» Articles » PMID: 27165030

Genetic Parameters for Residual Feed Intake in a Random Population of Pekin Duck

Overview
Date 2016 May 12
PMID 27165030
Citations 15
Authors
Affiliations
Soon will be listed here.
Abstract

Objective: The feed intake (FI) and feed efficiency are economically important traits in ducks. To obtain insight into this economically important trait, we designed an experiment based on the residual feed intake (RFI) and feed conversion ratio (FCR) of a random population Pekin duck.

Methods: Two thousand and twenty pedigreed random population Pekin ducks were established from 90 males mated to 450 females in two hatches. Traits analyzed in the study were body weight at the 42th day (BW42), 15 to 42 days average daily gain (ADG), 15 to 42 days FI, 15 to 42 days FCR, and 15 to 42 days RFI to assess their genetic inter-relationships. The genetic parameters for feed efficiency traits were estimated using restricted maximum likelihood (REML) methodology applied to a sire-dam model for all traits using the ASREML software.

Results: Estimates heritability of BW42, ADG, FI, FCR, and RFI were 0.39, 0.38, 0.33, 0.38, and 0.41, respectively. The genetic correlation was high between RFI and FI (0.77) and moderate between RFI and FCR (0.54). The genetic correlation was high and moderate between FCR and ADG (-0.80), and between FCR and BW42 (-0.64), and between FCR and FI (0.49), respectively.

Conclusion: Thus, selection on RFI was expected to improve feed efficiency, and reduce FI. Selection on RFI thus improves the feed efficiency of animals without impairing their FI and increase growth rate.

Citing Articles

A meta-analysis of genetic estimates for economically important traits in ducks.

Ghavi Hossein-Zadeh N Vet Anim Sci. 2024; 26:100405.

PMID: 39568627 PMC: 11576399. DOI: 10.1016/j.vas.2024.100405.


Genetic parameters and genomic prediction of growth and breast morphological traits in a crossbreed duck population.

Cai W, Hu J, Fan W, Xu Y, Tang J, Xie M Evol Appl. 2024; 17(2):e13638.

PMID: 38333555 PMC: 10848588. DOI: 10.1111/eva.13638.


Impact of divergence of residual feed intake on triglyceride metabolism-related gene expression in meat-type ducks.

Shui F, Qiu G, Pan S, Wang X, Jiang T, Geng Z PLoS One. 2023; 18(5):e0286051.

PMID: 37216344 PMC: 10202274. DOI: 10.1371/journal.pone.0286051.


Multi-transcriptomics reveals RLMF axis-mediated signaling molecules associated with bovine feed efficiency.

Yang C, Ding Y, Dan X, Shi Y, Kang X Front Vet Sci. 2023; 10:1090517.

PMID: 37035824 PMC: 10073569. DOI: 10.3389/fvets.2023.1090517.


Effect of genotype of growing rabbits on productive performance with special reference to residual feed intake at hot temperature.

Fathi M, Abdelsalam M, Al-Homidan I, Abou-Emera O, Rayan G Anim Biosci. 2023; 36(7):1067-1074.

PMID: 36915924 PMC: 10330992. DOI: 10.5713/ab.22.0355.


References
1.
Cai W, Casey D, Dekkers J . Selection response and genetic parameters for residual feed intake in Yorkshire swine. J Anim Sci. 2007; 86(2):287-98. DOI: 10.2527/jas.2007-0396. View

2.
Le Naou T, Le Floch N, Louveau I, Gilbert H, Gondret F . Metabolic changes and tissue responses to selection on residual feed intake in growing pigs. J Anim Sci. 2012; 90(13):4771-80. DOI: 10.2527/jas.2012-5226. View

3.
Fan B, Lkhagvadorj S, Cai W, Young J, Smith R, Dekkers J . Identification of genetic markers associated with residual feed intake and meat quality traits in the pig. Meat Sci. 2010; 84(4):645-50. DOI: 10.1016/j.meatsci.2009.10.025. View

4.
Aggrey S, Karnuah A, Sebastian B, Anthony N . Genetic properties of feed efficiency parameters in meat-type chickens. Genet Sel Evol. 2010; 42:25. PMC: 2901204. DOI: 10.1186/1297-9686-42-25. View

5.
Durunna O, Colazo M, Ambrose D, McCartney D, Baron V, Basarab J . Evidence of residual feed intake reranking in crossbred replacement heifers. J Anim Sci. 2011; 90(3):734-41. DOI: 10.2527/jas.2011-4264. View