responses of the Dungeness crab, Cancer magister, during feeding and digestion in hypoxic conditions, Mar Biol 150:941–951
    Bouchet, J.Y., Trouchot, J.P., 1985. Effects of hypoxia and L-Lactate on the haemocyanin-oxygen affinity of the lobster, Homarus vulgaris. Comp Biochem Physiol A 80 (1): 69–73
    Bridges, C.R., 2001. Modulation of haemocyanin oxygen affinity: properties and physiological implications in a changing world. J Exp Biol 204:1021–1032
    Brown-Peterson, N.J., Manning, C.S., Patel, V., et al., 2008. Effects of Cyclic Hypoxia on Gene Expression and Reproduction in a Grass Shrimp, Palaemonetes pugi. Biol. Bull 214: 6–16
    Buckup, L., Dutra, B.K., Ribarcki, F.P., et al., 2008. Seasonal variations in the biochemical composition of the crayfish Parastacus defossus (Crustacean, Decapoda) in its natrual environment. Comp Biochem Physiol A 149 : 59-67
    Burgents, J.E., Burnett, K.G., Burnett, L.E., 2005. Effects of hypoxia and hypercapnic hypoxia on the localization and elimination of Vibrio campbellii in Litopenaeus vannamei, the Pacific white shrimp. Biological Bulletin 208: 159–168
    Campa-Córdova, A.I., Hernández-Saavedra, N.Y., Ascencio, F., 2002. Superoxide dismutase asmodulator of immune function in American white shrimp (Litopenaeus vannamei). Comparative Biochemistry and Physiology Part C 133:557–65
    Chen, D.W., Zhang, M., Shrestha, S., 2007. Compositional characteristics and nutritional quality of Chinese mitten crab (Eriocheir sinensis). Food Chem 103: 1343–1349
    Cheng, W., Liu, C.H., Hsu, J.P., et al., 2002. Effect of hypoxia on the immune response of giant freshwater prawn Macrobrachium rosenbergii and its susceptibility to pathogen Enterococcus. Fish & Shellfish Immunology 13: 351–365
    Cheng, W., Chen, J.C., 2000. Effects of pH, temperature and salinity on immune parameters of the freshwater prawn Macrobrachium rosenbergii. Fish & Shellfish Immunology 10: 387–391
    Cheng, W., Liu, C.H., Kuo, C.M., 2003. Effects of dissolved oxygen on hemolymph parameters of freshwater giant prawn, Macrobrachium rosenbergii (de Man). Aquaculture 220:843–856
    Chen, J.C., Kou, T.T., 1998. Hemolymph acid-balance, oxyhemocyanin, and protein levels of Macrobrachium rosenbergii at different concentrations of dissolved oxygen. J Crustac Biol 18: 437–441
    Chen, J.H., Mai, K.S., Ma, H.M., et al., 2007. Effects of dissolved oxygen on survival and immune responses of scallop (Chlamys farreri Jones et Preston). Fish & Shellfish Immunology 22: 272–281
    Childress, J.J., Seibel, B.A., 1998. Life at stable low oxygen levels: adaptations of animals to oceanic oxygen minimum layers. J Exp Biol 201:1223–1232
    Das, T., Stickle, W.B., 1993. Sensitivity of crabs Callinectes sapidus and C. similis and the gastropod Stramonita haemastoma to hypoxia and anoxia. Marin ecology progress series 98:263–274
    Das, T., Stickle, W.B., 1994. Detection and avoidance of hypoxic water by juvenile Callinectes sapidus and C. similis. Marine Biology 120:593–600
    DeFur, P.L., Mangum, C.P., Reese, J.E., 1990. Respiratory responses of the blue crab Callinectes sapidus to long-term hypoxia. Biol.Bull 178: 46–54
    Goodman, L.R., Campbell, J.G., 2007. Lethal levels of hypoxia for gulf coast estuarine animals. Mar Biol 152:37–42
    Gutmann, I., Wahlefeld, A.W., 1974. L-(+)-lactate. Determination with lactate dehydrogenase and NAD+. In: Bergmeyer, H.U. (Ed), Methods of Enzymatic Analysis, 2nd edn. Academic Press, New York, pp. 1464–1468
    Hergenhahn, H.G., S?derh?ll, K., 1985. a2-Macroglobulin-like activity in plasma of the crayfish Pacifastacus leniusculus. Comp. Biochem. Physiol. 81 B:833–835
    Hagerman, L., Oksama, M., 1985. Haemocyanin concentration, carrying capacity and haemolymph pH under hypoxia in Mesidotea entomon (L.) (Isopoda, Crustacea). Ophelia 24:47–52
    Hagerman, L., 1986. Haemocyanin concentration in the shrimp Crangon crangon (L.) after exposure to moderate hypoxia. Comp. Biochem. Physiol. 85A:721–724
    Hagerman, L., Sondergaard, T., Weile, K., et al,. 1990. Aspects of blood physiology and ammonia excretion in Nephrops norvegicus under hypoxia. Comparative Biochemistry and Physiology 97A: 51–55.
    Henry, R.P., Handley, H.L., Krarup, A., et al., 1990. Respiratory and cardiovascular response of two species of deep-sea crabs, Chaceon fenneri and C.quinquedens, in normoxia and hypoxia. J Crustacean Biol 10: 413–422
    Hill, A.D., Strang, R.H.C., Taylor, A.C., 1991. Radioisotope studies of the energy metabolism of the shore crab Carcinus maenas (L.) during environmental anoxia and recovery. J. Exp. Biol. Ecol. 150:51–62
    Hill, A.D., Taylor, A.C., Strang, R.H.C., 1991. Physiological and metabolic responses of the shore crab Carcinus maenas (L.) during environmental anoxia and subsequent recovery. J. exp. mar. Biol. Ecol. 150: 31–50
    Hu, F.W., Pan, L.Q., Jing, F.T., 2009. Effects of Hypoxia on Dopamine Concentration and the Immune Response of White Shrimp (Litopenaeus vannamei). J Ocean Univ China (Oceanic and Coastal Sea Research) 8 (1): 77–82
    Jiang LX, Pan LQ, Fang B (2005) Effect of dissolved oxygen on immune parameters of the white shrimp Litopenaeus vannamei. Fish and Shellfish Immunology 18:185–188
    Johansson, M.W., 1995. Cellular immune reaction in crustaceans: methods for in vitro studies. In: Stolen JS, Fletcher TC, Smith SA et al (Eds), Techniques in Fish Immunology. New Haven, NJ: SOS Publications. pp 147–154.
    Johnson, B.A., Bonaventura, C., Bonaventura, J., 1984. Allosteric modulation of Callinectes sapidus hemocyanin by binging of L-Lactate. Biochemistry-US 23: 872–878.
    Josephson, B., Gyllensward, C., 1957. The development of.the serum electrolyte concentration in the normal infants and children. Scand J Clin Lab Invest 9:29
    Kassirer, J.P., 1971. Clinical evaluation of kidney function-glomerular function. N Engl J Med 285:385–389
    Kim, E.K., Waddel, L.D., Sundedrland, M.L.E., et al., 1971. Observations on Diagnostic Kits for the Determination of Uric Acid. Clin Biochem 4:279–289
    Larry, R., Goodman, J., Campbell, G., 2007. Lethal levels of hypoxia for gulf coast estuarine animals. Mar Biol 152:37–42.
    Le Moullac, G., Haffner, P., 2000. Environmental factors affecting immune responses in Crustacea. Aquaculture 191:121–131
    Mangum, C.P., 1997. Adaptation of the Oxygen Transport System to Hypoxia in the Blue Crab, Callinectes sapidus. Amer Zool 37: 604–611
    Mangum, C.P., 1997. Invertebrate blood oxygen carriers. In: Danzler WH (Ed), Handbook of Physiology. Section 13. Comparative Physiology, vol. II. American Physiological Society, Bethesda, NY, pp 1097–1135 Chapter 15
    Mangum, C.P., 1997. Adaptation of the oxygen transport system to hypoxia in the blue crab, Callinectes sapidus. Am Zool 37:604–611
    McMahon, B.R., 1986. Oxygen binding by haemocyanin: compensation during activity and environmental change. In: Linzen B (Ed), Invertebrate Oxygen Carriers. Springer, Berlin, pp 299–311
    McMahon, B.R., 2001. Respiratory and circulatory compensation to hypoxia in crustaceans. Respiration physiology 128: 349–364
    Mikulski, C.M., Burnett, L.E., Burnett, K.G., 2000. The effects of hypercapnic hypoxia on the survival of shrimp challenged with Vibrio parahaemolyticus. Journal of Shellfish Research 19: 301–311
    Macedo, C.F., Pinto-Corilho, R.M., 2001. Nutritional status response of Daphnia laevis and Moina micura from a tropical reservoir to different algal diets: Scenedesmus quadricauda and Ankistrodemus gracilis. Braz J Biol 61:1–10
    Mugnier, C., Zipper, E., Goarant, C., et al., 2008. Combined effect of exposure to ammonia and hypoxia on the blue shrimp Litopenaeus stylirostris survival and physiological response in relation to molt stage. Aquaculture 274: 398–407
    Nancy, J., Brown-Peterson, C., Steve, M., et al., 2008. Effects of Cyclic Hypoxia on Gene Expression and Reproduction in a Grass Shrimp, Palaemonetes pugi. Biol. Bull 214: 6-16
    Ocampo, L., Patin?, D., Ramírez, C., 2003. Effect of temperature on hemolymph lactate and glucose concentrations in spiny lobster Panulirus interruptus during progressive hypoxia. Journal of Experimental Marine Biology and Ecology 296:71–77
    Paschke, K., Cumillaf, J.P., Loyola, S., et al., 2009. Effect of dissolved oxygen level on respiratory metabolism, nutritional physiology, and immune condition of southern king crab Lithodes santolla (Molina, 1782) (Decapoda, Lithodidae). Mar Biol 157:7–18
    Paul, R.J., Zeis, B., Lamkemeyer, T., et al., 2004. Control of oxygen transport in the microcrustacean Daphnia: regulation of haemoglobin expression as central mechanism of adaptation to different oxygen and temperature conditions. Acta Physiol Scand 182:259–275
    Racotta, I.S., Palacios, E., Mendez, L., 2002. Metabolic responses to short and long-term exposure to hypoxia in white shrimp (Penaeus vannamei). Marine Freshwater Behaviour Physiology 35: 269–275
    Regnault, M., 1987. Nitrogen excretion in marine and fresh-water crustacea. Biol Rev 62: 1–24 Schettler, G., Nussel, E., 1975. Massnahmen zur Prevention der Arteriosklerose. Arbeitsmed Sozialmed Praventivmed 10: 25–33
    Schmitt, A.S.C., Uglow, R.F., 1998. Metabolic responses of Nephrops norvegicus to progressive hypoxia. Aquat Linving Resour 11 (2): 87–92
    Schwarz, A., 1995. Aspects of the physiology of some crustacean species with particular reference to their live marketing. Dissertation, University of Hull, UK.
    S?nchez, A., Pascual, C., S?nchez, A., et al., 2001. Hemolymph metabolic variables and immune response in Litopenaeus setiferus adult males: the effect of acclimation. Aquaculture 198: 13–28. Taylor, A.C., Spicer, J.I., 1987. Metabolic responses of prawns Palaemon elegans and P. serratus (Crustacea: Decapoda) to acute hypoxia and anoxia. Mar Biol 95: 521–530.
    Taylor, H.H., Anstiss, J.M., 1999. Copper and haemocyanin dynamics in aquatic invertebrates. Mar Freshw Res 50: 907–931.
    Terwilliger, N.B., Dumler, K., 2001. Ontogeny of decapod crustacean hemocyanin: effects of temperature and nutrition. J Exp Biol 204:1013–1020.
    Teuscher, A., Richterich, P., 1971. Enzymatic method of glucose. Schweiz Med Wschr 101: 345–390.
    Wang, F.I., Chen, J.C., 2006. Effect of salinity on the immune response of tiger shrimp Penaeus monodon and its susceptibility to Photobacterium damselae subsp. Damselae. Fish & Shellfish Immunology 20:671–81.
    Weichselbaum, T.E., 1946. An accurate and rapid method for determination of proteins in small amounts of blood serum and plasma. Amer J Clin Path.16: 40–48.
    Yang, W. L., Zhang, G.H., 2005. The current status and sustainable development of Chinese mitten crab farming. Freshwater Fish 35 (4):62–64 (in Chinese)
    Zhang, L.S., Li, J., 2002. Hatchery technology of Erincheir sinensis. In: Zhang LS (Ed), The breeding and culture of Chinese mitten crab. JingDun Press, Beijing, China, pp 124–196 (in Chinese)
    Zhang, W.Z., Wu, X.Z., Li, D.F., et al., 2005. Immunological functions of blood cells in the scallop Chlamys farreri. Acta Zoologica Sinica 51:669–77
    Zou, E., Du, N., Lai, W., 1996. The Effects of Severe Hypoxia on Lactate and Glucose Concentrations in the Blood of the Chinese Freshwater Crab Eriocheir sinensis (Crustacea: Decapoda). Comp Biochem Physiol 114A (2): 105–109
    Aardt, W., Wolmarans, C., 1987. Effects of anoxia on the hemolymph physiology and lactate accumulations in the freshwater crab, Potamon warreni. Comp. Biochem. Physiol. 88A, 671-675.
    AOAC, 1984. In: Williams, S. (Ed.), Official Methods of Analysis of the Association of Official Analytical Chemists, 14th edn. Arlington, VA, USA. 114 pp.
    Bell, J.G., Tocher, D.R., Farndale, B.M., Cox, D.I., McKinney, R.W., Sargent, J.R., 1997. The effect of dietary lipid on polyunsaturated fatty acid metabolism in Atlantic salmon, Salmo salar, undergoing parr-smolt transformation. Lipids 32, 515-25.
    Benitez-Santana, T., Masuda, R., Juarez-Carillo, E., Ganuza, E., Valencia, A., Hernandez-Cruz, C.M., Izqueirdo, M.S., 2007. Dietary n-3 HUFA deficiency induces a reduced visual response in gilthead seabream Sparus aurata larvae. Aquaculture 264, 408-417.
    Bridges, C.R., 1990. Purines and their interaction with other factors controlling haemocyanin oxygen affinity. In: Préaux, G., Lontie, R. (Eds.), Invertebrate Dioxygen Carriers. Leuven Univ. Press, Leuven, pp. 401-405
    Bridges, C.R., 2001. Modulation of heamocyanin oxygen affinity: properties and physiological implications in a changing world. The Journal of Experimental Biology 204,1021-1032.
    Brown-Peterson, N.J., Manning, C.S., Patel, V., Denslow, N.D., Brouwer, M., 2008. Effects of cyclic hypoxia on gene expression and reproduction in a grass shrimp, Palaemonetes pugi. Biol Bull 214, 6-16.
    Castell, J.D., Bell, J.G., Tocher, D.R., Sargent, J.R., 1994. Effects of purified diets containing different combinations of arachidonic and docosahexaenoic acid on survival, growth and fatty acid composition of juvenile turbot (Scophthalmus maximus). Aquaculture 128, 315-333.
    Chandel, N.S., McClintock, D.S., Feliciano, C.E., Wood, T.M., Melendez, J.A., Rodriguez, A.M., Schumacker P.T., 2000. Reactive oxygen species generated at mitochondrial Complex III stabilize hypoxia-inducible factor-1αduring hypoxia. Journal of Biological Chemistry 275, 25130-8.
    Chang, G.L., Wu, X.G., Cheng, Y.X., Wang, Z.K., Liu, Q., Yang, X.Z., Lu, J.F., 2008. Effect of lipid nutrition on hepatosomatic index and biochemical compositon of juvenile Eriocheir sinensis. Oceanolgia et limnologia sinica. 39 (3), 276-283. (Pressed in China) Cheng, W., Liu, C.H., Hsu, J.P., Chen, J.C., 2002. Effect of hypoxia on the immune response of giant freshwater prawn Macrobrachium rosenbergii and its susceptibility to pathogen Enterococcus. Fish & Shellfish Immunology 13: 351-365.
    Cheng, W., Liu, C.H., Kuo, C.M., 2003. Effects of dissolved oxygen on hemolymph parameters of freshwater giant prawn, Macrobrachium rosenbergii (de Man). Aquaculture 220:843-856.
    Cheng, Y.X., Wu, X.G., Yang, X.Z., Hines, A., 2008. Current trends in hatchery techniques and stock enhancement for Chinese mitten crab Eriocheir japonica sinensis. Rev. Fish. Sci. 16, 377-386.
    Chen, J.H., Mai, K.S., Ma, H.M., Wang, X. J., Deng, D., Liu, X.W., Xu, W.,Liufu, Z.G., Zhang, W.B., Tan, B.P., Ai, Q.H., 2007. Effects of dissolved oxygen on survival and immune responses of scallop (Chlamys farreri Jones et Preston). Fish Shellfish Immunol 22, 272-281.
    Chim, L., Lemaire, P., Delaporte, M., Le Moullac, G., Galois, R., M Martin, J.L., 2001. Could a diet enriched with n-3 highly unsaturated fatty acids be considered a promising way to enhance the immune defences and the resistance of Penaeid prawns to environmental stress? Aquaculture Research 32(2), 91-94.
    Coutteau, P., Sorgeloos, P., 1995. Intercalibration exercise on the qualitative and quantitative analysis of fatty acids in Artemia and marine samples. ICES Cooperative Research Reports 211, 30 pp.
    DeFur, P.L., Mangum, C.P., Reese, J.E., 1990. Respiratory responses of the blue crab Callinectes sapidus to long-term hypoxia. Biol.Bull 178, 46-54.
    Ebert, T.A., 2001. Growth and survival of post-settlement sea urchins. In: Lawrence, J.M. (Ed.), Edible SeaUrchins: Biologyand Ecology. Elsevier Science,Amsterdam, pp. 79-102.
    Folch, J., M. Lees, et al. (1957). A simple method for the isolation and purification of total lipidsfrom animal tissues. J. biol. Chem 226 (1), 497-509.
    Glencross, B.D., 2009. Exploring the nutritional demand for essential fatty acids by aquaculture species. Review in Aquaculture 1, 72-124.
    Goodman, L.R., Campbell, J.G., 2007. Lethal levels of hypoxia for gulf coast estuarine animals. Mar Biol 152, 37-42.
    Hagerman, L., 1986. Haemocyanin concentration in the shrimp Crangon crangon (L.) after exposure to moderate hypoxia. Comp. Biochem. Physiol. 85A, 721-724.
    Hagerman, L., Sondergaard, T., Weile, K., Hosie, P., Uglow, F., 1990. Aspects of blood physiology and ammonia excretion in Nephrops norvegicus under hypoxia. Comp. Biochem. Physiol. 97A, 51-55.
    Hamre, K., Harboe, T., 2008. Critical levels of essential fatty acids for normal pigmentation in Atlantic halibut (Hipploglossus hippoglossus) larvae. Aquaculture 277, 101-108.
    Harel, M., Lund, E., Gavasso, S., Herbert, R., Place, A.R., 2000. Modulation of arachidonate and docosahexaenoate in Morone chryops larval tissues and the effect on growth and survival. Lipids 35, 1269-80.
    Hwang, D., 1992. Dietary fatty acids and eicosanoids. In: Chow, C.K. (Ed.), Fatty Acids in Foods and Their Health Implications. Marcel Dekker, New York, NY, pp. 545-558.
    Hong, M.L., Chen, L.Q., Qin, J.G., Sun, X.J., Li, E., Gu, S.Z., Yu, N., 2009. Acute tolerance and metabolic responses of Chinese mitten crab (Eriocheir sinensis) juveniles to ambient nitrite. Comparative Biochemistry and Physiology Part C 149, 419-426.
    Hurtado, M.A., Racotta, I.S., Civera, R., Ibarra, L., Hernández-Rodríguez, M., Palacios, E., 2007. Effect of hypo- and hypersaline conditions on osmolality and Na+/K+-ATPase activity in juvenile shrimp (Litopenaeus vannamei) fed low- and high-HUFA diets. Comparative Biochemistry and Physiology Part A 147, 703-710.
    Hurtado, M.A., Reza, M., Ibarra, A.M., Wille, M., Sorgeloos, P., Soudant, P., Palacios, E., 2009. Arachidonic acid (20:4n-6) effect on reproduction, immunology, and prostaglandin E2 levels in Crassostrea corteziensis (Hertlein, 1951). Aquaculture 294, 300-305.
    Izquierdo, M.S., Socorro, J., Arantzamendi, L., Hernandez-Cruz, C.M., 2000. Recent advances in lipid nutrition in fish larvae. Fish Physiol Biochem 22, 97-107.
    Izquierdo, M.S., 2005. Essential fatty acid requirements in Mediterranean fish species. Opt Cah Mediterr 63, 91-102.
    Jiang, L.X., Pan, L.Q., Fang, B., 2005. Effect of dissolved oxygen on immune parameters of the white shrimp Litopenaeus vannamei. Fish and Shellfish Immunology 18:185-188.
    Jin, Z.W., Zheng, Z.M., Wu, S.J., You, E.M., Hu, A.K., 2010. Preliminary study on improvement of pond water quality by bottom aeration. South China Fisheries Science 6(6), 20-25. (Pressed in China)
    Johnson, B.A., Bonaventura, C., Bonaventura, J. 1984. Allosteric modulation of Callinectes sapidushemocyanin by binging of L-Lactate. Biochemistry 23, 872-878.
    Koven, W., Anholt, R.V., Lutzky, S., Atia, I.B., Nixon, O., Ron, B., Tandler, A., 2003. The effect of dietary arachidonic acid on growth, survival, and cortisol levels in different-age gilthead seabream larvae (Sparus auratus) exposed to handling or daily salinity change. Aquaculture 228, 307-320.
    Lallier, F., Truchot, J.P., 1989. Hemolymph oxygen transport during environmental hypoxia in the shore crab, Carcinus maenas. Respiration Physiology. 77 (3), 323-336.
    Li, C.C., Chen, J.C., 2008. The immune response of white shrimp Litopenaeus vannamei and its susceptibility to Vibrio alginolyticus under low and high pH stress. Fish and Shellfish Immunology 25, 701-709.
    Mangum, C.P., 1997. Adaptation of the oxygen transport system to hypoxia in the blue crab, Callinectes sapidus. Am Zool 37, 604-611.
    Marsh, A.G., Watts, S.A., 2001. Energy metabolism and gonad development. In: Lawrence, J.M. (Ed.), Edible Sea Urchins: Biology and Ecology, vol. 32. Elsevier, Amsterdam, pp. 27-42.
    McKenzie, D.J., Lund, I., Pedersen, P.B., 2008. Essential fatty acids influence metabolic rate and tolerance of hypoxia in Dover sole (Solea solea) larvae and juveniles. Mar Biol 154, 1041-1051.
    McKenzie, D.J., Piraccini, G., Papini, N., Galli, C., Bronzi, P., Bolis, C.G., Taylo,r E.W., 1997. Oxygen consumption and ventilatory reflex responses are influenced by dietary lipids in sturgeon. Fish Physiology and Biochemistry 16, 365-379.
    McKenzie, D.J., Piraccini, G., Piccolella, M., Steffensen, J.F., Bolis, C.L., Taylor, E.W., 2000. Effects of dietary fatty acid composition on metabolic rate and responses to hypoxia in the European eel (Anguilla anguilla). Fish Physiology and Biochemistry 22, 281-296.
    Menoyo, D., Diez, A., Lopez-Bote, C.J., Casado, S., Obach, A., Bautista, J.M., 2006. Dietary fat type affects lipid metabolism in Atlantic salmon (Salmo salar L.) and differentially regulates glucose transporter GLUT4 expression in muscle. Aquaculture 261, 294-304.
    Mercier, L., Racotta, I.S., Yepiz-plascencia, G., Muhlia-Almazán, Civera, R., Quiňones-Arreola M.F., Wille, M., Sorgeloos, P., Palacios, E., 2009. Effect of diets containing different levels of highly unsaturated fatty acids on physiological and immune responses in Pacific whiteleg shrimp litopenaeus vannamei (Boone) exposed to handing stress. Aquaculture Reseaech 40,1849-1863.
    Ocampo, L., Patinó, D., Ramírez, C., 2003. Effect of temperature on hemolymph lactate and glucose concentrations in spiny lobster Panulirus interruptus during progressive hypoxia. J Exp Mar Biol Ecol 296, 71-77.
    Paschke, K., Cumillaf, J.P., Loyola, S., Gebauer, P., Urbina, M.,Chimal, M.E., Pascual, C., Rosas, C., 2010. Effect of dissolved oxygen level on respiratory metabolism, nutritional physiology, and immune condition of southern king crab Lithodes santolla (Molina, 1782) (Decapoda, Lithodidae). Mar Biol 157:7-18Piomelli, D., 1993. Arachidonic acid in cell signaling. Curr. Opin. Cell Biol. 5, 274-280.
    Qiu, R.J., Cheng, Y.X., Huang, X.X., Wu, X.G., Tong, R., 2010. Effect of hypoxia on immunological, physiological response, and hepatopancreatic metabolism of juvenile Chinese mitten crab Eriocheir sinensis. Aquaculture International. 19, 283-299
    Rengan, M.D., Kuchel, L.J., Huang, S.S.Y, Higgs, D.A., Wang, J., Schulte, P.M., Brauner, C.J., 2010. The effect of dietary fish oil and poultry fat replacement with canola oil on swimming performance and metabolic response to hypoxia in stream type spring Chinook salmon parr. Aquaculture 308, 183-189.
    Rosas, C., Cooper, E.L., Pascual, C., Brito, R., Gelabert, R., Moreno, T., 2004. Indicators of physiological and immunological status of Litopenaeus setiferus wild population (Crustacea, Penaeidae). Marine Biology 145, 401-413.
    Sanna, M.T., Olianas, A., Castangnola, M., Sollai, L., Manconi, B., Salvadori, S., Giardina, B., Pellegrini, M., 2004. Oxygen-binding modulation of hemocyanin from the slipper lobster Scyllarides latus. Comparative Biochemistry and Physiology Part B 139, 261-268.
    Sargent, J., Bell, G., McEvoy, L., Tocher, D., Estevez, A., 1999. Recent developments in the essential fatty acid nutrition of fish. Aquaculture 177, 191-199.
    Sargent, J.R., Bell, J.G., Bell, M.V., Henderson, R.J., Tocher. D.R., 1993. The metabolism of phospholipids and polyunsaturated fatty acids in fish. In: Callou B, Vittelo P (eds) Coastal and Estuarine Studies–Aquaculture: Fundamental and Applied Research, pp. 103-124. American Geophysical Union, Washington.
    Sui, L., Wille, M., Cheng, Y., Sorgeloos, P., 2007. The effect of dietary n-3 HUFA levels and DHA/EPA ratios on growth, survival and osmotic stress tolerance of Chinese mitten crab Eriocheir sinensis larvae. Aquaculture 273, 139-150.
    Sui, L.Y., Wille, M., Cheng, Y.X., Wu, X.G., Sorgeloos, P., 2010. Larviculture techniques of Chinese mitten crab Eriocheir sinensis. Aquaculture. (Online)
    Tang, D.G., Chen, Y.Q., Honn, K.V., 1996. Arachidonate lipoxygenases as essential regulators of cell survival and apoptosis. Proc. Natl. Acad. Sci. U. S. A. 93, 5241-5246.
    Taylor, A.C., Spicer, J.I., 1987. Metabolic responses of prawns Palaemon elegans and P. serratus (Crustacea: Decapoda) to acute hypoxia and anoxia. Mar Biol 95, 521-530.
    Vizcaíno-Ochoa, V., Lazo, J.P., Barón-Sevilla, B., Drawbridge, M.A., 2010. The effect of dietary docosahexaenoic acid (DHA) on growth, survival and pigmentation of California halibut Paralichthys californicus larvae (Ayres, 1810). Aquaculture 302, 228-234.
    Wu, X.G., Cheng, Y.X., Sui, L.Y., Zeng, C.S., Southgate, P.C., Yang, X.Z., 2007. Effect of dietary supplementation of phospholipids and highly unsaturated fatty acids on reproductive performance and offspring quality of Chinese mittern crab, Eriocheir sinensis (H.Milne-Edwards), female broodstock. Aquaculture 273, 602-613.
    Wu, X.G., Cheng, Y.X., Zeng, C.S., Sui, L.Y., Southgate, P.C., 2009. Reproductive performance and offspring quality of Chinese mitten crab Eriocheir sinensis (H. Milne-Edwards) females fed anoptimized formulated diet and the razor clam Sinonovacula constricta. Aquaculture Research 40, 1335-1349.
    Xu, H.G., Ai, Q.H., Mai, K.S., Xu, W., Wang, J., Ma, H.M., Zhang, W.B., Wang, X.J., 2010. Effects of dietary arachidonic acid on growth performance, survival, immune response and tissue fatty acid composition of juvenile Japanese seabass, Lateolabrax japonicus. Aquaculture 307, 75-82.
    Zou, E., Du, N., Lai, W., 1996. The Effects of Severe Hypoxia on Lactate and Glucose Concentrations in the Blood of the Chinese Freshwater Crab Eriocheir sinensis (Crustacea: Decapoda). Comp Biochem Physiol 114A (2): 105-109.
    Chang, G.L., Wu, X.G., Cheng, Y.X., Wang, Z.K., Liu, Q., Yang, X.Z., Lu, J.F., 2008. Effect of lipid nutrition on hepatosomatic index and biochemical compositon of juvenile Eriocheir sinensis. Oceanolgia et limnologia sinica. 39 (3), 276-283. (Pressed in China)
    Cheng, W., Liu, C.H., Hsu, J.P. et al., 2002. Effect of hypoxia on the immune response of giant freshwater prawn Macrobrachium rosenbergii and its susceptibility to pathogen Enterococcus. Fish Shellfish Immunol 13:351–365
    Cheng, W., Liu CH, Kuo, C.M., 2003. Effecs of dissolved oxygen on hemolymph parameters of freshwater giant prawn, Macrobrachium rosenbergii(de Man). Aquaculture, 220,843-856
    Chim, L., Lemaire, P., Delaporte, M., Le Moullac, G., Galois, R., M Martin, J.L., 2001. Could a diet enriched with n-3 highly unsaturated fatty acids be considered a promising way to enhance theimmune defences and the resistance of Penaeid prawns to environmental stress? Aquaculture Research 32(2), 91-94.
    DeFur, P.L., Mangum, C.P., Reese, J.E., 1990. Respiratory responses of the blue crab Callinectes sapidus to long-term hypoxia. Biol.Bull 178, 46-54.
    Hagerman, L., Sondergaard, T.,Weile, K., Hosie, D., Uglow, R.F., 1990. Aspects of blood physiology and ammonia excretion in Nephrops norvegicus under hypoxia. Comparative Biochemistry and Physiology 97A, 51-55.
    Hurtado, M.A., Reza, M., Ibarra, A.M., Wille, M., Sorgeloos, P., Soudant, P., Palacios, E., 2009. Arachidonic acid (20:4n-6) effect on reproduction, immunology, and prostaglandin E2 levels in Crassostrea corteziensis (Hertlein, 1951). Aquaculture 294, 300-305.
    Johansson, M.W., Keyser, P., Sritunyalucksana, K., et al., 2000. Crustacean haemocytes and haematopoiesis [J]. Aquaculture, 191 (1-3) : 45-52.
    Lallier, F., Truchot, J.P., 1989. Hemolymph oxygen transport during environmental hypoxia in the shore crab, Carcinus maenas. Respiration Physiology 77 (3), 323-336.
    Martin, T.G., Cavalli, R.O., Martino, R.C., Rezende, C.E.M., et al., 2006. Larviculture output and stress tolerance of Farfatepenaeus paulensis postlarvae fed Artemia containing different fatty acids. Aquculture, 252:525-533.
    Mercier, L., Racotta, I.S., Yepiz-plascencia, G., Muhlia-Almazán, Civera, R., Quiňones-Arreola M.F., Wille, M., Sorgeloos, P., Palacios, E., 2009. Effect of diets containing different levels of highly unsaturated fatty acids on physiological and immune responses in Pacific whiteleg shrimp litopenaeus vannamei (Boone) exposed to handing stress. Aquaculture Reseaech 40,1849-1863.
    McKenzie, D.J., Lund, I., Pedersen, P.B., 2008. Essential fatty acids influence metabolic rate and tolerance of hypoxia in Dover sole (Solea solea) larvae and juveniles. Mar Biol 154, 1041-1051.
    McKenzie, D.J., Piraccini, G., Papini, N., Galli, C., Bronzi, P., Bolis, C.G., Taylo,r E.W., 1997. Oxygen consumption and ventilatory reflex responses are influenced by dietary lipids in sturgeon. Fish Physiology and Biochemistry 16, 365-379.
    McKenzie, D.J., Piraccini, G., Piccolella, M., Steffensen, J.F., Bolis, C.L., Taylor, E.W., 2000. Effects of dietary fatty acid composition on metabolic rate and responses to hypoxia in the European eel (Anguilla anguilla). Fish Physiology and Biochemistry 22, 281-296.
    Mikulski, C.M., Burnett, L.E., Burnett, K.G., 2000. The effects of hypercapnic hypoxia on the survival of shrimp challenged with Vibrio parahaemolyticus. J Shellfish Res 19:301–311
    Mercier, L., Racotta, I.S., Yepiz-plascencia, G., Muhlia-Almazán, Civera, R., Quiňones-Arreola M.F., Wille, M., Sorgeloos, P., Palacios, E., 2009. Effect of diets containing different levels of highly unsaturated fatty acids on physiological and immune responses in Pacific whiteleg shrimp litopenaeus vannamei (Boone) exposed to handing stress. Aquaculture Reseaech 40,1849-1863.
    Mercier, L., Racotta, I.S., Yepiz-plascencia, G., Muhlia-Almazán, Civera, R., Quiňones-Arreola M.F., Wille, M., Sorgeloos, P., Palacios, E., 2009. Effect of diets containing different levels of highly unsaturated fatty acids on physiological and immune responses in Pacific whiteleg shrimplitopenaeus vannamei (Boone) exposed to handing stress. Aquaculture Reseaech 40,1849-1863.
    Nonwachai, T., Purivirojkul, W., Limsuwan, C., Chuchird, N., Velasco, M., Dhar, A.K., 2010. Growth, nonspecific immune characteristics, and survival upon challenge with Vibrio harveyi in Pacific white shrimp (Litopenaeus vannamei) raised on diets containing algal meal. Aquaculture, 29:298-304.
    Paschke, K., Cumillaf, J.P., Loyola, S., Gebauer, P., Urbina, M.,Chimal, M.E., Pascual, C., Rosas, C., 2010. Effect of dissolved oxygen level on respiratory metabolism, nutritional physiology, and immune condition of southern king crab Lithodes santolla (Molina, 1782) (Decapoda, Lithodidae). Mar Biol 157:7-18.
    Qiu, R.J., Cheng, Y.X., Huang, X.X., Wu, X.G., Tong, R., 2010. Effect of hypoxia on immunological, physiological response, and hepatopancreatic metabolism of juvenile Chinese mitten crab Eriocheir sinensis. Aquaculture International. 19, 283-299.
    Racotta, I.S., Palacios, E., Mendez, L., 2002. Metabolic responses to short and long-term exposure to hypoxia in white shrimp (Penaeus vannamei). Marine Freshwater Behaviour Physiology 35, 269–275.
    Sui, L., Wille, M., Cheng, Y., Sorgeloos, P., 2007. The effect of dietary n-3 HUFA levels and DHA/EPA ratios on growth, survival and osmotic stress tolerance of Chinese mitten crab Eriocheir sinensis larvae. Aquaculture 273, 139-150.
    Truchot, J.P., 1980. Lactate increases the oxygen affinity of crab haemocyanin. J exp Zool 214:205-208
    Wall, R., Ross, R.P., Fltzgerald, G.F., Stanton, C., 2010. Fatty acids from fish: the anti-inflammatory potential of long-chain omega-3 fatty acids. Nutrition Reviews, 68(5):280-289.
    Wu, F.C., Ting, Y.Y., Chen, H.Y., 2003. Dietary docosahexaenoic acid is more optimal than eicosapentaenoic acid affecting the level of cellular defence responses of the juvenile grouper Epinephelus Malabaricus [J]. Fish & Shellfish Immunology, 14: 223-238.
    Wu, X., Cheng, Y., Sui, L., Zeng C., Southgate, P., 2007. Effect of dietary supplementation of phospholipids and highly unsaturated fatty acid on reproductive performance and offspring quality of Chinese mitten crab, Eriocheir sinensis (H. Milne-Edwards), female broodstock. Aquaculture, 273:602-613.
    Xu, H.G., Ai, Q.H., Mai, K.S., Xu, W., Wang, J., Ma, H.M., Zhang, W.B., Wang, X.J., 2010. Effects of dietary arachidonic acid on growth performance, survival, immune response and tissue fatty acid composition of juvenile Japanese seabass, Lateolabrax japonicus. Aquaculture 307, 75-82.
    Zou, E., Du, N., Lai, W., 1996. The Effects of Severe Hypoxia on Lactate and Glucose Concentrations in the Blood of the Chinese Freshwater Crab Eriocheir sinensis (Crustacea: Decapoda). Comp Biochem Physiol 114A (2): 105-109.
    成永旭,严生良,王武,等.饵料中磷脂和多不饱和脂肪酸对中华绒螯蟹大眼幼体育成仔蟹的成活率和生长的影响.水产学报, 1998, 22: 9-15.
    黄旭雄,周洪琪.甲壳动物免疫机能的衡量指标及科学评价.科学视野, 2007, 31(7): 90-96.
    潘鲁青,金彩霞.甲壳动物血蓝蛋白研究进展.水产学报, 2008, 32(3): 484-491.
    吴旭干,成永旭,沈兹,等.饲料中磷脂和高度不饱和脂肪酸对中华绒螯蟹育肥和卵巢发育的影响.上海师范大学学报(自然科学版), 2004, 33: 33-41.
    吴旭干,成永旭,南天佐,等.亲本营养强化对中华绒螯蟹生殖性能和苗种质量的影响.水产学报, 2007, 31(6): 842-850.
    章跃陵,卓奕明,朱永飞,等.凡纳滨对虾人工感染细菌后肝胰脏中主要变化蛋白的研究[J]. 水产科学, 2005, 24(6): 19-23.
    AOAC, 1984. In: Williams, S. (Ed.), Official Methods of Analysis of the Association of Official Analytical Chemists, 14th edn. Arlington, VA, USA. 114 pp.
    Baden, S.P., Pihl, L., Rosenberg, R., 1990. Efects of oxygen depletion on the ecology, blood physiology and fishery of the Norway lobster Nephrops norvegicus [J]. Mar Ecol Prog Set, 67: 141-155.
    Brouwer, M., Brown-Peterson, N.J., Laikin, P., 2007. Molecular and whole animal responses of grass shrimp, Palaemonetes pugio,exposed to chronic hypoxial [J]. J Exp Mar Bio Ecol, 341:16-31.
    Brown-Peterson, N.J., Manning, C.S., Patel, V., Denslow, N.D., Brouwer, M., 2008. Effects of cyclic hypoxia on gene expression and reproduction in a grass shrimp, Palaemonetes pugi. Biol
    Bull 214, 6-16. Chang, G.L., Wu, X.G., Cheng, Y.X., Wang, Z.K., Liu, Q., Yang, X.Z., Lu, J.F., 2008. Effect of lipid nutrition on hepatosomatic index and biochemical compositon of juvenile Eriocheir sinensis. Oceanolgia et limnologia sinica. 39 (3), 276-283. (Pressed in China)
    Cheng, Y.X., Wu, X.G., Yang, X.Z., Hines, A., 2008. Current trends in hatchery techniques and stock enhancement for Chinese mitten crab Eriocheir japonica sinensis. Rev. Fish. Sci. 16, 377-386.
    Cheng, W., Liu, C.H., Kuo, C.M., 2003. Effects of dissolved oxygen on hemolymph parameters of freshwater giant prawn, Macrobrachium rosenbergii (de Man). Aquaculture 220:843-856.
    Chen, J.H., Mai, K.S., Ma, H.M., Wang, X. J., Deng, D., Liu, X.W., Xu, W.,Liufu, Z.G., Zhang, W.B., Tan, B.P., Ai, Q.H., 2007. Effects of dissolved oxygen on survival and immune responses of scallop (Chlamys farreri Jones et Preston). Fish Shellfish Immunol 22, 272-281.
    Chim, L., Lemaire, P., Delaporte, M., Le Moullac, G., Galois, R., M Martin, J.L., 2001. Could a diet enriched with n-3 highly unsaturated fatty acids be considered a promising way to enhance the immune defences and the resistance of Penaeid prawns to environmental stress? Aquaculture Research 32(2), 91-94.
    Coutteau, P., Sorgeloos, P., 1995. Intercalibration exercise on the qualitative and quantitative analysis of fatty acids in Artemia and marine samples. ICES Cooperative Research Reports 211, 30 pp.
    Folch, J., M. Lees, et al., 1957. A simple method for the isolation and purification of total lipids from animal tissues. J. biol. Chem 226 (1), 497-509.
    Goodman, L.R., Campbell, J.G., 2007. Lethal levels of hypoxia for gulf coast estuarine animals. Mar Biol 152, 37-42.
    Hurtado, M.A., Racotta, I.S., Civera, R., Ibarra, L., Hernández-Rodríguez, M., Palacios, E., 2007. Effect of hypo- and hypersaline conditions on osmolality and Na+/K+-ATPase activity in juvenile shrimp (Litopenaeus vannamei) fed low- and high-HUFA diets. Comparative Biochemistry and Physiology Part A 147, 703-710.
    Hurtado, M.A., Reza, M., Ibarra, A.M., Wille, M., Sorgeloos, P., Soudant, P., Palacios, E., 2009. Arachidonic acid (20:4n-6) effect on reproduction, immunology, and prostaglandin E2 levels in Crassostrea corteziensis (Hertlein, 1951). Aquaculture 294, 300-305.
    Hu, Y., Tan, B.P., Mai, K.S., Ai, Q.H., Zhang, L., Zheng, S.X., 2010. Effects of dietary menhaden oil, soybean oil and soybean lecithin oil at different ratios on growth, body composition and blood chemistry of juvenile Litopenaeus vannamei. Aquacult Int. DOI 10.1007/s10499-010-9361-4
    Jin, Z.W., Zheng, Z.M., Wu, S.J., You, E.M., Hu, A.K., 2010. Preliminary study on improvement of pond water quality by bottom aeration. South China Fisheries Science 6(6), 20-25. (Pressed in China)
    Johnson, B.A., Bonaventura, C., Bonaventura, J. 1984. Allosteric modulation of Callinectes sapidus hemocyanin by binging of L-Lactate. Biochemistry 23, 872-878.
    Kenari, A.A., Mozanzadeh, M.T., Pourgholam, R., 2010. Effects of total fish oil replacement to vegetable oils at two dietary lipid levels on the growth, body composition, haemao-immunological and serum biochemical parameters in caspian brown trout (Salmo trutta caspius Kessler, 1877). Aquaculture Research, 1-14.
    Lallier, F., Truchot, J.P., 1989. Hemolymph oxygen transport during environmental hypoxia in the shore crab, Carcinus maenas. Respiration Physiology 77 (3), 323-336.
    Liu, K.K.M., Barrows, F.T., Hardy, R.W., Dong, F.M., 2004. Body composition, growth performance, and product quality of rainbow trout (Oncorhynchus mykiss) fed diets containing poultry fat, soybean/corn lecithin, or menhaden oil. Aquaculture 238:309–328
    Mangum, C.P., 1997. Adaptation of the oxygen transport system to hypoxia in the blue crab, Callinectes sapidus. Am Zool 37, 604-611.
    Matthew, D.R., Louise, J.K., Susie, S.Y., Huang, D.A., Higgs, J.W., Patricia, M.S., Colin, J.B., 2010. The effect of dietary fish oil and poultry fat replacement with canola oil on swimming performance and metabolic response to hypoxia in stream type spring Chinook salmon parr. Aquaculture 308, 183–189
    Mercier, L., Racotta, I.S., Yepiz-plascencia, G., Muhlia-Almazán, Civera, R., Quiňones-Arreola M.F., Wille, M., Sorgeloos, P., Palacios, E., 2009. Effect of diets containing different levels of highly unsaturated fatty acids on physiological and immune responses in Pacific whiteleg shrimp litopenaeus vannamei (Boone) exposed to handing stress. Aquaculture Reseaech 40,1849-1863.
    Montero, D., Robaina, L., Caballero, M.J., Gine’s, R., 2005. Growth, feed utilization and flesh quality of European sea bass (Dicentrarchus labrax) fed diets containing vegetable oils: A time-course study on the effect of a re-feeding period with a 100% fish oil diet. Aquaculture 248:121–134
    Monteroa, D., Grassob, V., Izquierdoa, M.S., Gangaa, R., Realb, F., Tortc, L., Caballeroa, M.J., Acostab, F., 2007. Total substitution of fish oil by vegetable oils in gilthead sea bream (Sparus aurata) diets: Effects on hepatic Mx expression and some immune parameters. Fish & Shellfish Immunology, 24 (2):147-155.
    Ng, W.K., Tee, M.C., Bey, P.L., 2000. Evaluation of crude palm oil and refined palm olein as dietary lipids in pelleted feeds for a tropical bagrid catfish Mystus nemurus (Cuvier&Valenciennes) [J]. Aquacult Res, 31: 337-347.
    Paschke, K., Cumillaf, J.P., Loyola, S., Gebauer, P., Urbina, M.,Chimal, M.E., Pascual, C., Rosas, C., 2010. Effect of dissolved oxygen level on respiratory metabolism, nutritional physiology, and immune condition of southern king crab Lithodes santolla (Molina, 1782) (Decapoda, Lithodidae). Mar Biol 157:7-18
    Qiu, R.J., Cheng, Y.X., Huang, X.X., Wu, X.G., Tong, R., 2010. Effect of hypoxia on immunological, physiological response, and hepatopancreatic metabolism of juvenile Chinese mitten crabEriocheir sinensis. Aquaculture International. 19, 283-299
    Richard, N., Kaushik, S., Hrroquet, L., et a1., 2006. Replacing dietary fish oil by vegetable oils has little efect on lipogenesis, lipid transport and tissue hpid uptakein rainbowtrout (Oncorhynchusmykiss) [J]. Br J Nutr, 96(2): 299-309.
    Wu, X.G., Cheng, Y.X., Sui, L.Y., Zeng, C.S., Southgate, P.C., Yang, X.Z., 2007. Effect of dietary supplementation of phospholipids and highly unsaturated fatty acids on reproductive performance and offspring quality of Chinese mittern crab, Eriocheir sinensis (H.Milne-Edwards), female broodstock. Aquaculture 273, 602-613.
    Xu, H.G., Ai, Q.H., Mai, K.S., Xu, W., Wang, J., Ma, H.M., Zhang, W.B., Wang, X.J., 2010. Effects of dietary arachidonic acid on growth performance, survival, immune response and tissue fatty acid composition of juvenile Japanese seabass, Lateolabrax japonicus. Aquaculture 307, 75-82.
    Zou, E., Du, N., Lai, W., 1996. The Effects of Severe Hypoxia on Lactate and Glucose Concentrations in the Blood of the Chinese Freshwater Crab Eriocheir sinensis (Crustacea: Decapoda). Comp Biochem Physiol 114A (2): 105-109.
    陈国福,黄倢,宋晓玲.对虾免疫机能研究概括.水产学报, 2004, 28 (2): 209-215.
    潘鲁青,金彩霞.甲壳动物血蓝蛋白研究进展.水产学报, 2008, 32(3): 484-491.
    刘玮,戴年华,任本根,等.不同脂肪源饲料对团头鲂稚鱼生长的影响.水产学报, 1997, 21(12): 44-48.
    徐奇友,许红,李婵,杨萍,王常安.用豆油替代鱼油对虹鳟生长、非特异性免疫和组织酶活性的影响.大连水产学院学报, 2009, 24(2): 104-108.
    赵红霞,张艳秋,黄磊,等.虾类的免疫系统与免疫防治.中国兽医杂志, 2003, 39 (1): 42-44.
    章跃陵,卓奕明,朱永飞,等.凡纳滨对虾人工感染细菌后肝胰脏中主要变化蛋白的研究.水产科学, 2005, 24(6): 19-23.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700