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首页> 外文期刊>Animal Feed Science and Technology >Genetic variability in cereal carbohydrate compositions and potentials for improving nutritional value.
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Genetic variability in cereal carbohydrate compositions and potentials for improving nutritional value.

机译:谷物碳水化合物组成的遗传变异性以及提高营养价值的潜力。

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摘要

Mono-gastric animals and ruminants require cereal starch with different degradation characteristics because they degrade and utilize starch differently. Characteristics affecting starch digestion are the amylose/amylopectin ratio, proportion A-/B-starch granules, starch granule shape, crystallinity, lipid content, nature of the protein matrix surrounding starch granules and the overall architecture of the starch granules. These are all characteristics of cereal grain that can vary within species according to genotype, and can be manipulated through plant breeding. A large collection of barley mutants affecting the endosperm phenotype is available and constitutes an enormous potential resource to improve nutritive values of cereals tailored for different nutritional purposes. In the starchy endosperm, starch biosynthesis is characterised by a committed pathway of different enzyme classes, and all together 14 different isoform classes are found in higher plants with specific functions. A wide genetic variation in starch polymer composition could therefore be obtained by searching for mutations in these genes. However, while the starch biosynthetic pathways are well known, the biosynthetic pathway of beta -glucan and the accumulation in endosperm cell walls are poorly understood. Some interesting barley mutants exist that combine low starch synthesis with excessive beta -glucans synthesis completely or partly compensating for the decrease in starch formation. Recent knowledge on the biosynthesis of starch together with methods in biotechnology and bioinformatics, molecular genetics and comparative genomics have opened new possibilities to provide a more complete understanding of starch synthesis as well as synthesis of beta -glucan. In this review, knowledge on carbohydrate biosynthesis and the use of new biotechnological methods, are coupled with animal feed science to reveal the potential for optimizing feed nutritional value through plant breeding. This can as well be exploited to obtain cereal-based food with less starch and more beta -glucan that may be of major importance in low calorie foods for human nutrition..
机译:单胃动物和反刍动物需要具有不同降解特性的谷物淀粉,因为它们降解和利用淀粉的方式不同。影响淀粉消化的特征是直链淀粉/支链淀粉的比例,A- / B淀粉颗粒的比例,淀粉颗粒的形状,结晶度,脂质含量,围绕淀粉颗粒的蛋白质基质的性质以及淀粉颗粒的整体结构。这些都是谷物的特征,可以根据基因型在种内变化,并且可以通过植物育种来操纵。有大量影响胚乳表型的大麦突变体可供使用,并且构成了巨大的潜在资源,可提高为不同营养目的量身定制的谷物的营养价值。在含淀粉的胚乳中,淀粉生物合成的特征在于不同酶类别的固定途径,在具有特定功能的高等植物中共发现14种不同的同工型。因此,通过寻找这些基因中的突变,可以获得淀粉聚合物组成的广泛遗传变异。然而,尽管淀粉的生物合成途径是众所周知的,但是对β-葡聚糖的生物合成途径和在胚乳细胞壁中的积累了解甚少。存在一些有趣的大麦突变体,其将低淀粉合成与过量的β-葡聚糖合成相结合,以完全或部分补偿淀粉形成的减少。关于淀粉生物合成的最新知识以及生物技术和生物信息学,分子遗传学和比较基因组学的方法,为提供对淀粉合成以及β-葡聚糖合成的更完整的理解开辟了新的可能性。在这篇综述中,有关碳水化合物生物合成的知识和新生物技术方法的使用与动物饲料科学相结合,揭示了通过植物育种优化饲料营养价值的潜力。还可以利用它来获得谷物食品,其中淀粉含量较低,而β-葡聚糖含量较高,这对于人类营养的低卡路里食品可能至关重要。

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