|
|
Advances and Prospects in Genetics and Breeding of Freshwater Prawn Macrobrachium nipponense |
LIU Jiahui, HU Zhiguo, LEI Yujie, BAO Dongbing, SHEN Jinghui, GUO Xusheng |
College of Fisheries, Xinyang Agriculture and Forestry University, Xinyang 464000, China |
|
|
|
Received: 19 December 2024
|
|
|
|
|
[1] 刘瑞玉.长臂虾和沼虾[J]. 生物学通报,1957(6):14-23. [2] CAI Y, DAI A Y. Freshwater shrimps (Crustacea:Decapoda:Caridea) from the Xishuangbanna Region of Yunnan Province, Southern China[J]. Hydrobiologia,1999,400(0):211-241. [3] KUSAMURA T, SUZUKI H. Reexamination of the diagnostic characters of two freshwater palaemonid prawns, Macrobrachium nipponense (de Haan,1849) and M. formosense Bate,1868 (Decapoda, Caridea) from Japan[J]. Crustaceana,1997,70(7):831-839. [4] CAI Y X, NG P K L. The freshwater palaemonid prawns (Crustacea:Decapoda:Caridea) of Myanmar[J]. Hydrobiologia,2002,487(1):59-83. [5] CAI Y X, SHOKITA S. Report on a collection of freshwater shrimps (Crustacea: Decapoda: Caridea) from the Philippines, with descriptions of four new species[J]. The Raffles Bulletin of Zoology, 2006, 54(2): 245-270. [6] 贾元印,赵渤年,姚乾元,等. 青虾中微量元素和氨基酸的含量测定[J]. 山东中医杂志,1991,10(6):35-36. [7] 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. 2024中国渔业统计年鉴[M]. 北京:中国农业出版社,2024:24. [8] FU H T, JIANG S F, XIONG Y W.Current status and prospects of farming the giant river prawn (Macrobrachium rosenbergii) and the oriental river prawn (Macrobrachium nipponense) in China[J]. Aquaculture Research,2012,43(7):993-998. [9] 赵晓勤,倪娟,陈立侨,等.日本沼虾4种群的形态差异分析[J]. 中国水产科学,2006,13(2):224-229. [10] 孙悦娜. 我国五大湖青虾的形态差异、DNA分子标记及沼虾属系统进化的研究[D]. 上海:上海水产大学,2007. [11] 姚茜.日本沼虾(Macrobrachium nipponense)5个群体形态学及遗传结构的比较研究[D]. 上海:华东师范大学,2008. [12] 黄有辉.日本沼虾不同地理种群形态学及多样性研究[D]. 上海:华东师范大学,2016. [13] 邱高峰,堵南山,赖伟.日本沼虾染色体及其核型的研究[J]. 海洋与湖沼,1994,25(5):493-498. [14] 宋胜磊,陆全平,吕佳,等.制备青虾染色体方法新探[J]. 生物学通报,2003,38(12):53-54. [15] 钱国英,汪财生,尹尚军.日本沼虾染色体制备的比较研究(简报)[J]. 实验生物学报,2005,38(5):456-460. [16] 张林,周剑光,甘金华,等.日本沼虾染色体核型、基于3种同工酶的群体遗传结构分析[J]. 中国渔业质量与标准,2021,11(4):46-53. [17] LEVAN A, FREDGA K, SANDBERG A A. Nomenclature for centromeric position on chromosomes[J]. Hereditas,1964,52(2):201-220. [18] 刘芳芳,陈红林,刘峰,等.雌雄红螯螯虾染色体核型比较分析[J]. 浙江农业学报,2023,35(9):2079-2089. [19] 王德祥,苏永全,王世锋,等.不同地理种群大黄鱼染色体核型的比较研究[J]. 海洋学报,2006,28(6):176-178. [20] 徐博文,张国奇,周陆,等.翘嘴鲌淀山湖和兴凯湖群体的胚胎发育及染色体核型比较[J]. 水产科技情报,2023,50(3):168-175. [21] 潘伟槐,祝尧荣,黄文光,等.日本沼虾(Macrobrachium nipponense)成体组织三种同工酶的研究[J]. 绍兴文理学院学报(自然科学版),2001,21(10):43-46. [22] 洪一江,张立明,胡成钰.鄱阳湖日本沼虾幼体发育及其同工酶研究[J]. 中国水产科学,2002,9(3):203-206. [23] 赵艳民.日本沼虾(Macrobrachium nipponense)胚胎发育的研究[D]. 上海:华东师范大学,2005. [24] 傅洪拓,龚永生,吴滟,等.日本沼虾与海南沼虾的人工种间杂交及其同工酶分析[J]. 水生生物学报,2004,28(3):327-329. [25] 凌立彬.日本沼虾不同地方种群的遗传多样性研究[D]. 南京:南京农业大学,2005. [26] 蒋速飞,傅洪拓,熊贻伟,等.日本沼虾不同地理种群的遗传多样性研究[J]. 中国农学通报,2008,24(10):554-558. [27] 陈婵娟,张鑫,许志强,等.江苏地区日本沼虾种质资源的RAPD分析[J]. 江苏农业科学,2008,36(2):62-65. [28] GE J C, XU Z Q, HUANG Y H, et al. Genetic variation in wild and cultured populations of the freshwater prawn, Macrobrachium nipponense, in China[J]. Journal of the World Aquaculture Society,2011,42(4):504-511. [29] 李法君.日本沼虾微卫星标记的筛选及长江不同江段日本沼虾遗传多样性的研究[D]. 南京:南京农业大学,2008. [30] 吕丁.黄河流域青虾遗传多样性研究[D]. 南京:南京农业大学,2011. [31] 王永辰,姜巨峰,刘肖莲,等.天津地区日本沼虾群体遗传多样性的微卫星分析[J]. 天津农业科学,2019,25(12):37-43. [32] 杨频,陈立侨,王伟,等.日本沼虾遗传多样性的ISSR分析[J]. 中国水产科学,2010,17(5):913-921. [33] EDDINE K D, GAO Z J, DAKA P, et al. Evaluation and comparison germplasm resource of two species of Macrobrachium in China (M. hainanense and M. nipponense)[J]. Aquaculture Research,2025,2025(1):5531870. [34] 江宗冰,戴习林,明磊,等.罗氏沼虾生长性状的种内杂交优势及遗传力与遗传相关分析[J]. 上海海洋大学学报,2017,26(2):189-196. [35] 王崇懿,王伦,刘建勇,等.凡纳滨对虾(Litopenaeus vannamei)不同品系生长与耐高盐性状配合力及杂种优势分析[J]. 海洋与湖沼,2022,53(1):161-167. [36] 周发林,杨其彬,姜松,等.斑节对虾3个种质群体体质量性状配合力及杂种优势分析[J]. 南方水产科学,2021,17(1):39-44. [37] 邹宇凡,吴玮杰,白志毅,等.克氏原螯虾三群体双列杂交组合生长性能和耐干露能力比较分析[J]. 上海海洋大学学报,2024,33(2):361-370. [38] FU H T, GONG Y S, WU Y, et al. Artificial interspecific hybridization between Macrobrachium species[J]. Aquaculture,2004,232(1/2/3/4):215-223. [39] 熊贻伟.杂交青虾“太湖1号” 生物学特性及养殖技术的研究[D]. 南京:南京农业大学,2010. [40] 许凡,王婷婷,陈太丰,等.日本沼虾野生群体与养殖群体杂交、回交后代的形态特征和生产性能[J]. 水产科学,2011,30(4):215-220. [41] LI Y M, FAN W J, HUANG Y Y, et al. Comparison of morphology and genetic diversity between broodstock and hybrid offspring of oriental river prawn, Macrobrachium nipponense based on morphological analysis and SNP markers[J]. Animal Genetics,2021,52(4):461-471. [42] LI Y M, JIANG Q C, CHEN Q, et al. Comparison of growth performance and biochemical components between parent and hybrid offspring in the oriental river prawn, Macrobrachium nipponense[J]. Animal Genetics,2021,52(2):185-197. [43] 李瀚声,冯建彬,谢楠,等.日本沼虾太湖和鄱阳湖群体及其F1的遗传结构分析[J]. 上海海洋大学学报,2011,20(3):321-327. [44] 李健,刘萍,高保全,等.三疣梭子蟹新品种“黄选1号” 的选育[J]. 渔业科学进展,2013,34(5):51-57. [45] 王庆志,李琪,孔令锋,等.长牡蛎第三代选育群体生长性状的选择效应[J]. 水产学报,2013,37(10):1487-1494. [46] 王冰柯,王延晖,冯建新,等.黄河鲤新品系F3和F4群体的生长和肌肉营养成分差异分析[J]. 水产科学,2023,42(3):488-495. [47] 贾永义,顾志敏,杨元杰,等.日本沼虾家系的初步构建及生长相关性状的遗传力估计[J]. 浙江海洋学院学报(自然科学版),2014,33(2):154-160. [48] REN X, PENG G H, PENG B, et al. Robust strategy for disease resistance and increasing production breeding in red swamp crayfish (Procambarus clarkii)[J]. Fish & Shellfish Immunology,2022,122:57-66. [49] REN X, XIONG L J, TAN Y F, et al. Stress and disease resistance in crayfish (Procambarus clarkii) breed “Huachizhen-1”[J]. Aquaculture Journal,2023,3(1):7-17. [50] YIN B, WANG H Y, WENG S P, et al. A simple sequence repeats marker of disease resistance in shrimp Litopenaeus vannamei and its application in selective breeding[J]. Frontiers in Genetics,2023,14:1144361. [51] JIN S B, BIAN C, JIANG S F, et al. A chromosome-level genome assembly of the oriental river prawn, Macrobrachium nipponense[J]. GigaScience,2021,10(1):giaa160. [52] LI F J, JIANG F W, BAI H K, et al. Genomic cloning, expression, and single nucleotide polymorphism association analysis of the insulin-like androgenic gland hormone gene in the oriental river prawn (Macrobrachium nipponense)[J]. Genetics and Molecular Research,2015,14(2):5910-5921. [53] JIANG S F, XIONG Y W, XIA Z X, et al. Identification SNPs in vitellogenin gene and their association with ovarian development and growth of Macrobrachium nipponense[J]. Aquaculture Research,2022,53(18):6478-6486. [54] WANG M C, JIN S B, LIU S, et al. Genome-wide association study of growth and sex traits provides insight into heritable mechanisms underlying growth development of Macrobrachium nipponense (oriental river prawn)[J]. Biology,2023,12(3):429. [55] 刘帅,蒋丽.日本沼虾体重和出肉率联合GWAS分析[J]. 安徽农业科学,2023,51(2):108-110. [56] GAO X B, GAO Z J, ZHANG M L, et al. Identifying relationships between Glutathione S-transferase-2 single nucleotide polymorphisms and hypoxia tolerance and growth traits in Macrobrachium nipponense[J]. Animals,2024,14(5):666. [57] GAO Z J, ZHANG W Y, JIANG S F, et al. Genome-wide association and transcriptomic analysis and the identification of growth-related genes in Macrobrachium nipponense[J]. BMC Genomics,2024,25(1):1182. [58] JIANG S F, XIE Y X, GAO Z J, et al. Studies on the relationships between growth and gonad development during first sexual maturation of Macrobrachium nipponense and associated SNPs screening[J]. International Journal of Molecular Sciences,2024,25(13):7071. [59] 万山青.青虾生长性状相关微卫星标记的筛选[D]. 南京:南京农业大学,2009. [60] GOPAL C, GOPIKRISHNA G, KRISHNA G, et al. Weight and time of onset of female-superior sexual dimorphism in pond reared Penaeus monodon[J]. Aquaculture,2010,300(1/2/3/4):237-239. [61] GDE SUGESTYA I N, SRI WIDODO M, SOEPRIJANTO A. Effect of 17β-estradiol on feminization, growth rate and survival rate of Pacific white shrimp (Litopenaeus vannamei, Boone 1931) postlarvae[J]. The Journal of Experimental Life Sciences,2018,8(1):37-42. [62] AFLALO E D, HOANG T T T, NGUYEN V H, et al. A novel two-step procedure for mass production of all-male populations of the giant freshwater prawn Macrobrachium rosenbergii[J]. Aquaculture,2006,256(1/2/3/4):468-478. [63] VENTURA T, MANOR R, AFLALO E D, et al. Timing sexual differentiation:full functional sex reversal achieved through silencing of a single insulin-like gene in the prawn, Macrobrachium rosenbergii[J]. Biology of Reproduction,2012,86(3):90. [64] NAGAMINE C, KNIGHT A W, MAGGENTI A, et al. Effects of androgenic gland ablation on male primary and secondary sexual characteristics in the Malaysian prawn, Macrobrachium rosenbergii (De Man) (Decapoda, Palaemonidae), with first evidence of induced feminization in a nonhermaphroditic decapod[J]. General and Comparative Endocrinology,1980,41(4):423-441. [65] MOLCHO J, LEVY T, BENET A, et al. Three generations of prawns without the Z chromosome:viable WW Macrobrachium rosenbergii all-female populations in polyculture with Oreochromis niloticus[J]. Aquaculture,2020,515:734531. [66] 吕华当, 沙燮雪. 全雄性罗氏沼虾虾苗6月可供应中国——访以色列蒂朗集团蒂朗船务有限公司董事长汉姆·艾维约斯[J]. 海洋与渔业,2013(5):30-31. [67] 金舒博,傅洪拓,龚永生,等.青虾雌性特异分子标记及其筛选方法和应用:CN111534581B[P]. 2022-04-12. [68] 李逸群,周龙.一种全雄青虾规模化繁育的方法:CN114375912B[P]. 2023-05-05. [69] 张燕萍.青虾性别相关基因的筛选、克隆及时空表达分析[D]. 南京:南京农业大学,2014. [70] 陈仕海,靳雅琦,张子平,等.十足目甲壳动物性别控制与单性养殖研究进展[J]. 中国水产科学,2024,31(1):106-127. [71] SUN Y Y, ZHANG J Q, XIANG J H. A CRISPR/Cas9-mediated mutation in chitinase changes immune response to bacteria in Exopalaemon carinicauda[J]. Fish & Shellfish Immunology,2017,71:43-49. [72] SUN Y Y, YAN C C, LIU M F, et al. CRISPR/Cas9-mediated deletion of one carotenoid isomerooxygenase gene (EcNinaB-X1) from Exopalaemon carinicauda[J]. Fish & Shellfish Immunology,2020,97:421-431. [73] MIAO M, LI S H, YUAN J B, et al. CRISPR/Cas9-mediated gene mutation of EcIAG leads to sex reversal in the male ridgetail white prawn Exopalaemon carinicauda[J]. Frontiers in Endocrinology,2023,14:1266641. [74] ZHANG X C, WANG F, DONG Z J, et al. A new strain of yellow catfish carrying genome edited myostatin alleles exhibits double muscling phenotype with hyperplasia[J]. Aquaculture,2020,523:735187. [75] WU Y, WU T F, YANG L Y, et al. Generation of fast growth Nile tilapia (Oreochromis niloticus) by myostatin gene mutation[J]. Aquaculture,2023,562:738762. [76] DATSOMOR A K, ZIC N, LI K S, et al. CRISPR/Cas9-mediated ablation of elovl2 in Atlantic salmon (Salmo salar L. ) inhibits elongation of polyunsaturated fatty acids and induces Srebp-1 and target genes[J]. Scientific Reports,2019,9(1):7533. [77] HUANG J F, SHI C, GAO Y P, et al. Heterozygous depletion of pik3r1 improves growth and feed conversion efficiency in gibel carp (Carassius gibelio)[J]. Aquaculture,2021,545:737207. [78] QIAO H, JIANG S F, FU H T, et al. CRISPR/Cas9 establishment-mediated targeted mutagenesis in Macrobrachium nipponense[J]. Frontiers in Physiology,2023,14:1141359. [79] MOLCHO J, MANOR R, SHAMSIAN M, et al. On genome editing in embryos and cells of the freshwater prawn Macrobrachium rosenbergii[J]. Aquaculture,2022,558:738391. [80] XU S, PHAM T, NEUPANE S. Delivery methods for CRISPR/Cas9 gene editing in crustaceans[J]. Marine Life Science & Technology,2020,2(1):1-5. [81] GONZALEZ-DUARTE R J, DE AQUINO W E, GARCÍA-CARREÑO F, et al. The hurdles of delivery CRISPR-Cas9 components for gene editing in penaeid shrimps[J]. Aquaculture Research,2021,52(11):5297-5306. [82] 殷战,石生持,李学辉,等.鱼类基因编辑辅助育种的应用与生物安全风险管控[J]. 水生生物学报,2025,49(1):1-13. |
|
|
|