[1] AO J Q,MU Y N,XIANG L X,et al.Genome sequencing of the perciform fish
Larimichthys crocea provides insights into molecular and genetic mechanisms of stress adaptation[J].PLoS Genetics,2015,11(4):e1005118.
[2] 刘家富.大黄鱼养殖与生物学[M].厦门:厦门大学出版社,2013:1-6. LIU J F.Culture and biology of large yellow croaker[M].Xiamen:Xiamen University Press,2013:1-6.(in Chinese)
[3] LIU C,SHEN W L,HOU C C,et al.Low temperature-induced variation in plasma biochemical indices and aquaglyceroporin gene expression in the large yellow croaker
Larimichthys crocea[J].Scientific Reports,2019,9(1):2717.
[4] YE C X,WAN F,SUN Z Z,et al.Effect of phosphorus supplementation on cell viability,anti-oxidative capacity and comparative proteomic profiles of puffer fish (
Takifugu obscurus) under low temperature stress[J].Aquaculture,2016,452:200-208..
[5] LUSHCHAK V I.Environmentally induced oxidative stress in aquatic animals[J].Aquatic Toxicology,2011,101(1):13-30.

[6] BANH S,WIENS L,SOTIRI E,et al.Mitochondrial reactive oxygen species production by fish muscle mitochondria:potential role in acute heat-induced oxidative stress[J].Comparative Biochemistry and Physiology,Part B:Biochemistry and Molecular Biology,2016,191:99-107.
[7] HALLIWELL B.Free radicals and antioxidants:updating a personal view[J].Nutrition Reviews,2012,70(5):257-265.

[8] SRIKANTH K,PEREIRA E,DUARTE A C,et al.Glutathione and its dependent enzymes' modulatory responses to toxic metals and metalloids in fish-a review[J].Environmental Science and Pollution Research,2013,20(4):2133-2149.

[9] SAREILA O,KELKKA T,PIZZOLLA A,et al.NOX2 complex-derived ROS as immune regulators[J].Antioxidants & Redox Signaling,2011,15(8):2197-2208.

[10] JIA R,DU J L,CAO L P,et al.Antioxidative,inflammatory and immune responses in hydrogen peroxide-induced liver injury of tilapia (GIFT,
Oreochromis niloticus)[J].Fish & Shellfish Immunology,2019,84:894-905.
[11] SANT K E,HANSEN J M,WILLIAMS L M,et al.The role of Nrf1 and Nrf2 in the regulation of glutathione and redox dynamics in the developing zebrafish embryo[J].Redox Biology,2017,13:207-218.
[12] NAPETSCHNIG J,WU H.Molecular basis of NF-κB signaling[J].Annual Review of Biophysics,2013,42:443-468.
[13] SHEN W L,MATSUI T.Intestinal absorption of small peptides:a review[J].International Journal of Food Science & Technology,2019,54(6):1942-1948.

[14] LEÓN R,RUIZ M,VALERO Y,et al.Exploring small cationic peptides of different origin as potential antimicrobial agents in aquaculture[J].Fish & Shellfish Immunology,2020,98:720-727.
[15] WANG T,CHENG Y,CHEN X,et al.Effects of small peptides,probiotics,prebiotics,and synbiotics on growth performance,digestive enzymes,and oxidative stress in orange-spotted grouper,
Epinephelus coioides,juveniles reared in artificial seawater[J].Chinese Journal of Oceanology and Limnology,2017,35(1):89-97.

[16] 李日美,申光荣,黄放,等.小肽对凡纳滨对虾幼虾生长、体成分、非特异性免疫力及抗病力的影响[J].动物营养学报,2018,30(8):3082-3090. LI R M,SHEN G R,HUANG F,et al.Effects of small peptides on growth,body composition,non-specific immunity and disease resistance of juvenile
Litopenaeus vannamei[J].Chinese Journal of Animal Nutrition,2018,30(8):3082-3090.(in Chinese)
[17] ZENG L,AI C X,ZHENG J L,et al.Cu pre-exposure alters antioxidant defense and energy metabolism in large yellow croaker
Larimichthys crocea in response to severe hypoxia[J].Science of the Total Environment,2019,687:702-711.
[18] ZENG L,ZHENG J L,WANG Y H,et al.The role of Nrf2/Keap1 signaling in inorganic mercury induced oxidative stress in the liver of large yellow croaker
Pseudosciaena crocea[J].Ecotoxicology and Environmental Safety,2016,132:345-352.
[19] ZENG L,AI C X,ZHANG J S,et al.Pre-hypoxia exposure inhibited copper toxicity by improving energy metabolism,antioxidant defence and mitophagy in the liver of the large yellow croaker
Larimichthys crocea[J].Science of the Total Environment,2020,708:134961.
[20] WU C W,ZHANG D,KAN M Y,et al.The draft genome of the large yellow croaker reveals well-developed innate immunity[J].Nature Communications,2014,5:5227.
[21] REGOLI F,GIULIANI M E.Oxidative pathways of chemical toxicity and oxidative stress biomarkers in marine organisms[J].Marine Environmental Research,2014,93:106-117.
[22] 李杰.日粮中大豆蛋白小肽添加水平对虹鳟生产性能、消化及免疫功能的影响[D].硕士学位论文.雅安:四川农业大学,2017:16-29. LI J.Effects of dietary small peptides levels on growth performance,muscle quality,physiological and biochemical indexes in juvenile starry flounder (
Platichthys stellatus)[D].Master's Thesis.Ya'an:Sichuan Agricultural University,2017:16-29. in Chinese)
[23] 王际英,姜柯君,夏斌,等.小肽对星斑川鲽幼鱼消化酶活性、抗氧化能力和生化组成的影响[J].中国水产科学,2014,21(6):1154-1164. WANG J Y,JIANG K J,XIA B,et al.Effects of small dietary peptides on digestive enzyme activity,antioxidative capability,and biochemical composition in tissues of juvenile starry flounder
Platichthys stellatus[J].Journal of Fishery Sciences of China,2014,21(6):1154-1164.(in Chinese)
[24] UMENO A,BIJU V,YOSHIDA Y.
In vivo ROS production and use of oxidative stress-derived biomarkers to detect the onset of diseases such as Alzheimer's disease,Parkinson's disease,and diabetes[J].Free Radical Research,2017,51(4):413-427.

[25] ZENG L,AI C X,WANG Y H,et al.Abrupt salinity stress induces oxidative stress via the Nrf2-Keap1 signaling pathway in large yellow croaker
Pseudosciaena crocea[J].Fish Physiology and Biochemistry,2017,43(4):955-964.

[26] ZENG L,AI C X,ZHANG J S,et al.Toxicological effects of waterborne Zn on the proximal and distal intestines of large yellow croaker
Larimichthys crocea[J].Ecotoxicology and Environmental Safety,2019,174:324-333.
[27] ZENG L,AI C X,ZHANG J S,et al.Essential element Cu and non-essential element Hg exposures have different toxicological effects in the liver of large yellow croaker[J].Marine Pollution Bulletin,2019,139:6-13.
[28] IGHODARO O M,AKINLOYE O A.First line defence antioxidants-superoxide dismutase (SOD),catalase (CAT) and glutathione peroxidase (GPX):their fundamental role in the entire antioxidant defence grid[J].Alexandria Journal of Medicine,2018,54(4):287-293.

[29] MONTEIRO D A,RANTIN F T,KALININ A L.Inorganic mercury exposure:toxicological effects,oxidative stress biomarkers and bioaccumulation in the tropical freshwater fish matrinxã,
Brycon amazonicus (Spix and Agassiz,1829)[J].Ecotoxicology,2010,19:105-123.
[30] TACCHI L,BICKERDIKE R,DOUGLAS A,et al.Transcriptomic responses to functional feeds in Atlantic salmon (
Salmo salar)[J].Fish & Shellfish Immunology,2011,31(5):704-715.

[31] OLSEN R E,MYKLEBUST R,KRYVI H,et al.Damaging effect of dietary inulin on intestinal enterocytes in Arctic charr (
Salvelinus alpinus L.)[J].Aquaculture Research,2011,32(11):931-934.
[32] DODSON M,REDMANN M,RAJASEKARAN N S,et al.KEAP1-NRF2 signalling and autophagy in protection against oxidative and reductive proteotoxicity[J].Biochemical Journal,2015,469(3):347-355.

[33] WANG Y T,MANDAL A K,SON Y O,et al.Roles of ROS,Nrf2,and autophagy in cadmium-carcinogenesis and its prevention by sulforaphane[J].Toxicology and Applied Pharmacology,2018,353:23-30.
[34] DOS-SANTOS-PEREIRA M,GUIMARÃES F S,DEL-BEL E,et al.Cannabidiol prevents LPS-induced microglial inflammation by inhibiting ROS/NF-κB-dependent signaling and glucose consumption[J].Glia,2020,68(3):561-573.