Relationship Analysis Between Body Weight and Morphological Traits of Kuruma Shrimp Marsupenaeus japonicus in Polyculture Ponds
ZHOU Yinuo1,2, ZOU Yan1,3,4, LIU Ying1,3,4, YU Chaoyong1,3,4, WANG Youhong1
1. Marine Science Research Institute of Shandong Province, Qingdao 266104, China; 2. Qingdao University of Science and Technology,Qingdao 266061, China; 3. Shandong Key Laboratory of Intelligent Marine Ranch (under preparation), Qingdao 266104, China; 4. Engineering Laboratory for Exploration and Utilization of Marine Germplasm Resources of Qingdao, Qingdao 266104, China
Abstract:In order to investigate the relationship between morphological traits and body weight of kuruma shrimp Marsupenaeus japonicus in the polyculture model of shrimp and crabs in ponds, 12 morphological traits affecting body weight, including body length (X1), carapace length (X2), and body weight (Y), were measured in 150 samples of healthy and mature kuruma shrimp (male-to-female ratio of 1∶1) from a 1.0 hm2 polyculture pond stocked with 30 000 kuruma shrimp and 10 000 swimming crab Portunus trituberculatus at Jiaozhou Bay in October 2024. The regression equations, and the optimal fitting model were established by correlation analysis, path analysis, and regression analysis. The path coefficients were found to be 0.493 for body length (X1), 0.416 for carapace length (X2), and 0.090 for the sixth abdominal segment width (X9), with the maximal determination coefficient (0.243) of body length for body weight. The sum of the direct and indirect determinants of these three morphological traits on body weight was shown to be 0.894, greater than 0.850, indicating that the body weight of kuruma shrimp was primarily dependent on these three morphological traits. The multiple regression equation for body weight was established by regression analysis: Y=-24.922+1.884X1+3.768X2+2.463X9. The best-fit models for body weight versus body length and carapace length were Y=1.003e0.246X1 (r2=0.912) and Y=0.176X2.7802 (r2=0.901), respectively. The optimal model for the sixth abdominal segment width was described as Y=e(4.324-1.180/X9) (r2=0.744). In conclusion, under the shrimp-crab polyculture system, body length and carapace length are the key traits affecting the body weight of kuruma shrimp, while the sixth abdominal segment width serves as an auxiliary trait. These findings provide valuable data references for its breeding programs.
[1] 边雪琼,任宪云,王君霞,等.日本对虾热休克蛋白基因家族的鉴定及在发育时期的表达[J].渔业科学进展,2024,45(6):119-132. [2] 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. [3] 陈彦,晏科文,史宝,等.工厂化养殖模式下星康吉鳗的形态分析及重要形态性状对体重和净体重的影响效应[J].渔业科学进展,2024,45(6):83-96. [4] WANG W, MA C Y, CHEN W, et al. Optimization of selective breeding through analysis of morphological traits in Chinese sea bass (Lateolabrax maculatus)[J].Genetics and Molecular Research,2016,15(3):gmr.15038285. [5] TRONG T Q, MULDER H A, VAN ARENDONK J A M, et al.Heritability and genotype by environment interaction estimates for harvest weight, growth rate, and shape of Nile tilapia (Oreochromis niloticus) grown in river cage and VAC in Vietnam[J].Aquaculture,2013,384/385/386/387:119-127. [6] 刘小林,吴长功,张志怀,等.凡纳对虾形态性状对体重的影响效果分析[J].生态学报,2004,24(4):857-862. [7] 李玉虎,张志怀,宋芹芹,等.凡纳滨对虾新品系体形性状对其体质量的影响[J].热带生物学报,2014,5(4):307-311. [8] 董世瑞,孔杰,万初坤,等.中国对虾形态性状对体重影响的通径分析[J].海洋水产研究,2007,28(3):15-22. [9] 安丽,刘萍,李健,等.“黄海1号”中国明对虾形态性状对体质量的影响效果分析[J].中国水产科学,2008,15(5):779-786. [10] 郑礼,何玉英,王琼,等.不同性别中国明对虾形态性状与体质量的关系[J].水产科学,2023,42(4):566-574. [11] 王志铮,吴一挺,杨磊,等.日本沼虾(Macrobrachium nipponensis)形态性状对体重的影响效应[J].海洋与湖沼,2011,42(4):612-618. [12] 黄有辉,范斌,李一鸣,等.日本沼虾五群体形态性状对体质量的通径分析[J].水产学报,2016,40(8):1173-1185. [13] 刘凯,张敏莹,段金荣,等.长江下游日本沼虾形态特征及主要性状对体重的影响[J].云南农业大学学报,2011,26(5):645-651. [14] 冯建彬,马克异,李家乐.日本沼虾养殖群体主要形态性状对体质量的通径分析[J].上海海洋大学学报,2019,28(2):219-226. [15] 孙成波,邓先余,李镇泉,等.北部湾野生日本囊对虾(Marsupenaeus japonicus)体重和形态性状的关系[J].海洋与湖沼,2008,39(3):263-268. [16] 边力,钟声平,刘洪涛,等.两月龄日本囊对虾形态性状对体质量的通径分析[J].厦门大学学报(自然科学版),2013,52(3):427-432. [17] 蒋湘,文赵明,曾凤仙,等.日本囊对虾选育群体形态性状与体质量的关系[J].江苏农业科学,2017,45(19):235-238. [18] 梁健,王俊杰,郭永军,等.不同地理群体菲律宾蛤仔表型性状的相关性与通径分析[J].水产科学,2020,39(1):40-47. [19] 和飞,王志忠,卢红,等.黄河口中华绒螯蟹成蟹形态性状与体质量的相关性及通径分析[J].水产学杂志,2024,37(3):31-36. [20] OKAMOTO C, KOMARU A, HAYASHI M, et al. Variation of shell-closing strength among several families in pearl oyster, Pinctada fucata martensii[J]. Aquaculture Science, 2006, 54(4):525-529. [21] 李鸿鹏,富裕,任夙艺,等.舟山近海日本囊对虾野生群体与越冬养成群体形态性状对体重和肉重影响的比较[J].海洋与湖沼,2015,46(5):1218-1227. [22] 朱皓东,宫金华,马克异,等.罗氏沼虾野生和养殖群体形态性状对体重的影响[J].淡水渔业,2022,52(5):37-45. [23] 李义军,李婷,王平,等.日本囊对虾(Marsupenaeus japonicus)3个野生种群和1个养殖种群的形态差异与判别分析[J].海洋与湖沼,2010,41(4):500-504. [24] TSOI K H,WANG Z Y, CHU K H.Genetic divergence between two morphologically similar varieties of the kuruma shrimp Penaeus japonicus[J].Marine Biology,2005,147(2):367-379. [25] WAGNER E J, ARNDT R E, BROUGH M. Comparative tolerance of four stocks of cutthroat trout to extremes in temperature, salinity, and hypoxia[J]. Western North American Naturalist, 2001,61(4): 434-444. [26] 董宏标.日本囊对虾两种形态差异体形态性状、生长特性和耐热性比较研究[D].厦门:厦门大学,2013. [27] 王吉桥,靳翠丽,姜静颖,等.中国对虾和日本对虾身体不同部位生长的研究[C]//中国动物学会.中国动物科学研究:中国动物学会第十四届会员代表大会及中国动物学会65周年年会论文集.北京:中国林业出版社,1999:109-114. [28] 刘莹,于超勇,于道德,等.不同生长时期大菱鲆(Scophthalmus maximus)形态性状与体质量的通径分析及曲线拟合研究[J].广西科学院学报,2018,34(3):181-190. [29] 李艳慧,陈生熬,程勇.叶尔羌高原鳅形态性状与体重的通径分析及曲线拟合[J].中国水产科学,2022,29(1):49-57. [30] 陈红林,田永胜,刘峰,等.不同时期牙鲆形态性状对体重影响的通径分析及曲线拟合研究[J].中国水产科学,2016,23(1):64-76.