An Integrated Approach to Stabilising HFN in Wheat: Screens Genes & Understanding
An Integrated Approach to Stabilising HFN in Wheat: Screens Genes & Understanding
批准号:
BB/D00733X/1
负责人:
John Snape
金额:
$28.85万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2006
资助国家:
英国
项目状态:
已结题
起止时间:
2006 至 --
中文摘要
该项目的目的是提高哈格伯格下降数(HFN)的稳定性,这是小麦的主要品质性状。HFN目前对一些环境条件很敏感,这些环境条件会降低谷物的质量,使其不适合制作面包,给农民造成严重的经济损失:去年(2004年),英国用于制作面包的小麦作物中只有27%的质量合格,估计每英亩小麦给农民造成100英镑的损失。英国栽培品种对低HFN的易感性各不相同,部分原因是传统的表型筛选难以应用于大量的育种选择群体,但有些品种(例如。选项,马六甲)显然具有足够的遗传抗性。HFN的推荐列表得分依赖于适宜的天气条件的发生来触发潜在易感性,或者依赖于顶灌来激发收获前发芽(McVittie J & Draper S(1982)),或者依赖于灌溉冬小麦的立地来评估品种对收获前发芽的易感性。j . Natn。植物学报,16:45-48)。该项目的一个关键目标是提供新的工具和生物学见解,使育种者能够从可用的英国优质种质中识别出具有稳定HFN的新品系。现有的抗性品种在田间播种中没有出现出苗问题,这表明这一目标与迅速建立林分是相容的。申请人先前的研究表明,英国谷物中α -淀粉酶水平高的两个最重要原因是收获前发芽(PHS)和早熟α -淀粉酶(PMA)。小灵通是籽粒在穗内过早发芽的结果,在成熟和收获之间的湿润天气促进了敏感品种的萌发。由此产生的α -淀粉酶分泌到淀粉胚乳中,导致谷物品质的恶化,这可以通过HFN试验来测量。PMA的定义不太明确,但被认为是由于在籽粒发育后期,胚乳皱褶区域的糊粉层不适当地产生α -淀粉酶。在BBSRC资助的LINK项目目标范围内,我们打算研究小麦籽粒中在小灵通和PMA期间导致HFN减少的生化和分子事件。来自模式物种的分子遗传信息将用于提供与发芽势/胚乳发育相关的“候选基因”。这些将用于种子发育过程中与小灵通/PMA相关的功能测试。对现有种质中候选基因的表达特征和遗传变异的表征,以及“智能筛选”和经过验证的遗传标记的开发,将为英国小麦育种者提供资源,以创造具有更稳定HFN的改良品种。该项目将解决BBSRC整合生物学和可持续农业战略计划目标的几个组成部分,包括“功能和比较基因组学”、“整合生物学-植物”、“转录组学”、“整个生物体生物学”和“可持续农业”。它的目标是提供一个“管道”,将从模式物种研究中获得的信息传递到用于增强种质育种的工具,这是最近BBSRC作物科学评论的一个关键建议。
英文摘要
The aim of this project is to improve stability of the Hagberg Falling Number (HFN), a major quality trait in wheat. HFN is currently sensitive to a number of environmental conditions that reduce the quality of grain and make it unsuitable for bread-making, resulting in severe financial losses to farmers: last year (2004) only 27% of the UK wheat crop grown for bread-making was of acceptable quality, with an estimated loss to farmers of £100 per acre of wheat grown. UK cultivars vary in their susceptibility to low HFN, partly due to the difficulty of applying conventional phenotypic screens to large populations of breeding selections, but some (eg. Option, Malacca) evidently carry adequate genetic resistance. Recommended List scores for HFN rely on the occurrence of appropriate weather conditions to trigger latent susceptibility or overhead irrigation to provoke pre-harvest sprouting (McVittie J & Draper S (1982) or irrigation of standing plots of winter wheat in order to assess varietal predisposition to pre-harvest sprouting. J. Natn. Inst. Bot. 16: 45-48). A key aim of this project is to furnish new tools and biological insights to enable breeders to identify new lines with stable HFN from the available pool of elite UK germplasm. The fact that existing resistant cultivars do not manifest problems with emergence in field sowings indicates that this aim is compatible with prompt stand establishment. Previous research by the applicants has shown that the two most important causes of high alpha-amylase levels in UK grain are pre-harvest sprouting (PHS) and pre-maturity alpha-amylase (PMA). PHS is the result of premature germination of grain in the ear, promoted in susceptible varieties by wet weather in the period between maturity and harvest. The consequent secretion of alpha-amylases into the starchy endosperm results in the deterioration in grain quality that is measured by the HFN test. PMA is less well defined, but is believed to result from inappropriate production of alpha-amylases by the aleurone layer in the crease region of the endosperm, late in grain development. Within the BBSRC financed objectives of this LINK project we intend to study the biochemical and molecular events in the wheat grain that are responsible for reduction of HFN during both PHS and PMA. Molecular genetic information from model species will be used to provide 'candidate genes' associated with germination potential/ endosperm development. These will be used for testing of function during seed development in relation to PHS/PMA. The characterisation of expression characteristics and genetic variation of candidate genes in existing germplasm, and the development of 'smart screens' and validated genetic markers will provide UK wheat breeders with resources to create improved varieties with more stable HFN. This project will address several components of the BBSRC strategic plan objectives for integrative biology and sustainable agriculture, including 'functional and comparative genomics', 'integrative biology-plant', 'transcriptomics', 'whole organism biology' and 'sustainable agriculture'. It will aim to provide a 'pipeline' for the delivery of information gained from studies in model species to tools for use to enhance breeding germplasm, a key recommendation of the recent BBSRC Crop Science Review.
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