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柞蚕免疫蛹粉在水产养殖中的应用 |
陈星合1, 温志新1, 贾心悦1, 都兴范1,2 |
1.辽宁省海洋水产科学研究院,辽宁 大连 116023; 2.辽宁省柞蚕资源深加工利用 工程技术研究中心,辽宁 大连 116024 |
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A Review: Application of Tussah Immunoreactive Substances in Aquaculture |
CHEN Xinghe1, WEN Zhixin1, JIA Xinyue1, DU Xingfan1,2 |
1. Liaoning Ocean and Fisheries Science Research Institute, Dalian 116023, China; 2. Liaoning Professional Technology Innovation Center of Further Processing and Utilization of Tussah Resources, Dalian 116024, China |
引用本文: |
陈星合, 温志新, 贾心悦, 都兴范. 柞蚕免疫蛹粉在水产养殖中的应用[J]. 水产科学, 2025, 44(4): 678-684.
CHEN Xinghe, WEN Zhixin, JIA Xinyue, DU Xingfan. A Review: Application of Tussah Immunoreactive Substances in Aquaculture. Fisheries Science, 2025, 44(4): 678-684.
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链接本文: |
https://www.shchkx.com/CN/ 或 https://www.shchkx.com/CN/Y2025/V44/I4/678 |
[1]都兴范,李亚洁,温志新,等.柞蚕蛹的营养价值及综合利用研究进展[J].蚕业科学,2021,47(1):81-87. [2]WEN Z X, DU X F, MENG N, et al. Tussah silkmoth pupae improve anti-tumor properties of Cordyceps militaris (L. ) Link by increasing the levels of major metabolite cordycepin[J]. RSC Advances,2019,9(10):5480-5491. [3]李青峰,王诗琦,赵贺,等.不同品种柞蚕蛹营养价值及风味评价[J].食品与发酵工业,2022,48(6):110-116. [4]秦利,王学英,李建男,等.中国柞蚕学[M].北京:中国科学文化出版社,2003:6. [5]孙影,姜义仁,秦利.柞蚕分子生物学研究进展[J].蚕业科学,2019,45(5):746-758. [6]黄自然,郑庭辉,梁怡章,等.柞蚕抗菌肽的抑菌效应[J].科学通报,1986,31(14):1107-1109. [7]黄自然,王少颐.注射大肠杆菌诱导柞蚕蛹血淋巴产生抗菌物质(简报)[J].华南农学院学报,1981,2(1):65-68. [8]张春发,丁杰,卢长祯,等.柞蚕抗病机制及抗病物质的研究:Ⅰ.柞蚕肠道致病菌等诱导柞蚕蛹产生抗菌物质的比较研究[J].蚕业科学,1985,11(4):226-230. [9]祁国荣,周奇,屈贤铭,等.超声波诱导柞蚕蛹血淋巴产生抗菌物质[J].科学通报,1983,28(10):622-624. [10]李树英.柞蚕抗病活性物质的提取及应用[J].中国蚕业,2015,36(1):20-24. [11]张春发,丁杰,卢长祯,等.柞蚕抗病机制及其抗病物质的研究:Ⅱ.不同柞蚕品种滞育蛹诱导抗菌物质活性的比较[J].蚕业科学,1986,12(1):43-47. [12]任同军,孙永欣,韩雨哲.刺参的营养饲料与健康调控[M].南京:东南大学出版社,2019:138-147. [13]FANG S L, WANG L, FANG Q, et al. Characterization and functional study of a Cecropin-like peptide from the Chinese oak silkworm, Antheraea pernyi[J]. Archives of Insect Biochemistry and Physiology,2017,94(1):e21368. [14]LI Q Q, ZHANG J W, SUN Y, et al. Immunological function of the antibacterial peptide attacin-like in the Chinese oak silkworm, Antheraea pernyi[J]. Protein and Peptide Letters,2020,27(10):953-961. [15]TZOU P, OHRESSER S, FERRANDON D, et al. Tissue-specific inducible expression of antimicrobial peptide genes in Drosophila surface epithelia[J]. Immunity,2000,13(5):737-748. [16]KAUSAR S, ABBAS M N, GUL I, et al. Molecular identification of two DNA methyltransferase genes and their functional characterization in the anti-bacterial immunity of Antheraea pernyi[J]. Frontiers in Immunology,2022,13:855888. [17]ZHANG R, XU L J, DONG C M. Antimicrobial peptides:an overview of their structure, function and mechanism of action[J]. Protein and Peptide Letters,2022,29(8):641-650. [18]MANNIELLO M D, MORETTA A, SALVIA R, et al. Insect antimicrobial peptides:potential weapons to counteract the antibiotic resistance[J]. Cellular and Molecular Life Sciences,2021,78(9):4259-4282. [19]罗阳瑞,王晗,代奉林,等.天蚕素抗菌肽B在鱼类疾病控制中的应用[J].中国兽医杂志,2020,56(3):83-85. [20]BOMAN H G, FAYE I, HOFSTEN P, et al. On the primary structures of lysozyme, cecropins and attacins from Hyalophora cecropia[J]. Developmental & Comparative Immunology,1985,9(3):551-558. [21]李丹青,徐飞,黄自然,等.人工合成柞蚕抗菌肽D基因转入根癌农杆菌[J].蚕业科学,1990,16(2):110-112. [22]SHIBA T, TESHIMA T, NAKAI T, et al. Structure-activity relationship of lepidopteran, a self-defence peptide of Bombyx moriXXX[J]. Tetrahedron,1988,44(3):787-803. [23]SARMASIK A, CHEN T T. Bactericidal activity of cecropin B and cecropin P1 expressed in fish cells (CHSE-214):application in controlling fish bacterial pathogens[J]. Aquaculture,2003,220(1/2/3/4):183-194. [24]CHIA T J, WU Y C, CHEN J Y, et al. Antimicrobial peptides (AMP) with antiviral activity against fish nodavirus[J]. Fish & Shellfish Immunology,2010,28(3):434-439. [25]RAMOS-MARTÍN F, HERRERA-LEÓN C, D′AMELIO N. Bombyx mori Cecropin D could trigger cancer cell apoptosis by interacting with mitochondrial cardiolipin[J]. Biochimica et Biophysica Acta (BBA) - Biomembranes,2022,1864(10):184003. [26]陈艳,江明锋,叶煜辉,等.溶菌酶的研究进展[J].生物学杂志,2009,26(2):64-66. [27]宋佳,姜义仁,王勇,等.不同微生物诱导柞蚕溶菌酶基因的表达分析[J].蚕业科学,2013,39(4):695-701. [28]张波,王林美,叶博,等.柞蚕溶菌酶基因的克隆和序列分析[J].蚕业科学,2009,35(3):539-546. [29]邢思华.溶菌酶在异育银鲫和草鱼饲料中的应用研究[D].上海:上海海洋大学,2012:30-32. [30]邓文静,钱磊,张军,等.复合生物保鲜剂在南美白对虾保鲜中的应用[J].食品研究与开发,2021,42(9):205-211. [31]CHEN P Y, DE SCHUTTER K, PAUWELS J, et al. Binding of Orysata lectin induces an immune response in insect cells[J]. Insect Science,2022,29(3):717-729. [32]周敬林.柞蚕凝集素基因克隆及表达分析[D].沈阳:沈阳农业大学,2019:8-9. [33]FAESTE C K, TARTOR H, MOEN A, et al. Proteomic profiling of salmon skin mucus for the comparison of sampling methods[J]. Journal of Chromatography B,2020,1138:121965. [34]JENSSEN H, HAMILL P, HANCOCK R E W. Peptide antimicrobial agents[J]. Clinical Microbiology Reviews,2006,19(3):491-511. [35]SATO H, FEIX J B. Peptide-membrane interactions and mechanisms of membrane destruction by amphipathic α-helical antimicrobial peptides[J]. Biochimica et Biophysica Acta (BBA) - Biomembranes,2006,1758(9):1245-1256. [36]张倩,邓平建,王兴顺,等.重组柞蚕抗菌肽AD对E.coli抗菌机制研究[J].中国热带医学,2014,14(11):1309-1313. [37]EFIMOVA S S, SCHAGINA L V, OSTROUMOVA O S. Channel-forming activity of cecropins in lipid bilayers:effect of agents modifying the membrane dipole potential[J]. Langmuir,2014,30(26):7884-7892. [38]谭凤霞,裴梦婷,柴毅,等.抗菌肽与鱼类肠道健康研究进展[J].水产科学,2020,39(1):135-142. [39]苏保元.不同抗菌肽Surfactin添加剂对斜带石斑鱼生长、脂肪代谢及肠道健康的影响[D].厦门:集美大学,2017. [40]LI L S, CARDOSO J C R, FÉLIX R C, et al. Fish lysozyme gene family evolution and divergent function in early development[J]. Developmental & Comparative Immunology,2021,114:103772. [41]刘真英,李文利.密码子优化后的柞蚕溶菌酶在酵母中的表达及活性测定[J].微生物学通报,2016,43(2):292-300. [42]冯东岳.抗菌肽在水产养殖绿色发展中的应用[J].中国水产,2018(9):46-48. [43]王文清.饲料中添加溶菌酶对草鱼生长性能的影响[J].黑龙江水产,2023,42(5):362-364. [44]徐重新,谢雅晶,何鑫,等.凝集素在农业和食品领域中的应用研究进展[J].江苏农业学报,2022,38(4):1135-1144. [45]SCUR M, PARSONS B D, DEY S, et al. The diverse roles of C-type lectin-like receptors in immunity[J]. Frontiers in Immunology,2023,14:1126043. [46]王夏璐,陈莹,张景海,等.柞蚕C-型凝集素的cDNA克隆、重组表达及功能研究[C]// 北京市生物化学与分子生物学会,天津市生物化学与分子生物学会,河北省生物化学与分子生物学会等.第四届泛环渤海生物化学与分子生物学会学术交流会论文集.保定,2013:153. [47]于昂,王坤龙,张嘉宁,等.柞蚕凝集素ApCTL4-X1的表达、纯化与免疫功能分析[J].蚕业科学,2023,49(2):142-149. [48]田园,李莹,张艳丽,等.外源刀豆凝集素对菲律宾蛤仔免疫机能的影响[J].现代农业科技,2020(8):221-223. [49]马友文.长牡蛎C型凝集素CgCLec-TM2的鉴定及其免疫功能初探[D].大连:大连海洋大学,2023:56-57. [50]LI M, LI C Z, MA C X, et al. Identification of a C-type lectin with antiviral and antibacterial activity from Pacific white shrimp Litopenaeus vannamei[J]. Developmental & Comparative Immunology,2014,46(2):231-240. [51]MA S H, SUN Y X, WANG F Q, et al. Effects of tussah immunoreactive substances on growth, immunity, disease resistance against Vibrio splendidus and gut microbiota profile of Apostichopus japonicus[J]. Fish & Shellfish Immunology,2017,63:471-479. [52]WANG X D, ZHOU Z C, GUAN X Y, et al. Effects of dietary Lactobacillus acidophilus and tussah immunoreactive substances supplementation on physiological and immune characteristics of sea cucumber (Apostichopus japonicus)[J]. Aquaculture,2021,542:736897. [53]孙永欣,温志新,米锐,等.柞蚕免疫蛹粉在刺参健康养殖中的应用研究[J].中国饲料,2016(15):19-23. [54]MI R, SUN Y X, LI J G, et al. Immune-related proteins detected through iTRAQ-based proteomics analysis of intestines from Apostichopus japonicus in response to tussah immunoreactive substances[J]. Fish & Shellfish Immunology,2018,74:436-443. [55]MI R, RABBI M H, SUN Y X, et al. Enhanced protein phosphorylation in Apostichopus japonicus intestine triggered by tussah immunoreactive substances might be involved in the regulation of immune-related signaling pathways[J]. Comparative Biochemistry and Physiology Part D:Genomics and Proteomics,2021,37:100757. [56]韩朝婕,陈屹洋,贺振楠,等.小球藻生长因子对凡纳滨对虾生长及营养成分的影响[J].水产科学,2022,41(6):959-966. [57]农业农村部渔业渔政管理局,全国水产技术推广总站,中国水产学会.2022中国渔业统计年鉴[M].北京:中国农业出版社,2022. [58]WEN Z X, LI X J, SUN Y X, et al. Effects of dietary tussah immunoreactive substances on the growth performance, physiological response and serum metabolome of shrimp (Litopenaeus vannamei)[J]. Aquaculture Research,2022,53(3):1040-1049. [59]孙永欣,马淑慧,米锐,等.柞蚕免疫蛹粉在凡纳滨对虾健康养殖中的应用研究[J].中国饲料,2017(15):20-23. [60]CHENG J X, XIA Y Q, ZHOU C, et al. Proteomics and phosphoproteomic analysis to identify spleen of Takifugu rubripes infected Cryptocaryon irritans[J]. Marine Biotechnology,2023,25(2):291-313. [61]陈亚芬,杨州.我国河鲀鱼资源及其开发利用[J].资源开发与市场,2000,16(3):147-148. [62]王晨诗,黄馨笛,崔晓玉,等.哈维氏弧菌感染对红鳍东方鲀IL-6基因DNA甲基化的影响[J].大连海洋大学学报,2022,37(2):221-226. [63]GAO D X, LEI W, WANG C S, et al. RNA-sequencing analysis of the spleen and gill of Takifugu rubripes in response to Vibrio harveyi infection[J]. Frontiers in Veterinary Science,2021,8:813988. [64]孙永欣,马淑慧,王庆志,等.饲喂柞蚕免疫蛹粉对红鳍东方鲀生长、免疫和抗病力的影响[J].水产科学,2022,41(2):236-242. [65]张鹤千,王思语,李珏贤,等.中草药对水产动物非特异性免疫作用的研究进展[J].水产学杂志 2024,37(2):107-115. [66]迟庆宏.虾夷扇贝自然海域生态育苗技术[J].当代水产,2020,45(6):79. [67]马淑慧,田斌,孙永欣,等.柞蚕免疫蛹粉、柞蚕抗菌肽对扇贝生长、免疫力的影响[J].水产科学,2023,42(5):878-883. [68]SUN Y X, LI D C, ZHANG H, et al. Dietary supplement of Antheraea pernyi cecropin enhances the growth rate and disease resistance of the Yesso scallop, Patinopecten yessoensis[J]. Aquaculture Reports,2023,31:101634. [69]MI R, LI X J, SUN Y X, et al. Effects of microbial community and disease resistance against Vibrio splendidus of Yesso scallop (Patinopecten yessoensis) fed supplementary diets of tussah immunoreactive substances and antimicrobial peptides[J]. Fish & Shellfish Immunology,2022,121:446-455. [70]都兴范,李树英,石理鑫,等.柞蚕免疫活性物质对海珍品生长发育的研究[J].饲料研究,2000(12):5-6. |
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