Behavioral and physiological responses of Sinonovacula contricta to different low-salt domestication patterns
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S968.31

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    Abstract:

    In order to study the optimal low salt acclimation method of Sinonovacula contricta, the low salt semi-lethal salinity was set by 5 gradients of salinity 0, 1, 2, 3 and 5, and the low salt semi-lethal salinity was 2.005 at 96 h. With this salinity as the target salinity, three different domestication methods A, B and C were set (Group A: equal-velocity domestication; Group B: alternate domestication; Group C: gradient acclimation). The S. constricta were acclimated with low salinity from 16 to 2, and then acclimated to the target salinity for 4 days. The survival rate and submerged sludge rate of three acclimation methods were recorded. Oxygen consumption rate and ammonia emission rate of each group were detected. Superoxide dismutase (SOD) activity and Malondialdehyde (MDA) content were determined. The results showed that the survival rate (88%) and submerged mud rate (90%) of S. constricta in group C were significantly higher than those in groups A and B when acclimated to salinity 2. The oxygen consumption rate and ammonia emission rate of group C were significantly higher than those of groups A and B. Superoxide dismutase (SOD) activity reached its peak at salinity 4, and group C was significantly higher than groups A and B. Malondialdehyde (MDA) content reached its peak when acclimated to salinity 2, and was significantly lower in group C than in groups A and B. In conclusion, the low salt acclimation method of gradient acclimation (C) group is more beneficial to low salt culture of S. constricta. The results of this study provide an important reference for the development of Marine shellfish aquaculture species in China's inland low-salt waters.

    Reference
    [1] ZHANG Y. Status investigation and countermeasure of aquaculture in saline-alkali land restoration-taking Jingtai county of Gansu province as an example[D]. Lanzhou:Lanzhou University, 2021.张颖.水产养殖治理盐碱地现状调查及对策研究--以甘肃省景泰县为例[D].兰州:兰州大学, 2021.
    [2] XU W, GENG L W, JIANG H F, et al. A review of development and utilization of fish culture in saline-alkaline water[J]. Chinese Journal of Fisheries, 2015, 28(4):44-47.徐伟,耿龙武,姜海峰,等.浅析盐碱水域的鱼类养殖开发利用[J].水产学杂志, 2015, 28(4):44-47.
    [3] LU G Z, ME Z L, LAI Q F, et al. Growth performance, blood parameters, and texture characteristics of juvenile largemouth bass (Micropterus salmoides) exposed to highly saline-alkaline water[J]. Progress in Fishery Sciences, 2022, 43(4):1-11.逯冠政,么宗利,来琦芳,等.高盐碱环境下大口黑鲈幼鱼生长性能、血液生理指标与质构特征研究[J].渔业科学进展, 2022, 43(4):1-11.
    [4] HANG J X, ZHAO B R, ZHANG C T, et al. Study on indoor wintering technology in northern region of Scylla paramamosain[J]. Scientific Fish Farming, 2021, 37(3):61-62.黄经献,赵炳然,张传涛,等.拟穴青蟹北方地区室内越冬技术研究[J].科学养鱼, 2021, 37(3):61-62.
    [5] ZHAO Y J, FNEG W Y, WU T, et al. Experiment on culture of Penaeus vanname at different densities in intensive ponds in saline-alkali waters of the Yellow River[J]. Scientific Fish Farming, 2023(2):35-36.赵一杰,冯伟业,吴桃,等.黄河盐碱水域精养池塘不同密度南美白对虾养殖试验[J].科学养鱼, 2023(2):35-36.
    [6] XU W L, WANG H Q, LI Y H. Distribution and aquaculture application of saline alkali water at home and abroad[J]. China Fisheries, 2021, 64(7):50-53.徐文龙,汪惠庆,李月红.国内外盐碱水域分布及水产养殖应用[J].中国水产, 2021, 64(7):50-53.
    [7] QIN Z, LI J T, LI M D, et al. Effects of saline-alkaline water environment on DNA methylation of Exopalaemon carinicauda[J]. Progress in Fishery Sciences, 2022, 43(4):33-50.秦桢,李吉涛,李明栋,等.盐碱水环境对脊尾白虾基因组DNA甲基化的影响[J].渔业科学进展, 2022, 43(4):33-50.
    [8] WANG Y, HU W B, LI J X, et al. Effects of acute salinity stress on gill structure and four enzyme activities in Saxidomus purpurata[J]. Journal of Agricultural Science and Technology, 2016, 18(5):178-186.王怡,胡婉彬,李家祥,等.急性盐度胁迫对紫石房蛤(Saxidomus purpurata)鳃组织结构及4种酶活性的影响[J].中国农业科技导报, 2016, 18(5):178-186.
    [9] XU X, HE L, LIN Z H, et al. Effects of salinity stress on V-ATPase H expression, enzyme activity and osmotic pressure in Sinonovacula constricta[J]. Chinese Journal of Zoology, 2020, 55(5):606-613.徐娴,何琳,林志华,等.盐度胁迫下缢蛏渗透压变化及V-ATPase H基因的表达分析[J].动物学杂志, 2020, 55(5):606-613.
    [10] BARRETT N J, THYRRING J, HARPER E M, et al. Molecular responses to thermal and osmotic stress in arctic intertidal mussels (Mytilus edulis):the limits of resilience[J]. Genes, 2022, 13(1):155.
    [11] SEKIGUCHI Y, BENJAMIN C L, LEE E C, et al. Effects of heat acclimation following heat acclimatization on whole body heat exchange in trained endurance athletes[J]. International Journal of Environmental Research and Public Health, 2022, 19(11):6412.
    [12] REN S J, PRENTIS P, MATHER P B, et al. Genetic parameters for growth and survival traits in a base population of Pacific white shrimp (Litopenaeus vannamei) developed from domesticated strains in China[J]. Aquaculture, 2020, 523:735148.
    [13] FIELD A L. Becoming Salmon:aquaculture and the domestication of a fish. Marianne Elisabeth lien. Berkeley, CA:University of California Press, 2015[J]. Anthropology of Work Review, 2016, 37(2):113-114.
    [14] LI H T, ZHAO Z G, XU W, et al. Effects of salinity acclimation on physiology and biochemistry and antioxidant immunity of juvenile Luciobarbus capito[J/OL]. Journal of Fisheries of China:1-11[2024-04-22]. http://kns.cnki.net/kcms/detail/31.1283.S.20230209.1504.002.html.李海涛,赵志刚,徐伟,等.盐度驯化对大鳞鲃幼鱼生理生化和抗氧化免疫的影响[J/OL].水产学报:1-11[2024-04-22]. http://kns.cnki.net/kcms/detail/31.1283.S.20230209.1504.002.html.
    [15] ABRORI M, SOEGIANTO A, Survival WINARNI D., osmoregulatory and hemocyte changes in Litopenaeus vannamei postlarvae acclimated to different intervals of salinity reduction[J]. Aquaculture Reports, 2022, 25:101222.
    [16] XIONG Y H, HUANG M, ZHOU Y G, et al. Growth, osmoregulation and energy budget of rainbow and steelhead trout under different salinity acclimation methods and the best transition size of steelhead trout[J]. Aquaculture Research, 2020, 51(6):2369-2378.
    [17] MCGRAW W J, SCARPA J. Mortality of freshwater-acclimated Litopenaeus vannamei associated with acclimation rate, habituation period, and ionic challenge[J]. Aquaculture, 2004, 236(1/4):285-296.
    [18] CAI H R. Summarization of freshwater culture techniques for Penaeus australis[J]. Nongcun Nongyenongmin, 2020, 35(7):60-61.蔡海瑞.南美白对虾淡水养殖技术总结[J].农村·农业·农民, 2020, 35(7B):60-61.
    [19] ZHOU C T. Techniques of freshwater culture for Penaeus australis[J]. The Farmers Consultant, 2022, 40(4):159-161.周翠婷.南美白对虾淡水养殖技术[J].农家参谋, 2022, 40(4):159-161.
    [20] LI H T, XU W, ZHAO Z G, et al. Effects of alkalinity acclimation on blood physiology and biochemistry and liver antioxidant system of juvenile Luciobarbus capito[J]. Progress in Fishery Sciences, 2022, 43(4):12-21.李海涛,徐伟,赵志刚,等.碱度驯化对大鳞鲃幼鱼血液生理生化及肝脏抗氧化系统的影响[J].渔业科学进展, 2022, 43(4):12-21.
    [21] CHEN H Q, HU Q, KONG L F, et al. The effects of low-salt domestication on the growth and development of juvenile hybrid sturgeon (Acipenser baerii×A. schrenckii)[J]. Freshwater Fisheries, 2023, 53(2):50-60.陈会琴,胡青,孔令富,等.低盐驯化对西杂鲟幼鱼生长发育的影响[J].淡水渔业, 2023, 53(2):50-60.
    [22] DING H B, LI H Y, CHEN Y H, et al. Effects of high salinity on growth and survival, Na+/K+-ATPase activity and energy metabolism related indexes of Sinonovacula constricta[J]. Journal of Shanghai Ocean University, 2022, 31(4):831-838.丁红兵,李浩宇,陈义华,等.高盐对缢蛏生长存活、Na+/K+-ATPase活性及能量代谢相关指标的影响[J].上海海洋大学学报, 2022, 31(4):831-838.
    [23] PENG M X. Study on tolerance of Chinese razor clam (Sinonovacula constricta) to important water environmental factors in inland waters[D]. Shanghai:Shanghai Ocean University, 2020.彭茂潇.缢蛏对内陆水域重要水环境因子耐受性研究[D].上海:上海海洋大学, 2020.
    [24] RUAN W B, DONG Y H, LIN Z H, et al. Molecular characterization of aquaporins genes from the razor clam Sinonovacula constricta and their potential role in salinity tolerance[J]. Fishes, 2022, 7(2):69.
    [25] ZHANG G M, WU B, YANG A G, et al. Influence of low salinity challenge on survival and enzyme activities in Scapharca broughtonii[J]. Journal of Ludong University (Natural Science Edition), 2017, 33(2):159-163.张广明,吴彪,杨爱国,等.盐度胁迫对魁蚶耐受性及体内酶活性的影响[J].鲁东大学学报(自然科学版), 2017, 33(2):159-163.
    [26] ZHANG K X, CAO C T, LIU Z G, et al. Study on temperature and salinity tolerance of tapes dorsatus juveniles[J]. Haiyang Xuebao, 2022, 44(4):57-64.张柯馨,曹楚畑,刘志刚,等.钝缀锦蛤(Tapes dorsatus)稚贝的温度和盐度耐受性研究[J].海洋学报, 2022, 44(4):57-64.
    [27] ZHAN J Q, CAI T Z, GUO X R, et al. Effects of temperature and salinity on growth and survival of triploid Crassostrea angulata juveniles[J]. Oceanologia et Limnologia Sinica, 2023, 54(4):1158-1164.展建强,蔡廷柱,郭希瑞,等.温度和盐度对三倍体葡萄牙牡蛎(Crassostrea angulata)稚贝生长和存活的影响[J].海洋与湖沼, 2023, 54(4):1158-1164.
    [28] WANG N L, YANG J Q, ZHANG H K, et al. Differential responses to low salinity on gene expression, physiological and biochemical indexes between the golden and brown noble scallops Chlamys nobilis[J]. Aquaculture Research, 2020, 51(1):316-325.
    [29] SHUI C, ZHANG H M, SHI Y H, et al. Effects of salinity on growth, osmophysiology and body composition of juvenile soiuy Liza haematocheila[J]. Journal of Dalian Ocean University, 2015, 30(6):634-640.税春,张海明,施永海,等.盐度对梭鱼幼鱼生长、渗透生理和体成分组成的影响[J].大连海洋大学学报, 2015, 30(6):634-640.
    [30] WANG X X, DU X X, YANG D, et al. Effects of different hyposaline acclimation methods on survival, physiological metabolism and antioxidant levels of Sinonovacula constricta[J]. Journal of Shanghai Ocean University, 2023, 32(4):708-715.王新星,杜鑫鑫,杨栋,等.不同低盐驯化方式对缢蛏生存、生理代谢及抗氧化水平的影响[J].上海海洋大学学报, 2023, 32(4):708-715.
    [31] CAI X Y, ZHANG X M, TIAN L, et al. Effect of salinity stress on hemolymph osmolality and gill Na+/K+-ATPase activity of juvenile ark shell (Anadara broughtonii)[J]. South China Fisheries Science, 2015, 11(2):12-19.蔡星媛,张秀梅,田璐,等.盐度胁迫对魁蚶稚贝血淋巴渗透压及鳃Na+/K+-ATP酶活力的影响[J].南方水产科学, 2015, 11(2):12-19.
    [32] NAKAMURA Y, HASHIZUME K, KOYAMA K, et al. Effects of salinity on sand burrowing activity, feeding and growth of the clams Mactra veneriformis, Ruditapes philippinarum and Meretrix lusoria[J]. Journal of Shellfish Research, 2009, 24(4):1053-1059.
    [33] HUANG X T, YANG Z J, WANG H, et al. A study on burrowing behavior of Mulinia lateralis[J]. Periodical of Ocean University of China, 2020, 50(9):64-71.黄晓婷,杨祖晶,王浩,等.侏儒蛤潜沙行为研究[J].中国海洋大学学报(自然科学版), 2020, 50(9):64-71.
    [34] LIU J Y, CHEN Y Y, CAO F J, et al. Effects of salinity on oxygen consumption rate and ammonia excretion rate of different size in Haliotis diversicolor supertexta[J]. Journal of Guangdong Ocean University, 2019, 39(5):129-134.刘建勇,陈园媛,曹伏君,等.盐度对不同规格九孔鲍耗氧量和排氨率的影响[J].广东海洋大学学报, 2019, 39(5):129-134.
    [35] BOULLOT F, CASTREC J, BIDAULT A, et al. Molecular characterization of voltage-gated sodium channels and their relations with paralytic shellfish toxin bioaccumulation in the pacific oyster Crassostrea gigas[J]. Marine Drugs, 2017, 15(1):21.
    [36] ZUO T G C, SHEN C W, LI Y. Semi-lethal concentration of ammonia on scallops[J]. Fisheries Science, 1991, 11(2):42-44.佐藤恭成,榊昌文,李跃.氨对扇贝的半致死浓度[J].水产科学, 1991, 11(2):42-44.
    [37] LU L L, YU D H, LI L X, et al. Effect of temperature, salinity, and PH on the oxygen consumption rate and the ammonia excretion rate of Tapes dorsatus[J]. Marine Sciences, 2022, 46(10):113-121.陆莉莉,喻达辉,李雷旭,等.温度、盐度和pH对钝缀锦蛤耗氧率和排氨率的影响[J].海洋科学, 2022, 46(10):113-121.
    [38] CAO G R, ZHONG Q P, XU L L, et al. Influence of temperature and salinity on Paraoncidium Reevesii's Ammonia excretion rate and oxygen consumption rate[J]. Journal of Beibu Gulf University, 2021, 36(6):1-5.曹国荣,钟秋平,许莉丽,等.温度和盐度对里氏拟石磺排氨率和耗氧率的影响[J].北部湾大学学报, 2021, 36(6):1-5.
    [39] GOSTUYKHINA O L, ANDREENKO T I. Superoxide dismutase and catalase activities in tissues of the black sea bivalve mollusks Cerastoderma glaucum(Bruguière, 1789), Anadara kagoshimensis(Tokunaga, 1906) and Mytilus galloprovincialis lam. as related to adaptation to their habitats[J]. Journal of Evolutionary Biochemistry and Physiology, 2020, 56(3):113-124.
    [40] YOON S J, CHIN B S, PARK G S, et al. Physiological response of parrot fish (Oplegnathus fasciantus) and bivalve (Gomphina melanaegis) by lowing water temperature exposure[J]. Journal of Fisheries and Marine Sciences Education, 2016, 28(1):1-13.
    [41] QIAN J H, LI Z M, SHEN Y C, et al. Synergistic effect of temperature and salinity on antioxidant enzymes activities of Chlamys nobilis[J]. South China Fisheries Science, 2015, 11(6):49-57.钱佳慧,栗志民,申玉春,等.温度和盐度对华贵栉孔扇贝抗氧化酶活性的联合效应研究[J].南方水产科学, 2015, 11(6):49-57.
    [42] YE B. Response mechanism of three populations of Sinonovacula constricta under different salinity stress[D]. Shanghai:Shanghai Ocean University, 2020.叶博.缢蛏三个群体在不同盐度应激下的响应机制[D].上海:上海海洋大学, 2020.
    [43] SIFI K, SOLTANI N. Seasonal changes of two biomarkers of oxidative stress (LDH, MDA) in the edible mollusc Donax trunculus (Mollusca:Bivalvia) from the Gulf of Annaba (Algeria):correlation with carbohydrate and lipid contents[J]. Molluscan Research, 2019, 39(1):44-52.
    [44] OĞUL Y, GÜR F, GÜR B, et al. Decreased Na+/K+ pump activity in the erythrocyte membrane due to malondialdehyde in rheumatoid arthritis:an in vivo and in silico study[J]. Canadian Journal of Physiology and Pharmacology, 2022, 100(10):968-982.
    [45] DOMINGUEZ M, TAKEMURA A, TSUCHIYA M. Effects of changes in environmental factors on the non‐specific immune response of Nile tilapia, Oreochromis niloticus L.[J]. Aquaculture Research, 2005, 36(4):391-397.
    [46] HU Y M, LI Q, LIU S K, et al. Effects of acute temperature and salinity stress on the survival and immune indexes of Iwagaki oysters, Crassostrea nippona[J]. Journal of Fishery Sciences of China, 2020, 27(3):286-294.胡益鸣,李琪,刘士凯,等.温度和盐度急性胁迫对岩牡蛎存活及免疫指标的影响[J].中国水产科学, 2020, 27(3):286-294.
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杨栋,韩雨婷,高葛琪,王杰,牛东红.不同低盐驯化方式对缢蛏行为及生理的影响[J].上海海洋大学学报,2024,33(5):1120-1131.
YANG Dong, HAN Yuting, GAO Geqi, WANG Jie, NIU Donghong. Behavioral and physiological responses of Sinonovacula contricta to different low-salt domestication patterns[J]. Journal of Shanghai Ocean University,2024,33(5):1120-1131.

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  • Received:December 05,2023
  • Revised:April 05,2024
  • Online: September 05,2024
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