Literature DB >> 19087442

Phytate and phytase: consequences for protein utilisation.

P H Selle1, V Ravindran, A Caldwell, W L Bryden.   

Abstract

The excretion of large amounts of P in effluent from intensive pig and poultry units is indicative of the poor availability of phytate-bound P in plant-derived feed ingredients. This environmental problem prompted the development and acceptance of microbial phytase feed enzymes for single-stomached animals. Their introduction led to an increasing recognition that phytate may have adverse effects on protein utilisation in addition to P. Consequently, the nutritional relevance of protein-phytate interactions for pigs and poultry is considered in the present review. Since the current understanding of the effects of protein-phytate interactions comes mainly from responses obtained to added phytase, literature on the influence of microbial phytases on amino acid digestibility and utilisation is summarised, followed by a discussion of possible mechanisms contributing to the negative effects of phytate. However, the rationale for the protein responses to added phytase remains largely speculative, and several modes of action are probably involved. It may be that the release of protein from protein-phytate complexes occurring naturally in feed ingredients, the prevention of formation of binary and ternary protein-phytate complexes within the gut, the alleviation of the negative impact of phytate on digestive enzymes and the reduction in endogenous amino acid losses are all contributing factors. A better understanding of the mechanisms of protein-phytate interactions and the modes of action of exogenous phytase enzymes is clearly desirable. Studies are also needed to identify and quantify the factors that contribute to the variable amino acid responses to added phytase. It appears that the relative solubilities of phytate salts and proteins from different feed ingredients and their effects on the extent of protein-phytate complex formation, coupled with variations in the effectiveness of phytase in different dietary contexts, may be the major factors responsible.

Entities:  

Year:  2000        PMID: 19087442     DOI: 10.1079/095442200108729098

Source DB:  PubMed          Journal:  Nutr Res Rev        ISSN: 0954-4224            Impact factor:   7.800


  28 in total

1.  Interactive effects of phosphorus, calcium, and phytase supplements on products of phytate degradation in the digestive tract of broiler chickens.

Authors:  V Sommerfeld; M Schollenberger; I Kühn; M Rodehutscord
Journal:  Poult Sci       Date:  2018-04-01       Impact factor: 3.352

2.  Extracellular phytase from Aspergillus niger CFR 335: purification and characterization.

Authors:  B S Gunashree; G Venkateswaran
Journal:  J Food Sci Technol       Date:  2014-08-06       Impact factor: 2.701

3.  Evaluating phosphorus release by phytase in diets fed to growing pigs that are not deficient in phosphorus.

Authors:  Kristin M Olsen; Stacie A Gould; Carrie L Walk; Nick V L Serão; Stephanie L Hansen; John F Patience
Journal:  J Anim Sci       Date:  2019-01-01       Impact factor: 3.159

4.  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

5.  Regulation of Soluble Phosphate on the Ability of Phytate Mineralization and β-Propeller Phytase Gene Expression of Pseudomonas fluorescens JZ-DZ1, a Phytate-Mineralizing Rhizobacterium.

Authors:  Lan Shen; Xiao-Qin Wu; Qing-Wei Zeng; Hong-Bin Liu
Journal:  Curr Microbiol       Date:  2016-09-24       Impact factor: 2.188

6.  Effects of a multi-enzyme complex on growth performance, nutrient utilization and bone mineralization of meat duck.

Authors:  Qiufeng Zeng; Xueqin Huang; Yuheng Luo; Xuemei Ding; Shiping Bai; Jianping Wang; Yue Xuan; Zhuowei Su; Yonggang Liu; Keying Zhang
Journal:  J Anim Sci Biotechnol       Date:  2015-04-08

7.  Effects of Adding Super Dose Phytase to the Phosphorus-deficient Diets of Young Pigs on Growth Performance, Bone Quality, Minerals and Amino Acids Digestibilities.

Authors:  Z K Zeng; D Wang; X S Piao; P F Li; H Y Zhang; C X Shi; S K Yu
Journal:  Asian-Australas J Anim Sci       Date:  2014-02       Impact factor: 2.509

Review 8.  Phytase in non-ruminant animal nutrition: a critical review on phytase activities in the gastrointestinal tract and influencing factors.

Authors:  Yueming Dersjant-Li; Ajay Awati; Hagen Schulze; Gary Partridge
Journal:  J Sci Food Agric       Date:  2014-12-19       Impact factor: 3.638

9.  Efficacy of New 6-Phytase from Buttiauxella spp. on Growth Performance and Nutrient Retention in Broiler Chickens Fed Corn Soybean Meal-based Diets.

Authors:  E Kiarie; T Woyengo; C M Nyachoti
Journal:  Asian-Australas J Anim Sci       Date:  2015-10       Impact factor: 2.509

10.  Coexpression and secretion of endoglucanase and phytase genes in Lactobacillus reuteri.

Authors:  Lei Wang; Yuxin Yang; Bei Cai; Pinghua Cao; Mingming Yang; Yulin Chen
Journal:  Int J Mol Sci       Date:  2014-07-21       Impact factor: 5.923

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