Elucidating the mechanism of starch granule initiation in developing wheat grains
Elucidating the mechanism of starch granule initiation in developing wheat grains
批准号:
BB/P010814/1
负责人:
David Seung
金额:
$38.85万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --
中文摘要
尽管淀粉对人类很重要,但我们仍然不完全了解淀粉是如何在植物中产生的。淀粉是一种复杂的碳水化合物,由大量的葡萄糖单元连接在一起形成聚合物,并由植物产生作为能量储存。它存在于大多数植物的叶子中,为夜间生长提供能量,但它也在我们的许多主食中大量积累,如小麦,大米和土豆。因此,淀粉是我们饮食的主要组成部分,但它也是制造各种日常用品,如纸张,纺织品和药品所必需的。充分了解植物如何制造淀粉,将为我们提供新的方法,以提高主食的营养价值,增加健康益处,并提高用于制造的淀粉的质量。淀粉中的聚合物组装成不溶性“颗粒”。虽然我们对淀粉中的聚合物是如何合成的有了很好的了解,但我们还不知道淀粉颗粒的形成过程是如何在植物中开始的。如果不了解颗粒起始过程,我们就无法理解是什么控制着颗粒的数量。颗粒的数量影响颗粒的大小和形状,这强烈影响淀粉在消化过程中以及在制造过程中的行为。在过去的几十年里,研究人员一直在使用模式植物,一种名为拟南芥的小型杂草,以更好地了解淀粉合成过程。最近,我在理解拟南芥叶片中淀粉粒起始方面取得了突破性进展,并鉴定了几个参与该过程的新蛋白。有趣的是,所有这些蛋白质也存在于其他植物中,包括我们的主要作物,如小麦。因此,现在是时候超越模型,将这些新知识应用于我们的作物。这个项目的目的是了解淀粉合成是如何在小麦籽粒发育中启动的。利用小麦遗传学和育种的最新进展,我将找到不具有新发现的参与颗粒起始的蛋白质的功能版本的小麦突变体。然后,我将研究如何在发展中的粮食作为突变的结果,颗粒启动模式的变化。与此同时,我还将通过寻找与现有蛋白质结合的其他蛋白质来发现参与启动谷物中淀粉粒的新蛋白质。我还将研究小麦突变体是否改变了淀粉特性,这对制造食品和非食品产品很重要。这将包括测试从谷物中碾磨的面粉是否改变了消化率,这可能会改变食物的热值。这项研究将有助于英国创新作物的发展,因为它将导致开发具有改变淀粉特性的新小麦品种,这些小麦品种食用起来更健康,或用于制造业的质量更高。
英文摘要
Despite its importance to humankind, we still do not fully understand how starch is made in plants. Starch is a complex carbohydrate that is composed of a large number of glucose units joined together into polymers, and is produced by plants as an energy store. It is found in leaves of most plants where it provides energy for growth at night, but it also accumulates in large amounts in many of our staple foods, such as wheat, rice and potato. Starch is therefore a major component of our diets, but it is also essential in manufacturing a variety of everyday items such as paper, textiles and pharmaceuticals. A full understanding of how plants make starch will lead to new ways of improving the nutritional value of our staple foods, with added health benefits, and also improving the quality of starch used for manufacturing.The polymers in starch assemble into insoluble 'granules'. While we have a good understanding of how the polymers in starch are synthesised, we do not yet understand how the process of making the starch granule begins in the plant. Without this knowledge of the granule initiation process, we can not understand what controls the number of granules that are made. The number of granules affects the size and shape of granules, which strongly influences how starch behaves during digestion, and also during manufacturing processes. Over the last decades, researchers have been using the model plant, a small weed named Arabidopsis thaliana, to better understand the starch synthesis process. Recently, I have made a breakthrough in understanding starch granule initiation in Arabidopsis leaves, and identified several new proteins involved in the process. Interestingly, all of these proteins are also present in other plants, including our staple crops such as wheat. Therefore, it is now time to move beyond the model and apply this new knowledge to our crops. The aim of this project is understand how starch synthesis is initiated in developing wheat grains. Using the latest advances in wheat genetics and breeding, I will find wheat mutants that do not have functional versions of the newly-discovered proteins involved in granule initiation. I will then study how the pattern of granule initiation changes within the developing grain as a result of the mutation. In parallel, I will also aim to discover new proteins involved in initiating starch granules in the grain by finding other proteins that bind to the existing ones. I will also study whether the wheat mutants have altered starch properties that are important for manufacturing food and non-food products. This will include tests for whether the flour milled from the grains have altered digestibility, which may alter the calorific value of foods. This research will contribute to the development of innovative crops in the UK, as it will lead to the development of new wheat varieties with altered starch properties that are healthier to eat, or of higher quality for use in manufacturing.
期刊论文(6)
专著(0)
科研奖励(0)
会议论文
Natural Polymorphisms in Arabidopsis Result in Wide Variation or Loss of the Amylose Component of Starch.
拟南芥中的天然多态性导致淀粉直链淀粉成分的广泛变化或损失。
DOI:
10.1104/pp.19.01062
发表时间:
2020
期刊:
Plant physiology
影响因子:
7.4
作者:
[Seung D]
通讯作者:
Seung D
STARCH SYNTHASE 4 is required for normal starch granule initiation in amyloplasts of wheat endosperm
DOI:
10.1101/2021.01.29.428798
发表时间:
2021-01
期刊:
bioRxiv
影响因子:
--
作者:
[Erica Hawkins;Jiawen Chen;Alexander Watson‐Lazowski;J. Ahn-Jarvis;J. Barclay;B. Fahy;Matthew Hartley-Matthew]
通讯作者:
Erica Hawkins;Jiawen Chen;Alexander Watson‐Lazowski;J. Ahn-Jarvis;J. Barclay;B. Fahy;Matthew Hartley-Matthew
DOI:
10.1093/jxb/erz405
发表时间:
2020-01-01
期刊:
JOURNAL OF EXPERIMENTAL BOTANY
影响因子:
6.9
作者:
[Chia, Tansy, Chirico, Marcella, Trafford, Kay]
通讯作者:
Trafford, Kay
Elucidating the spatial and temporal control of granule initiation in wheat
-
批准号:BB/W01632X/2
-
项目类别:Research Grant
-
资助金额:$26.88万
-
财政年份:2023
-
负责人:David Seung
-
依托单位:
Elucidating the spatial and temporal control of granule initiation in wheat
-
批准号:BB/W015935/1
-
项目类别:Research Grant
-
资助金额:$59.74万
-
财政年份:2022
-
负责人:David Seung
-
依托单位:
Unravelling novel mechanisms of starch granule biogenesis in potato
-
批准号:BB/X001520/1
-
项目类别:Research Grant
-
资助金额:$49.21万
-
财政年份:2022
-
负责人:David Seung
-
依托单位:
国内基金
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