Development and molecular characterization of wheat –Aegilops kotschyiaddition and substitution lines with high grain protein, iron, and zinc

Author:

Rawat Nidhi12,Neelam Kumari13,Tiwari Vijay K.14,Randhawa Gursharn S.1,Friebe Bernd2,Gill Bikram S.2,Dhaliwal Harcharan S.15

Affiliation:

1. Department of Biotechnology, Indian Institute of Technology Roorkee, Roorkee 247667, Uttarakhand, India.

2. Plant Pathology Department, Kansas State University, Manhattan, KS 66506-5502, USA.

3. Department of Crop Science, North Carolina State University, Raleigh, NC 27695-7620, USA.

4. Department of Crop and Soil Science, Oregon State University, Corvallis, OR 97331-3002, USA.

5. Akal School of Biotechnology, Eternal University, Sirmour, Himachal Pradesh 173 101, India.

Abstract

Over two billion people, depending largely on staple foods, suffer from deficiencies in protein and some micronutrients such as iron and zinc. Among various approaches to overcome protein and micronutrient deficiencies, biofortification through a combination of conventional and molecular breeding methods is the most feasible, cheapest, and sustainable approach. An interspecific cross was made between the wheat cultivar ‘Chinese Spring’ and Aegilops kotschyi Boiss. accession 396, which has a threefold higher grain iron and zinc concentrations and about 33% higher protein concentration than wheat cultivars. Recurrent backcrossing and selection for the micronutrient content was performed at each generation. Thirteen derivatives with high grain iron and zinc concentrations and contents, ash and ash micronutrients, and protein were analyzed for alien introgression. Morphological markers, high molecular weight glutenin subunit profiles, anchored wheat microsatellite markers, and GISH showed that addition and substitution of homoeologous groups 1, 2, and 7 chromosomes of Ae. kotschyi possess gene(s) for high grain micronutrients. The addition of 1U/1S had high molecular weight glutenin subunits with higher molecular weight than those of wheat, and the addition of 2S in most of the derivatives also enhanced grain protein content by over 20%. Low grain protein content in a derivative with a 2S-wheat translocation, waxy leaves, and absence of the gdm148 marker strongly suggests that the gene for higher grain protein content on chromosome 2S is orthologous to the grain protein QTL on the short arm of group 2 chromosomes.

Publisher

Canadian Science Publishing

Subject

Genetics,Molecular Biology,General Medicine,Biotechnology

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