Literature DB >> 23508027

Effect of dietary calcium and phosphorus levels on the total tract digestibility of innate and supplemental organic and inorganic microminerals in a corn-soybean meal based diet of grower pigs.

J S Jolliff1, D C Mahan.   

Abstract

The effects of Ca and P (CaP) levels and micromineral sources on mineral digestibility were evaluated in growing pigs. Treatments consisted of 2 levels of CaP and 3 trace mineral (TM) treatments arranged as a 2 × 3 factorial in a randomized complete block design with 8 replicates. The CaP levels evaluated were: 1) 0.65% Ca and 0.55% P [standard CaP (Std CaP)], and 2) 1.00% Ca and 0.85% P (High CaP). The TM treatments were: 1) Basal, without supplemental TM, 2) Basal supplemented with organic TM, and 3) Basal supplemented with inorganic TM. Both organic and inorganic TM premixes added 15 mg Cu, 150 mg Fe, 10 mg Mn, 0.3 mg Se, and 140 mg Zn/kg diet. Diets were formulated using corn soybean meal with a Ca to P ratio of 1.18 in both CaP treatments. Barrows with an initial BW of 45 kg were acclimated to stainless steel metabolism crates where diets were fed for 14 d before a 10-d collection period. Pigs within replicates were fed equivalent amounts of feed at 0800 and 1600 h each day with water provided free choice. Total feces, urine, and feed orts were collected daily. Essential macro- and microminerals were analyzed by inductively coupled plasma analysis. Increasing dietary CaP decreased the digestibility of Ca and Zn. Phosphorus digestibility did not change when the P inclusion level increased from 0.55 to 0.85% Ptotal. The High CaP level resulted in a lower urinary excretion of most minerals, particularly Cu (P < 0.05) and Mn (P < 0.05), as dietary CaP level increased but the others were not statistically significant. A summary of the ATTD for each of the experimental variables was statistically analyzed and averaged for the experiment. Although there were few statistical differences with individual minerals, they generally demonstrated a decline in digestibility when the High CaP was fed, averaging a 3% lower digestibility consistently than when the Std CaP level was fed. Organic TM averaged an approximately 5% greater digestibility than the average inorganic microminerals with the difference between minerals within each source relatively consistent. These results indicate that CaP level had the greatest effect on mineral digestibility, organic microminerals had a greater digestibility than inorganic minerals, and the innate microminerals had an average apparent digestibility of 45%.

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Year:  2013        PMID: 23508027     DOI: 10.2527/jas.2012-5532

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


  4 in total

1.  Effect of replacing inorganic trace minerals at lower organic levels on growth performance, blood parameters, antioxidant status, immune indexes, and fecal mineral excretion in weaned piglets.

Authors:  Wen-Fei Zhang; Min Tian; Jun-Shuai Song; Fang Chen; Gang Lin; Shi-Hai Zhang; Wu-Tai Guan
Journal:  Trop Anim Health Prod       Date:  2021-01-14       Impact factor: 1.559

2.  Optimal dietary copper requirements and relative bioavailability for weanling pigs fed either copper proteinate or tribasic copper chloride.

Authors:  Gang Lin; Yang Guo; Bing Liu; Ruiguo Wang; Xiaoou Su; Dongyou Yu; Pingli He
Journal:  J Anim Sci Biotechnol       Date:  2020-05-22

3.  Dietary maifanite supplementation did not affect the apparent total tract digestibility of calcium and phosphorus in growing pigs.

Authors:  Li Li Bai; Dong Xu Ming; Shu Ren Dong; Zhong Yue Yang; Wen Hui Wang; Shuai Zhang; Xiang Shu Piao; Ling Liu; Feng Lai Wang
Journal:  Asian-Australas J Anim Sci       Date:  2017-05-14       Impact factor: 2.509

4.  Dietary Calcium to Digestible Phosphorus Ratio for Optimal Growth Performance and Bone Mineralization in Growing and Finishing Pigs.

Authors:  Patrick Schlegel; Andreas Gutzwiller
Journal:  Animals (Basel)       Date:  2020-01-21       Impact factor: 2.752

  4 in total

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