Improving wheat as a source of iron and zinc for global nutrition
Улучшение пшеницы как источника железа и цинка для глобального питания
2019-01-14
SCID: 54.1/h863cptu
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genetic variationiron and zinc bioavailabilitymineral-rich branphytateswheat biofortification
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Abstract (AI)
Wheat is the staple food crop in temperate countries and increasingly consumed in developing countries, displacing traditional foods. However, wheat products are typically low in bioavailable iron and zinc, contributing to deficiencies in these micronutrients in countries where wheat is consumed as a staple food. Two factors contribute to the low contents of bioavailable iron and zinc in wheat: the low concentrations of these minerals in white flour, which is most widely consumed, and the presence of phytates in mineral-rich bran fractions. Although high zinc types of wheat have been developed by conventional plant breeding (biofortification), this approach has failed for iron. However, studies in wheat and other cereals have shown that transgenic (also known as genetically modified; GM) strategies can be used to increase the contents of iron and zinc in white flour, by converting the starchy endosperm tissue into a 'sink' for minerals. Although such strategies currently have low acceptability, greater understanding of the mechanisms which control the transport and deposition of iron and zinc in the developing grain should allow similar effects to be achieved by exploiting naturally induced genetic variation. When combined with conventional biofortification and innovative processing, this approach should provide increased mineral bioavailability in a range of wheat products, from white flour to wholemeal.
Key Findings
1
Combining genetic biofortification with innovative processing may increase iron and zinc bioavailability across white-flour and wholemeal wheat products.
2
Conventional biofortification has developed high-zinc wheat varieties but has not successfully increased wheat iron concentrations.
3
Transgenic strategies can increase iron and zinc in white flour by converting the starchy endosperm into a mineral sink.
4
Understanding genetic mechanisms controlling mineral transport and deposition could enable similar improvements through naturally induced genetic variation.
5
Wheat-based diets can contribute to iron and zinc deficiencies because white flour contains low mineral concentrations and bran contains mineral-binding phytates.
Research Object
wheat grain and wheat-derived flour products
Research Subject
iron and zinc concentrations, transport, deposition, and bioavailability in wheat grain and flour, including strategies for increasing their nutritional value
Publication Details
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2019-01-14
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