Literature DB >> 27898918

Particle size of calcium carbonate does not affect apparent and standardized total tract digestibility of calcium, retention of calcium, or growth performance of growing pigs.

L A Merriman, H H Stein.   

Abstract

Two experiments were conducted to evaluate particle size of calcium carbonate used in diets fed to growing pigs. Experiment 1 was conducted to determine apparent total tract digestibility (ATTD), standardized total tract digestibility (STTD), and retention of Ca among diets containing calcium carbonate produced to different particle sizes, and Exp. 2 was conducted to determine if growth performance of weanling pigs is affected by particle size of calcium carbonate. In Exp. 1, 4 diets based on corn and potato protein isolate were formulated to contain 0.70% Ca and 0.33% standardized total tract digestible P, but the calcium carbonate used in the diets was ground to 4 different particle sizes (200, 500, 700, or 1,125 μm). A Ca-free diet was formulated to determine basal endogenous losses of Ca. In Exp. 2, 4 diets were based on corn and soybean meal and the only difference among diets was that each diet contained calcium carbonate ground to the 4 particle sizes used in Exp. 1. In Exp. 1, 40 barrows (15.42 ± 0.70 kg initial BW) were allotted to the 5 diets with 8 replicate pigs per diet using a randomized complete block design, and in Exp. 2, 128 pigs with an initial BW of 9.61 ± 0.09 kg were randomly allotted to 4 experimental diets. Results of Exp. 1 indicated that basal endogenous losses of Ca were 0.329 g/kg DMI. The ATTD of Ca was 70.0 ± 3.2, 74.3 ± 2.7, 70.0 ± 2.9, and 72.1 ± 2.7 and the STTD of Ca was 74.2 ± 3.2, 78.5 ± 2.7, 74.1 ± 2.9, and 76.2 ± 2.7 for calcium carbonate ground to 200, 500, 700, or 1,125 μm, respectively. Retention of Ca was 67.4 ± 3.1, 70.4 ± 2.6, 63.9 ± 2.8, and 67.2 ± 2.2 for diets containing calcium carbonate ground to 200, 500, 700, or 1,125 μm, respectively. There were no differences among diets for ATTD of Ca, STTD of Ca, or retention of Ca. The ATTD of P was 64.5 ± 1.7, 66.8 ± 2.6, 64.2 ± 3.0, and 63.2 ± 1.7% and retention of P was 61.4 ± 1.4, 63.8 ± 2.8, 61.9 ± 2.8, and 60.9 ± 1.5 for diets containing calcium carbonate ground to 200, 500, 700, or 1,125 μm, respectively. Neither ATTD of P nor retention of P was influenced by the particle size of calcium carbonate. Results of Exp. 2 indicated that ADG, ADFI, and G:F were not impacted by the particle size of calcium carbonate. In conclusion, particle size of calcium carbonate did not affect ATTD of Ca, STTD of Ca, or retention of Ca; ATTD of P or retention of P; or growth performance of pigs. Any particle size of calcium carbonate in the range from 200 to 1,125 μm can therefore be used in diets fed to pigs.

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Year:  2016        PMID: 27898918     DOI: 10.2527/jas.2015-0252

Source DB:  PubMed          Journal:  J Anim Sci        ISSN: 0021-8812            Impact factor:   3.159


  10 in total

1.  Basal endogenous loss, standardized total tract digestibility of calcium in calcium carbonate, and retention of calcium in gestating sows change during gestation, but microbial phytase reduces basal endogenous loss of calcium1.

Authors:  Su A Lee; L Vanessa Lagos; Carrie L Walk; Hans H Stein
Journal:  J Anim Sci       Date:  2019-04-03       Impact factor: 3.159

2.  Inclusion of excess dietary calcium in diets for 100- to 130-kg growing pigs reduces feed intake and daily gain if dietary phosphorus is at or below the requirement.

Authors:  L A Merriman; C L Walk; M R Murphy; C M Parsons; H H Stein
Journal:  J Anim Sci       Date:  2017-12       Impact factor: 3.159

3.  Effect of limestone solubility on mineral digestibility and bone ash in nursery pigs fed diets containing graded level of inorganic phosphorus or increasing dose of a novel consensus bacterial 6-phytase variant.

Authors:  Deepak E Velayudhan; Arun Kumar; Leon Marchal; Yuemig Dersjant-Li
Journal:  J Anim Sci       Date:  2022-06-01       Impact factor: 3.338

4.  Increasing calcium from deficient to adequate concentration in diets for gestating sows decreases digestibility of phosphorus and reduces serum concentration of a bone resorption biomarker.

Authors:  Su A Lee; L Vanessa Lagos; Mike R Bedford; Hans H Stein
Journal:  J Anim Sci       Date:  2020-03-01       Impact factor: 3.159

5.  Torula yeast has greater digestibility of amino acids and phosphorus, but not energy, compared with a commercial source of fish meal fed to weanling pigs.

Authors:  L Vanessa Lagos; Hans H Stein
Journal:  J Anim Sci       Date:  2020-01-01       Impact factor: 3.159

6.  Effects of a novel E. coli phytase expressed in Pseudomonas fluorescens on growth, bone mineralization, and nutrient digestibility in pigs fed corn-soybean meal diets.

Authors:  Ping Ren; Laia Blavi; Caroline González-Vega; Yanhong Liu; Deana Hancock; Mercedes Vazquez-Añón; Ferdinando N Almeida; Hans H Stein
Journal:  Transl Anim Sci       Date:  2020-11-04

Review 7.  Dietary Phosphorus and Calcium Utilization in Growing Pigs: Requirements and Improvements.

Authors:  Marion Lautrou; Agnès Narcy; Jean-Yves Dourmad; Candido Pomar; Philippe Schmidely; Marie-Pierre Létourneau Montminy
Journal:  Front Vet Sci       Date:  2021-11-24

8.  Do not neglect calcium: a systematic review and meta-analysis (meta-regression) of its digestibility and utilisation in growing and finishing pigs.

Authors:  Maciej M Misiura; João A N Filipe; Carrie L Walk; Ilias Kyriazakis
Journal:  Br J Nutr       Date:  2018-04-03       Impact factor: 3.718

Review 9.  Techniques for evaluating digestibility of energy, amino acids, phosphorus, and calcium in feed ingredients for pigs.

Authors:  Fengrui Zhang; Olayiwola Adeola
Journal:  Anim Nutr       Date:  2017-07-08

10.  Interactive Effects of Copper Sources and a High Level of Phytase in Phosphorus-Deficient Diets on Growth Performance, Nutrient Digestibility, Tissue Mineral Concentrations, and Plasma Parameters in Nursery Pigs.

Authors:  Ping Ren; Juxing Chen; Deana Hancock; Mercedes Vazquez-Añón
Journal:  Biol Trace Elem Res       Date:  2021-01-11       Impact factor: 3.738

  10 in total

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