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Collaborative Research: Seed-fungal interactions: uncovering functional specificity and primary symbionts as key drivers of tropical tree recruitment

Collaborative Research: Seed-fungal interactions: uncovering functional specificity and primary symbionts as key drivers of tropical tree recruitment
合作研究:种子-真菌相互作用:揭示功能特异性和主要共生体作为热带树木补充的关键驱动因素
批准号:
2231762
负责人:
James Dalling
金额:
$16.64万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-03-01 至 2027-02-28

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中文摘要
翻译
微生物是所有陆地生物群中植物种群大小、密度和多样性的关键决定因素。在物种丰富的热带森林中,真菌和类真菌生物调节植物种群动态和群落结构。植物真菌动态的研究大多集中在幼苗和幼树上,很少考虑种子。然而,种子的存活是招募个人到下一代的关键第一步。本研究旨在验证种子阶段有益的和拮抗的植物-真菌相互作用对热带树木补充的重要性这一假说。研究人员将提供来自美国和拉丁美洲的包容性、跨学科的研究培训和指导。领导小组将确保所有受训者、学生和博士后伙伴将受益于其机构和巴拿马史密森热带研究所丰富的科学界,包括专业成长、联网、合作和参与史密森热带研究所的包容、多样性、公平和获取倡议的机会。此外,调查人员将启动基于课程的本科生研究模块,并继续在巴拿马开设长期的本科生实地课程。最后,该团队将在区域、国家(美国、巴拿马)和国际环境中为学生和公众提供双语演示,并通过于2024年在巴拿马主办两年一次的国际会议-种子生态IX来展示他们的研究。了解影响热带森林生物多样性的过程在全球范围内很重要。真菌病原体是热带地区死亡的主要来源,对于了解热带树木的种群大小、密度、繁殖成功以及最终的物种多样性至关重要。通过结合种子防御和真菌共生的研究,该项目将揭示热带森林树木招募的潜在关键但隐藏的驱动因素。这项研究将(1)使用两种新的方法(非靶向代谢组学和诱导防御分析)来了解种子化学如何影响真菌感染的敏感性、致病性和相应的真菌反应;(2)超越地方地理尺度,探索物理环境和母体基因如何影响横跨巴拿马运河分水岭的景观尺度的真菌群落组成和寄主敏感性;(3)结合实验室和田间方法来检验假设,即低多样性微生物系统中的优先效应将强烈影响植物-微生物相互作用的结果(称为主要共生假说);以及(4)支持美国及其他地区的不同培训、宣传和教育活动。总体而言,这些因素将有助于解决决定热带种子-真菌相互作用结果的内在因素(种子防御)和外在偶发因素(额外的微生物伙伴、不同的环境条件、植物的可变遗传背景)。因此,这个项目将阐明真菌如何影响植物的招募,与植物从种子再生的不同野生和农业生态系统相关。该项目包括南佛罗里达大学、伊利诺伊大学、犹他州立大学和亚利桑那大学的本科生、研究生和博士后水平的研究培训。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Microbes are key determinants of plant population size, density, and diversity in all terrestrial biomes. In species-rich tropical forests, fungi and fungus-like organisms mediate plant population dynamics and community structure. Most studies of plant-fungal dynamics have focused on seedlings and saplings, with little consideration of seeds. Yet, the survival of seeds is a critical first step to the recruitment of individuals to the next generation. This research aims to test the hypothesis that beneficial and antagonistic plant-fungal interactions at the seed stage are important to tropical tree recruitment. The researchers will provide inclusive, cross-disciplinary research training and mentorship from the US and Latin America. The leadership team will ensure that all trainees, students, and postdoctoral associates, will benefit from the rich scientific community of their institutions and the Smithsonian Tropical Research Institute in Panama, including opportunities for professional growth, networking, collaboration, and participation in the Inclusion, Diversity, Equity and Access initiative at the Smithsonian Tropical Research Institute. In addition, the investigators will initiate course-based undergraduate research modules and continue a long-standing undergraduate field course in Panama. Finally, the team will give bilingual presentations for students and the public in regional, national (US, Panama), and international settings, and showcase their research by hosting Seed Ecology IX, a biennial international meeting, in Panama in 2024.Understanding the processes that influence tropical forest biodiversity is important at a global scale. Fungal pathogens are major sources of mortality in the tropics and essential to understanding tropical tree population size, density, reproductive success, and ultimately, species diversity. By combining the study of seed defenses and fungal symbioses, the project will uncover the potentially crucial but hidden drivers of tree recruitment in tropical forests. This research will (1) use two novel approaches (untargeted metabolomics and assays of inducible defenses) to understand how seed chemistry influences susceptibility to fungal infection, pathogenicity, and corresponding fungal responses; (2) move beyond local geographical scales to explore how the physical environment and maternal genotype influence fungal community composition and host susceptibility at a landscape scale, spanning the Panama Canal watershed; (3) combine lab and field approaches to test the hypothesis that priority effects in low diversity microbial systems will strongly influence the outcome of plant-microbial interactions (known as the primary symbiont hypothesis); and (4) support diverse training, outreach, and educational activities in the US and beyond. Collectively these elements will contribute to resolving the intrinsic factors (seed defenses) and extrinsic contingencies (additional microbial partners, different environmental conditions, variable genetic background of plants), that determine the outcome of seed-fungal interactions in the tropics. Thus, this project will elucidate how fungi influence plant recruitment, with relevance to diverse wild- and agro-ecosystems where plants regenerate from seeds. The project includes research training at the undergraduate, graduate student and postdoctoral levels at the University of South Florida, University of Illinois, Utah State University and University of Arizona.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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RAPID:Effects of mass-flowering and die-back of a large cane forming bamboo on nutrient cycling, seedling recruitment, and oak dominance in a tropical montane forest
DISSERTATION RESEARCH: Effects of nitrogen addition on ectomycorrhizal communities in tropical montane forest
DISSERTATION RESEARCH: The influence of soil fertility on tropical tree species carbon and nutrient storage: A comparison between lowland and montane forests
Collaborative Research: Seed defense syndromes of tropical forest trees: emergent properties of seed dormancy, defense and microbial interactions
国内基金
海外基金
Research on Quantum Field Theory without a Lagrangian Description
  • 批准号:
    24ZR1403900
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2024
  • 负责人:
    SATOSHI NAWATA
  • 依托单位:
Cell Research
Cell Research
Cell Research (细胞研究)