Bioimpedance assessment of body composition in cobia Rachycentron canadum (L. 1766)

被引:29
作者
Duncan, M. [1 ]
Craig, S. R. [1 ]
Lunger, Angela N. [1 ]
Kuhn, D. D. [1 ]
Salze, G. [1 ]
McLean, E. [1 ]
机构
[1] Virginia Tech, Aquaculture Ctr, Blacksburg, VA 24061 USA
关键词
BIA; bioimpedance analysis; non-destructive; protein; moisture; regression;
D O I
10.1016/j.aquaculture.2007.06.002
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Sixty juvenile cobia (Rachycentron canadum; 28.3 +/- 0.13 g wet wt) were randomly distributed into each of 12 tanks in a recirculation unit (n = 5 tank(-1)). Fish were fed one of two diets (47:8 or 47:20 protein: lipid) at 6-8% body wt d(-1) for 6 weeks. Each week, the composition of fish (n=5) from each dietary treatment was calculated by measuring the impedance (resistance and reactance) of a current (x mu A AC and kHz) passed through a live animal. Electrodes were positioned at morphologically discrete points on the dorsal left hand side of the animal. After bioimpedance (BIA) assessment, the identical fish were sacrificed and their body composition determined using traditional, chemical methods. Results generated by chemical analyses were regressed against BIA data. Linear regression analysis was performed utilizing compositional analysis (protein, lipid and ash) as the observed values and BIA assessment for the predicted. Regressions for each body composition parameter produced high correlations in all relationships: resistance (in parallel) and protein (adj. R-2=0.9569), resistance (in parallel) and total body water (adj. R-2=0.9894), reactance (in parallel) and total body ash (adj. R-2=0.8547), reactance (in series) and dry matter (adj. R-2=0.9272) and reactance (in series) and fat-free mass (adj. R-2=0.9916). The F value tests (P < 0.0001) revealed significant correlations between the independent and dependent variables for each body composition parameter. Correlations for each regression indicate strong linear relationships between impedance and proximate analysis variables with values of 1: 1. This indicates that this BIA methodology can be utilized as an inexpensive, non-lethal, on the farm determination of proximate composition. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:432 / 438
页数:7
相关论文
共 48 条
[1]  
[AOAC] Association of Official Agricultural Chemists, 1994, OFF METH AN
[2]   Structural and ultrastructural changes on muscle tissue of sea bass, Dicentrarchus labrax L., after cooking and freezing [J].
Ayala, MD ;
Albors, OL ;
Blanco, A ;
Alcázar, AG ;
Abellán, E ;
Zarzosa, GR ;
Gil, F .
AQUACULTURE, 2005, 250 (1-2) :215-231
[3]  
BAI SC, 1994, PROG FISH CULT, V56, P232, DOI 10.1577/1548-8640(1994)056<0232:TBECFN>2.3.CO
[4]  
2
[5]   THE EFFECTS OF FAT-CONTENT AND STORAGE-TEMPERATURE ON THE STORAGE LIFE OF SMOKED SARDINE FILLETS (SARDINA-PILCHARDUS W) PREPARED FROM FROZEN SARDINE [J].
BELTRAN, A ;
MORAL, A .
FOOD CHEMISTRY, 1991, 42 (03) :347-356
[6]  
Berg EP, 1996, J ANIM SCI, V74, P2672
[7]   Evaluation of bioelectric impedance to predict carcass yield, carcass composition, and fillet composition in farm-raised catfish [J].
Bosworth, BG ;
Wolters, WR .
JOURNAL OF THE WORLD AQUACULTURE SOCIETY, 2001, 32 (01) :72-78
[8]   Bioelectrical impedance analysis as a means of estimating total body water in grey seals [J].
Bowen, WD ;
Beck, CA ;
Iverson, SJ .
CANADIAN JOURNAL OF ZOOLOGY-REVUE CANADIENNE DE ZOOLOGIE, 1999, 77 (03) :418-422
[9]  
Brown M. L., 1993, Aquaculture and Fisheries Management, V24, P585, DOI 10.1111/j.1365-2109.1993.tb00634.x
[10]  
CALLOW EH, 1936, 75 FOOD INV BOARD DE, P75