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Relationship Between Weaning Age and Antibiotic Usage on Pig Growth Performance and Mortality

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Journal J Anim Sci
Date 2020 Nov 14
PMID 33188416
Citations 11
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Abstract

A total of 2,184 pigs (DNA 600 × PIC L42) were used to evaluate the effects of weaning age and antibiotic (AB) use on pig performance from weaning to marketing in a commercial production system. Experimental treatments were arranged in a 3 × 2 factorial with main effects of weaning age (18.5, 21.5, or 24.5 d of age) and with the use of ABs or an antibiotic-free (NAE) program. At birth, pigs were ear tagged, and the date of birth and sex recorded. Pigs were weaned from a 4,000-sow farm over four consecutive weeks. Four weaning batches (one per week) of 546 pigs were used. Each weaning batch had one-third of pigs of each weaning age. Pigs were placed in pens by weaning age and then randomly assigned to an AB or NAE program. There were 14 replicate pens per treatment and 26 pigs per pen (13 barrows and 13 gilts). Pigs allocated to the AB program were fed a diet containing 441 mg/kg chlortetracycline (CTC) from day 8 to 21 postweaning. They were also administered 22 mg/kg of body weight (BW) of CTC via drinking water for five consecutive days after a porcine respiratory and reproductive syndrome outbreak during week 7 after weaning. In the first 42 d postweaning, increasing weaning age improved (linear, P < 0.001) BW at day 42, average daily gain (ADG), and average daily feed intake (ADFI). From weaning to 197 d of age, increasing weaning age increased (linear, P < 0.001) ADG and ADFI. Pigs on the AB program had greater (P = 0.031) ADG and ADFI compared with NAE pigs. An interaction (linear, P = 0.005) was observed for feed efficiency (G:F). When ABs were provided, increasing weaning age did not result in any change in G:F; however, in the NAE program, increasing weaning age increased G:F. Pigs on the AB program had lower (P < 0.001) total losses (mortality and removals) than those on the NAE program. Increasing weaning age marginally (linear, P = 0.097) decreased total losses. Increasing weaning age decreased (quadratic, P < 0.001) the number of pigs treated with an injectable AB but the AB program did not (P = 0.238). The weight sold (at 197 d of age) per pig weaned was increased (linear, P = 0.050) by increasing weaning age and by using AB in feed and water (P = 0.019). In summary, increasing weaning age linearly improved most of the pig performance criteria and relatively the short-term use of ABs reduced mortality and removals with both factors contributing to increased weight sold per pig weaned.

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References
1.
Madec F, Bridoux N, Bounaix S, Jestin A . Measurement of digestive disorders in the piglet at weaning and related risk factors. Prev Vet Med. 1998; 35(1):53-72. DOI: 10.1016/s0167-5877(97)00057-3. View

2.
Agga G, Scott H, Amachawadi R, Nagaraja T, Vinasco J, Bai J . Effects of chlortetracycline and copper supplementation on antimicrobial resistance of fecal Escherichia coli from weaned pigs. Prev Vet Med. 2014; 114(3-4):231-46. DOI: 10.1016/j.prevetmed.2014.02.010. View

3.
Dupont N, Diness L, Fertner M, Kristensen C, Stege H . Antimicrobial reduction measures applied in Danish pig herds following the introduction of the "Yellow Card" antimicrobial scheme. Prev Vet Med. 2017; 138:9-16. DOI: 10.1016/j.prevetmed.2016.12.019. View

4.
Alexopoulos C, Fthenakis G, Burriel A, Bourtzi-Hatzopoulou E, Kritas S, Sbiraki A . The effects of the periodical use of in-feed chlortetracycline on the reproductive performance of gilts and sows of a commercial pig farm with a history of clinical and subclinical viral and bacterial infections. Reprod Domest Anim. 2003; 38(3):187-92. DOI: 10.1046/j.1439-0531.2003.00415.x. View

5.
Feldpausch J, Amachawadi R, Tokach M, Scott H, Dritz S, Goodband R . Effects of dietary chlortetracycline, essential oil, and pharmacological Cu and Zn on growth performance of nursery pigs. Transl Anim Sci. 2020; 2(1):62-73. PMC: 7200813. DOI: 10.1093/tas/txx004. View