Mutational Breeding and Genetic Engineering in the Development of High Grain Protein Content

被引:22
作者
Wenefrida, Ida [1 ]
Utomo, Herry S. [1 ]
Linscombe, Steve D. [1 ]
机构
[1] Lousiana State Univ, Ctr Agr, Rice Res Stn, Crowley, LA 70526 USA
关键词
cereals; nutrition; protein; essential amino acids; mutational breeding; genetic engineering; QUANTITATIVE TRAIT LOCI; INCREASED LYSINE SYNTHESIS; TRITICUM-AESTIVUM L; AMINO-ACIDS; DIHYDRODIPICOLINATE SYNTHASE; ARABIDOPSIS-THALIANA; STORAGE PROTEIN; MOLECULAR-BASIS; ZEIN PROTEIN; MAIZE;
D O I
10.1021/jf4016812
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Cereals are the most important crops in the world for both human consumption and animal feed. Improving their nutritional values, such as high protein content, will have significant implications, from establishing healthy lifestyles to helping remediate malnutrition problems worldwide. Besides providing a source of carbohydrate, grain is also a natural source of dietary fiber, vitamins, minerals, specific oils, and other disease-fighting phytocompounds. Even though cereal grains contain relatively little protein compared to legume seeds, they provide protein for the nutrition of humans and livestock that is about 3 times that of legumes. Most cereal seeds lack a few essential amino acids; therefore, they have imbalanced amino acid profiles. Lysine (Lys), threonine (Thr), methionine (Met), and tryptophan (Trp) are among the most critical and are a limiting factor in many grain crops for human nutrition. Tremendous research has been put into the efforts to improve these essential amino acids. Development of high protein content can be outlined in four different approaches through manipulating seed protein bodies, modulating certain biosynthetic pathways to overproduce essential and limiting amino acids, increasing nitrogen relocation to the grain through the introduction of transgenes, and exploiting new genetic variance. Various technologies have been employed to improve protein content including conventional and mutational breeding, genetic engineering, marker-assisted selection, and genomic analysis. Each approach involves a combination of these technologies. Advancements in nutrigenomics and nutrigenetics continue to improve public knowledge at a rapid pace on the importance of specific aspects of food nutrition for optimum fitness and health. An understanding of the molecular basis for human health and genetic predisposition to certain diseases through human genomes enables individuals to personalize their nutritional requirements. It is critically important, therefore, to improve grain protein quality. Highly nutritious grain can be tailored to functional foods to meet the needs for both specific individuals and human populations as a whole.
引用
收藏
页码:11702 / 11710
页数:9
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