Abstract:In order to explore the predation of gray planthopper Laodelphax striatellus by Chinese mitten crab Eriocheir sinensis in rice-crab co-culture, field trial and laboratory test were carried out in Panjin Guanghe Crab Industry Co., Ltd., in Dawa District, Panjin City, Liaoning Province, from June 10 to September 24, 2020. The changes in the number of gray planthoppers were measured in the field by a pot shooting method, the gastrointestinal food contents were analyzed in the Chinese mitten crab in the field, and effects of Chinese mitten crab with body weight of 12-24 g, as well as the female crabs with body weight of (20±4) g and (10±2) g, sex, and short-term starvation on the predation function of the Chinese mitten crab on the gray planthopper were simulated in a laboratory to probe the predation mechanism of the Chinese mitten crab with body weight of 12—24 g on the gray planthopper in the field. The results showed that there was decrease in number of gray planthopper by 53.05% in field trial and 51.5% in laboratory test compared with that in the field without Chinese mitten crab, with significantly more gray planthopper in the field with large Chinese mitten crab than in the field with small Chinese mitten crab higher than that in the filed with small ones (P<0.01). The Chinese mitten crab exposed to short-term starvation had significantly higher feeding ability of gray planthopper than that in the satiety group (P<0.01), without significant difference in the feeding ability between male and female individuals. Therefore, the increase in body weight and short-term starvation can lead to significantly enhance the ability of Chinese mitten crab to prey on gray planthoppers, and the three predatory functional response models are in line with the Holling Ⅱ equation.
王玉全, 范思宁, 于怡琳, 梅杰, 孙娜, 梁晓晨, 刘学深, 李晓东. 稻蟹共生模式下中华绒螯蟹捕食灰飞虱的研究[J]. 水产科学, 2025, 44(2): 191-201.
WANG Yuquan, FAN Sining, YU Yilin, MEI Jie, SUN Na, LIANG Xiaochen, LIU Xueshen, LI Xiaodong. Predation on Gray Planthopper Laodelphax striatellus by Chinese Mitten Crab Eriocheir sinensis in Rice-Crab Co-Culture. Fisheries Science, 2025, 44(2): 191-201.
[1] KHOSHNEVISAN B, ALI RAJAEIFAR M, CLARK S, et al. Evaluation of traditional and consolidated rice farms in Guilan Province, Iran, using life cycle assessment and fuzzy modeling[J] . Science of the Total Environment,2014,481:242-251. [2] 王寒,唐建军,谢坚,等.稻田生态系统多个物种共存对病虫草害的控制[J] .应用生态学报,2007,18(5):1132-1136. [3] 徐显忠,李明华.稻飞虱发生危害特点及综合防治技术[J] .四川农业科技,2012(7):42. [4] 刘萍花.灰飞虱发生现状及防治对策[J] .闽东农业科技,2016(03):13-14. [5] 仝刚跃.水稻灰飞虱治理中杀虫剂推广应用技术[J] .农民致富之友,2016(16):189. [6] KHUSH G S,VIRK P S. IR varieties and their impact[M] . Los Baños, Philippines: International Rice Research Institute,2005:163. [7] 杜波,陈荣智,何光存.水稻抗虫功能基因组研究进展[J] .生命科学,2016,28(10):1200-1215. [8] 邢亚楠,代克涛,车喜庆.稻田3种捕食性天敌对灰飞虱种群的调控作用[J] .江苏农业科学,2018,46(20):109-111. [9] YAO F L, YOU M S, VASSEUR L, et al. Polycultural manipulation for better regulation of planthopper populations in irrigated rice-based ecosystems[J] . Crop Protection,2012,34:104-111. [10] 陈欣,唐建军.农业系统中生物多样性利用的研究现状与未来思考[J] .中国生态农业学报,2013,21(1):54-60. [11] XIE J, HU L L, TANG J J, et al. Ecological mechanisms underlying the sustainability of the agricultural heritage rice-fish coculture system[J] . Proceedings of the National Academy of Sciences of the United States of America,2011,108(50):E1381-E1387. [12] 孙富余,田春晖,孙文涛,等.稻蟹综合种养模式化肥农药生态减施技术应用[J] .农业经济,2019(1):9-11. [13] XU Q, WANG X L, XIAO B, et al. Rice-crab coculture to sustain cleaner food production in Liaohe River Basin, China:an economic and environmental assessment[J] . Journal of Cleaner Production,2019,208:188-198. [14] 王晨,胡亮亮,唐建军,等.稻鱼种养型农场的特征与效应分析[J] .农业现代化研究,2018,39(5):875-882. [15] HU L L, GUO L, ZHAO L F, et al. Productivity and the complementary use of nitrogen in the coupled rice-crab system[J] . Agricultural Systems,2020,178:102742. [16] 杨勇,胡小军,张洪程,等.稻渔(蟹)共作系统中水稻安全优质高效栽培的研究 Ⅴ.病虫草发生特点与无公害防治[J] .江苏农业科学,2004,32(6):21-26. [17] REN W Z, HU L L, ZHANG J, et al. Can positive interactions between cultivated species help to sustain modern agriculture?[J] . Frontiers in Ecology and the Environment,2014,12(9):507-514. [18] HU L L, ZHANG J, REN W Z, et al. Can the co-cultivation of rice and fish help sustain rice production?[J] . Scientific Reports,2016,6:28728. [19] 陈炳良,堵南山,叶鸿发.中华绒螯蟹的食性分析[J] .水产科技情报,1989,16(1):2-5. [20] SHEHZAD W, RIAZ T, NAWAZ M A, et al. Carnivore diet analysis based on next-generation sequencing:application to the leopard cat (Prionailurus bengalensis) in Pakistan[J] . Molecular Ecology,2012,21(8):1951-1965. [21] MÜLLER-SCHWARZE D. Experimental modulation of behavior of free-ranging mammals by semiochemicals[M] //MÜLLER-SCHWARZE D, SILVERSTEIN R M. Chemical Signals in Vertebrates 3. Boston, Springer US,1983:235-244. [22] WELDON P. Responses by vertebrates to chemicals from predators[M] //MACDONALDD W, MÜLLER-SCHWARZED,NATYNCZUKS E.Chemical Signals in Vertebrates 5.Oxford:Oxford University Press,1990:500-521. [23] MILLIDINE K J, ARMSTRONG J D, METCALFE N B. Presence of shelter reduces maintenance metabolism of juvenile salmon[J] . Functional Ecology,2006,20(5):839-845. [24] CSÁNYI V. Ethological analysis of predator avoidance by the paradise fish (Macropodus opercularis L. ):Ⅱ. key stimuli in avoidance learning[J] . Animal Learning & Behavior,1986,14(1):101-109. [25] JOHANSSON F, STOKS R, ROWE L, et al. Life history plasticity in a damselfly:effects of combined time and biotic constraints[J] . Ecology,2001,82(7):1857. [26] SHERIFF M J, KREBS C J, BOONSTRA R. The sensitive hare:sublethal effects of predator stress on reproduction in snowshoe hares[J] . Journal of Animal Ecology,2009,78(6):1249-1258. [27] 李姣,金晨钟,龙大彬,等.天敌昆虫对害虫的非直接致死效应[J] .应用昆虫学报,2014,51(4):863-870. [28] 胡昌雄,范苇,张倩,等.基于两性生命表和年龄-阶段捕食率的南方小花蝽对西花蓟马的控制作用[J] .中国农业科学,2021,54(13):2769-2780. [29] 符成悦,徐天梅,温绍海,等.益蝽对亚洲玉米螟幼虫的捕食行为及捕食功能反应[J] .中国生物防治学报,2021,37(5):956-962. [30] 雷舒涵,张秀梅,张沛东,等.金乌贼幼体捕食行为及捕食能力的研究[J] .中国海洋大学学报(自然科学版),2016,46(4):37-42. [31] KARPLUS I. Social control of growth in Macrobrachium rosenbergii (de man):a review and prospects for future research[J] . Aquaculture Research, 2005,36(3):238-254. [32] MATHESON K, GAGNON P. Effects of temperature, body size, and chela loss on competition for a limited food resource between indigenous rock crab (Cancer irroratus Say) and recently introduced green crab (Carcinus maenas L. )[J] . Journal of Experimental Marine Biology and Ecology,2012,428:49-56. [33] 何杰,史会来,许文军,等.同一养殖环境下不同规格三疣梭子蟹竞食能力的比较研究[J] .水产科学,2017,36(6):741-746. [34] MISTRI M. Effects of hypoxia on predator-prey interactions between juvenile Carcinus aestuarii and Musculista senhousia[J] . Marine Ecology Progress Series, 2004,275:211-217. [35] LIU D P, WANG F, YANG C, et al. Starvation and a conspecific competitor influence multiple predator effects in a swimming crab (Portunus trituberculatus) - Manila clam (Ruditapes philippinarum) foraging system[J] . Journal of Experimental Marine Biology and Ecology,2017,495:35-42. [36] 杨思华,李曼,陈淳,等.巴氏新小绥螨对水稻干尖线虫控制能力的评估[J] .中国生物防治学报,2021,37(3):472-479. [37] 卢永宏,杨群芳.饥饿对微小花蝽成虫捕食作用的影响[J] .中国农学通报,2011,27(9):400-402. [38] 邹运鼎,李桂亭,周夏芝,等.饥饿对大草蛉雄成虫捕食作用的影响[J] .应用生态学报,2000,11(6):848-850. [39] BEATTIE C L, PITT K A, CONNOLLY R M. Both size and gender of mud crabs influence the outcomes of interference interactions[J] . Journal of Experimental Marine Biology and Ecology,2012,434:1-6. [40] SUN Y F, WANG F, LIU D P, et al. Behavioral mechanisms underlying the functional response of the swimming crab Portunus trituberculatus preying on the Manila clam Ruditapes philippinarum[J] . Marine Biology,2016,163(5):124. [41] 程圆圆,彭宇,陈建,等.四种蜘蛛对棉蚜的捕食作用[J] .中国生物防治,2006,22(3):248-250.