Unravelling the diversity and function of fine root endophytes
Unravelling the diversity and function of fine root endophytes
批准号:
NE/S009949/2
负责人:
Robert Griffiths
金额:
$5.8万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2019
资助国家:
英国
项目状态:
已结题
起止时间:
2019 至 --
中文摘要
植物与不同的微生物群落相互作用,这些微生物群落构成了植物的微生物组,并对植物的生长发育产生重大影响。在大多数生态系统中,微生物组以菌根共生为主,其中植物为真菌提供糖和脂质,以换取真菌从土壤中吸收的营养。最广泛的菌根共生是丛枝菌根(AM)型,通过其在生物地球化学循环和支持植物群落多样性和生产力方面的作用,被认为是生态系统过程的关键决定因素。直到最近,人们认为形成AM的真菌包括肾小球菌门,我们对AM生态系统作用的理解几乎完全基于这组真菌。然而,我们最近表明,形成独特的“细根内生菌(FRE)”AM形态的真菌是Mucoromycota门内内生目的成员,因此AM共生实际上是由7亿年前分化的两个不同的真菌群形成的。虽然我们知道FREs在全球分布,并且在生态系统中可能丰富,但我们对所涉及的真菌的多样性,生态学或生态系统功能几乎一无所知。然而,有证据表明,FRE和Glomeromycota与环境具有截然不同的相互作用,可能在生态系统中发挥不同的功能作用。在这个项目中,我们将使用作为NERC乡村调查的一部分收集的现有DNA档案来确定英国主要栖息地类型中FREs的多样性和丰度,并比较决定FREs和Glomeromycota分布的环境,植被和气候因素。目前,FRE是一种“黑暗真菌”,只被称为环境序列。我们的研究表明,FREs代表了多个物种,我们将与澳大利亚和瑞典的研究人员合作,根据它们的遗传学和形态学来定义这些物种,并确定它们具有全球分布模式的程度。我们有证据表明,FREs和肾小球菌与土壤磷有不同的相互作用,在磷有效性很低的条件下,FREs更丰富。我们将与爱尔兰研究人员合作,利用韦克斯福德独特的50年牧场实验,研究土壤磷状况如何影响FREs的多样性和丰度。我们将确定FREs是否作为促进植物生长和营养供应的共生共生体,类似于肾小球菌与其寄主植物的相互作用。该项目的一个关键部分将是汇编fre的基因组,并利用这些基因组来了解fre在生态系统中的功能角色,以及决定它们在生态系统中的分布的相互作用。由于FRE不能在没有植物的情况下生长,或者在纯培养条件下生长,我们将利用新兴的长读DNA测序技术,该技术现在为直接从环境宏基因组中提取的DNA组装FRE基因组提供了令人兴奋的可能性。除了提供对FREs形成的AM的多样性和功能的基本理解外,我们还将提供技术进步,这将有助于我们描述微生物真核生物(如真菌和原生生物)的功能和生态意义的能力取得重大进展,这些生物在很大程度上是不可培养的,并且在迄今为止的环境基因组测序工作中被忽视。
英文摘要
Plants interact with diverse communities of microbes, which constitute their microbiome, and which have major impacts on their growth and development. In most ecosystems the microbiome is dominated by mycorrhizal symbioses, in which the plant provides the fungus with sugars and lipids in exchange for nutrients assimilated by the fungus from the soil. The most widespread mycorrhizal symbiosis is the arbuscular (AM) type, which is recognized as a key determinant of ecosystem processes, through its role in biogeochemical cycling and in supporting the diversity and productivity of plant communities. Until recently, it was assumed that the fungi which form AM comprise the phylum Glomeromycota, and our understanding of the ecosystem roles of AM is based almost exclusively on this group of fungi. However we have recently shown that fungi which form the distinctive 'fine root endophyte (FRE)' AM morphotype are members of the Order Endogonales within the phylum Mucoromycota so that the AM symbiosis is actually formed by two distinct groups of fungi which diverged over 700 million years ago.Although we know that FREs are globally distributed and can be abundant within ecosystems we know almost nothing about the diversity, ecology or ecosystem function of the fungi involved. However, evidence suggests that FRE and Glomeromycota have contrasting interactions with the environment and may perform different functional roles in ecosystems. In this project we will use existing DNA archives collected as part of the NERC Countryside Survey to determine the diversity and abundance of FREs across major British habitat types, and compare the environmental, vegetation and climatic factors which determine distribution of FREs and Glomeromycota. Currently FRE are 'dark fungi' known only as environmental sequences. Our research suggests that FREs represent multiple species, and we will collaborate with Australian and Swedish researchers to define these based on both their genetics and morphology, and determine the extent to which these have global distribution patterns. We have evidence to suggest that FREs and glomeromycota have different interactions with soil phosphorus, with FREs more abundant under conditions of very low phosphorus availability. We will collaborate with Irish researchers to investigate how soil phosphorus status affects diversity and abundance of FREs using a unique 50 year pasture experiment in Wexford. We will establish whether FREs function as mutualistic symbionts which promote plant growth and nutrient supply, similar to the interactions that Glomeromycota have with their host plants. A key part of the programme will be to assemble genomes of FREs and use these to understand the functional roles of FREs in ecosystems, and the interactions which determine their distribution across ecosystems. Since FREs can't be grown in the absence of plants, or under pure culture conditions, we will take advantage of emerging long read DNA sequencing technology which now opens the exciting possibility of assembling FRE genomes directly from DNA extracted from environmental metagenomes.In addition to providing fundamental understanding of the diversity and function of the AM formed by FREs, we will provide technological advances which will facilitate a major advance in our ability to characterise the function and ecological significance of microbial eukaryotes such as fungi and protists, which are largely unculturable and have been neglected in environmental genome sequencing efforts to date.
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