Effects of surgically implanted dummy ultrasonic transmitters on physiological response of bighead carp Hypophthalmichthys nobilis

文献类型: 外文期刊

第一作者: Luo, Hongwei

作者: Luo, Hongwei;Duan, Xinbin;Liu, Shaoping;Chen, Daqing

作者机构:

关键词: Surgical implantation;Dummy ultrasonic transmitter;Stress response;Tissue damage;Nutritional status;Bighead carp Hypophthalmichthys nobilis

期刊名称:FISH PHYSIOLOGY AND BIOCHEMISTRY ( 影响因子:2.794; 五年影响因子:2.876 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: The study assessed the effects of surgically implanted dummy ultrasonic transmitters on physiological response of bighead carp Hypophthalmichthys nobilis in April 2011. Before the surgery, 15 blood samples were extracted randomly from 195 bighead carp samples, and then the rest of the fish were divided into three groups: (1) control group, handing but no tagging, (2) sham group, surgical procedure without implantation of transmitter and (3) surgery group, surgical implantation of transmitters. In 3 h, 24 h, 7 days and 14 days after surgery, 15 fish were extracted randomly from the three groups, respectively, for sampling. Then the plasma samples were analyzed, and physiological measures of stress response (cortisol, glucose), tissue damage [alanine aminotransferase (ALT) and aspartate aminotransferase (AST)] and nutritional status [total protein, globulin, albumin, triglyceride, cholesterol, and alkaline phosphatase (ALP)] were compared. The result showed that there was no significant difference between sham and surgery groups in 3 h, 24 h, 7 days and 14 days after surgery. When compared to the control group, there were significant increases in concentrations of plasma cortisol, glucose, ALT, AST, total protein and globulin of sham and surgery groups in 3 h after surgery. After 24 h, the levels of plasma cortisol, ALT, AST, total protein, globulin and ALP were elevated in both sham and surgery groups, whereas the levels of plasma glucose had declined to normal level and plasma albumin, cholesterol and triglyceride were significantly decreased in both sham and surgery groups. After 7 days, the levels of plasma glucose, albumin and cholesterol continued to decline, while the level of plasma ALT, globulin and ALP had declined but still remained higher for sham and surgery groups than control group; however, the plasma total protein level had returned to normal. After 14 days, there was no significant difference between the three groups. The above results showed that surgical implantation of ultrasonic transmitters had indeed caused significantly negative effects on the physiological response of bighead carp. However, all the negative influences on stress response, tissue damage and nutritional status had disappeared in 14 days after surgery, and the presence of transmitters had no significant negative impact. Therefore, the bighead carp should be temporary cultured at least 14 days for the recovery of physiological response and then released into the free water for the ultrasonic telemetry research.

分类号: S9

  • 相关文献

[1]Effects of surgically implanted dummy ultrasonic transmitters on growth, survival and transmitter retention of bighead carp Hypophthalmichthys nobilis. Luo, Hongwei,Duan, Xinbin,Wang, Sheng,Liu, Shaoping,Chen, Daqing.

[2]Diagnosing of the nutritional status of 'Newhall' navel orange trees with the method of modified diagnosis and recommendation integrated system (M-DRIS). Huang, Hong,Hu, Chengxiao,Tan, Qiling,Zhao, Xiaohu,Sun, Xuecheng,Hu, Xiaoming,Peng, Liangzhi,Chun, Changpin. 2012

[3]A wheat PI4K gene whose product possesses threonine autophophorylation activity confers tolerance to drought and salt in Arabidopsis. Liu, Pei,Xu, Zhao-Shi,Lu, Pan-Pan,Hu, Di,Chen, Ming,Li, Lian-Cheng,Ma, You-Zhi. 2013

[4]The effect of stocking density on growth and seven physiological parameters with assessment of their potential as stress response indicators for the Atlantic salmon (Salmo salar). Liu, Baoliang,Liu, Ying,Liu, Baoliang,Wang, Xianping. 2015

[5]TaNAC2, a NAC-type wheat transcription factor conferring enhanced multiple abiotic stress tolerances in Arabidopsis. Mao, Xinguo,Zhang, Hongying,Qian, Xueya,Li, Ang,Zhao, Guangyao,Jing, Ruilian.

[6]Transgenic expression of TaMYB2A confers enhanced tolerance to multiple abiotic stresses in Arabidopsis. Mao, Xinguo,Jia, Dongsheng,Li, Ang,Zhang, Hongying,Tian, Shanjun,Jia, Jizeng,Jing, Ruilian,Mao, Xinguo,Jia, Dongsheng,Li, Ang,Zhang, Hongying,Tian, Shanjun,Jia, Jizeng,Jing, Ruilian,Jia, Dongsheng,Zhang, Hongying,Zhang, Xiaoke.

[7]Identification of ERF genes in peanuts and functional analysis of AhERF008 and AhERF019 in abiotic stress response. Wan, Liyun,Wu, Yanshan,Huang, Jiaquan,Lei, Yong,Yan, Liying,Jiang, Huifang,Liao, Boshou,Dai, Xiaofeng,Zhang, Juncheng,Varshney, Rajeev K..

[8]A Novel Pepper (Capsicum annuum L.) WRKY Gene, CaWRKY30, Is Involved in Pathogen Stress Responses. Zheng Jingyuan,Mao Zhenchuan,Xie Bingyan,Zheng Jingyuan,Zou Xuexiao.

[9]Effects of repeated handling and air exposure on the immune response and the disease resistance of gibel carp (Carassius auratus gibelio) over winter. Yang, Bingyuan,Tu, Yongqin,Hu, Huihua,Han, Dong,Zhu, Xiaoming,Jin, Junyan,Yang, Yunxia,Xie, Shouqi,Yang, Bingyuan,Tu, Yongqin,Hu, Huihua,Wang, Cuicui,Han, Dong.

[10]Isolation and characterization of a novel EAR-motif-containing gene GmERF4 from soybean (Glycine max L.). Zhang, Gaiyun,Chen, Xueping,Guo, Jiaming,Chen, Ming,Xu, Zhaoshi,Li, Liancheng,Ma, Youzhi.

[11]Molecular cloning and functional analysis of the drought tolerance gene MsHSP70 from alfalfa (Medicago sativa L.). Li, Zhenyi,Long, Ruicai,Zhang, Tiejun,Wang, Zhen,Zhang, Fan,Yang, Qingchuan,Kang, Junmei,Sun, Yan.

[12]Functions of the ERF transcription factor family in plants. Xu, Zhao-Shi,Chen, Ming,Li, Lian-Cheng,Ma, You-Zhi.

[13]Genome-Wide Analysis of the C3H Zinc Finger Transcription Factor Family and Drought Responses of Members in Aegilops tauschii. Jiang, An-Long,Xu, Zhao-Shi,Zhao, Guang-Yao,Cui, Xiao-Yu,Chen, Ming,Li, Lian-Cheng,Ma, You-Zhi.

[14]Functional identification of apple MdJAZ2 in Arabidopsis with reduced JA-sensitivity and increased stress tolerance. An, Xiu-Hong,Li, En-Mao,Xu, Kai,Cheng, Cun-Gang,Hao, Yu-Jin.

[15]Genome-wide identification, expression profiling, and SSR marker development of the bZIP transcription factor family in Medicago truncatula. Zhang, Zhengshe,Liu, Wenxian,Liu, Zhipeng,Xie, Wengang,Wang, Yanrong,Qi, Xiao,Qi, Xiao.

[16]Comparative Transcriptional Profiling of Melatonin Synthesis and Catabolic Genes Indicates the Possible Role of Melatonin in Developmental and Stress Responses in Rice. Wei, Yunxie,Zeng, Hongqiu,He, Chaozu,Shi, Haitao,Hu, Wei,Chen, Lanzhen. 2016

[17]Roles of the bZIP gene family in rice. E, Z. G.,Zhang, Y. P.,Wang, L.,Wang, L.,Zhou, J. H.,Zhou, J. H.. 2014

[18]Abscisic Acid Antagonizes Ethylene Production through the ABI4-Mediated Transcriptional Repression of ACS4 and ACS8 in Arabidopsis. Dong, Zhijun,Tang, Saijun,Dong, Zhijun,Yu, Yanwen,Li, Shenghui,Wang, Juan,Huang, Rongfeng,Dong, Zhijun,Wang, Juan,Huang, Rongfeng. 2016

[19]Identification and functional characterization of the NAC gene promoter from Populus euphratica. Wang, Jun-Ying,Wang, Jun-Ping,Yang, Hai-Feng.

[20]The ethylene response factor AtERF11 that is transcriptionally modulated by the bZIP transcription factor HY5 is a crucial repressor for ethylene biosynthesis in Arabidopsis. Li, Zhuofu,Zhang, Lixia,Yu, Yanwen,Quan, Ruidang,Zhang, Zhijin,Zhang, Haiwen,Huang, Rongfeng,Li, Zhuofu,Zhang, Lixia,Yu, Yanwen,Quan, Ruidang,Zhang, Zhijin,Zhang, Haiwen,Huang, Rongfeng.

作者其他论文 更多>>