Collaborative Research: Ecology of microbial mats at seamount associated Fe-rich hydrothermal vent systems
合作研究:海山相关富铁热液喷口系统微生物垫的生态学
基本信息
- 批准号:1155754
- 负责人:
- 金额:$ 60.36万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2012
- 资助国家:美国
- 起止时间:2012-07-01 至 2016-06-30
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
A grand challenge in microbial ecology is to understand what drives the structure of microbial communities. A recently discovered novel class of Proteobacteria, the Zetaproteobacteria, are associated with microbial mats at iron rich hydrothermal vents at submarine volcanoes deep in the ocean. These bacteria only grow using iron as an energy source and fix carbon dioxide. Within iron rich microbial mats, Zetaproteobacteria are the dominant bacterial population; however they are rare in most other deep-sea or marine habitats, suggesting they may be restricted to specific niches characterized by gradients of oxygen and iron. Recent discoveries have expanded their range to fluids collected from deep ocean crust boreholes, iron deposits in coastal saltmarshes, and with steel associated bio-corrosion, demonstrating that marine Zetaproteobacteria are cosmopolitan. A unique property of these marine iron oxidizing bacteria is that they produce morphologically distinct iron oxide structures in the form of filamentous sheaths or stalk-like structures. These structures are easily recognized by light microscopy, and electron microscopy is beginning to reveal subtle differences among them that may be diagnostic of different populations of iron oxidizing bacteria. Another unusual aspect of iron oxidizing bacteria is that they produce large quantities of oxides with relatively little bacterial biomass. As a result, the oxides form a matrix that influences water and nutrient flow in the microbial mats where they grow, and in turn, may influence the growth of other groups of bacteria and archaea that live in the mats. In an ecological context, the PIs believe this makes them a keystone species that form the predominant structural matrix of the mat, and engineer an environment conducive for growth of specific bacterial populations within the mat ecosystem. The PIs propose to use high resolution mat sampling techniques to investigate the architecture of mat ecosystems and couple these with modern molecular methods (i.e., single-cell metagenomics) and geochemical measurements of the vent fluid to couple morphological and functional diversity to phylogenetic and physiological diversity. Because the Zetaproteobacteria are ancient, have unique metabolic and morphological attributes, and appear to be restricted to a well-defined habitat, they offer an interesting model for understanding fundamental ecological concepts that drive microbial diversity and evolution. Broader Impacts: A better understanding of iron oxidizing bacteria that include Zetaproteobacteria is of fundamental interest to scientists interested in areas of earth science and oceanography because they illustrate how microbes can fundamentally influence geochemical cycling and mineral deposition. Furthermore, morphological structures similar to those produced by Zetaproteobacteria can still be identified hundreds of millions (and possibly billions) of years back in the geological record, making them of paleontological, and potentially of exobiological, interest. As knowledge of extant populations grow, it is possible they will also help to inform us of environmental change in past Earth history. A wealth of educational and outreach opportunities will be made possible by this work, including graduate and postdoctoral education, research experiences for undergraduates, and teacher training. In addition the participating scientists are involved in a number of programs to make the general public aware of the process of how scientific research is conducted, and how discoveries of a fundamental nature can ultimately benefit humankind.
微生物生态学中的一个重大挑战是了解是什么驱动了微生物群落的结构。最近发现的一类新的变形杆菌,即泽塔变形杆菌,与海洋深处海底火山富含铁的热液喷口的微生物垫有关。这些细菌只能以铁为能源生长,并固定二氧化碳。在富含铁的微生物垫子中,ZetaProtecteria是优势细菌种群;然而,它们在大多数其他深海或海洋生境中很少见,这表明它们可能仅限于以氧气和铁的梯度为特征的特定生态位。最近的发现扩大了它们的范围,包括从深海地壳钻孔收集的流体,沿海盐沼中的铁矿床,以及与钢铁相关的生物腐蚀,表明海洋泽塔变形杆菌是世界性的。这些海洋铁氧化细菌的一个独特特性是,它们以丝状鞘或茎状结构的形式产生形态上不同的氧化铁结构。这些结构很容易被光学显微镜识别,电子显微镜开始显示它们之间的细微差异,这可能是对不同种群的铁氧化细菌的诊断。铁氧化细菌的另一个不同寻常的方面是,它们产生大量的氧化物,而细菌的生物量相对较少。因此,氧化物形成一种基质,影响它们生长的微生物垫中的水和营养物质流动,进而可能影响生活在垫上的其他细菌和古生菌的生长。在生态方面,PI认为这使他们成为形成MAT主要结构矩阵的关键物种,并设计了有利于MAT生态系统内特定细菌种群生长的环境。PIS建议使用高分辨率MAT采样技术来调查MAT生态系统的结构,并将其与现代分子方法(即单细胞元基因组学)和喷口流体的地球化学测量相结合,以将形态和功能多样性与系统发育和生理多样性结合起来。由于齐塔蛋白细菌是古老的,具有独特的新陈代谢和形态属性,并且似乎局限于定义明确的栖息地,它们为理解推动微生物多样性和进化的基本生态概念提供了一个有趣的模型。更广泛的影响:对于对地球科学和海洋学领域感兴趣的科学家来说,更好地了解包括ZetaProducteria在内的铁氧化细菌是非常重要的,因为它们说明了微生物如何从根本上影响地球化学循环和矿物沉积。此外,在数亿年(甚至数十亿年前)的地质记录中,仍然可以识别出与齐塔变形杆菌产生的形态结构相似的形态结构,使它们具有古生物学意义,并可能具有外部生物学意义。随着对现存人口的了解不断增加,它们也有可能帮助我们了解过去地球历史上的环境变化。这项工作将提供丰富的教育和外展机会,包括研究生和博士后教育、本科生研究经验和教师培训。此外,参与的科学家还参与了一些项目,让公众了解科学研究是如何进行的,以及基本性质的发现如何最终造福人类。
项目成果
期刊论文数量(0)
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David Emerson其他文献
The antimethanogenic efficacy and fate of bromoform and its transformation products in rumen fluid
溴仿及其转化产物在瘤胃液中的产甲烷抑制效能和归宿
- DOI:
10.1038/s41598-025-10936-9 - 发表时间:
2025-07-11 - 期刊:
- 影响因子:3.900
- 作者:
Kevin M. Posman;Gabriella Iacono;Carmen M. Cartisano;Sarah Y. Morrison;David Emerson;Nichole N. Price;Stephen D. Archer - 通讯作者:
Stephen D. Archer
Use of the DiversiLab repetitive sequence-based PCR system for genotyping and identification of Archaea
- DOI:
10.1016/j.mimet.2007.12.008 - 发表时间:
2008-05-01 - 期刊:
- 影响因子:
- 作者:
David Cleland;Paul Krader;David Emerson - 通讯作者:
David Emerson
Yoga vs Cognitive Processing Therapy for Military Sexual Trauma–Related Posttraumatic Stress Disorder
瑜伽与认知处理疗法治疗军事性创伤相关的创伤后应激障碍
- DOI:
- 发表时间:
2023 - 期刊:
- 影响因子:13.8
- 作者:
Belle Zaccari;Melinda Higgins;Terri N. Haywood;Meghna Patel;David Emerson;Kimberly Hubbard;Jennifer M. Loftis;Ursula A. Kelly - 通讯作者:
Ursula A. Kelly
An optimal migration algorithm for dynamic load balancing
一种动态负载均衡的最优迁移算法
- DOI:
- 发表时间:
1998 - 期刊:
- 影响因子:0
- 作者:
Yifan Hu;R. Blake;David Emerson - 通讯作者:
David Emerson
Innocence as a super-power: little girls on the Hero's Journey
天真作为一种超能力:英雄之旅中的小女孩
- DOI:
- 发表时间:
2009 - 期刊:
- 影响因子:0
- 作者:
David Emerson - 通讯作者:
David Emerson
David Emerson的其他文献
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{{ truncateString('David Emerson', 18)}}的其他基金
NNA: Collaborative Research: Interactions of the Microbial Iron and Methane Cycles in the Tundra Ecosystem
NNA:合作研究:苔原生态系统中微生物铁和甲烷循环的相互作用
- 批准号:
1754358 - 财政年份:2018
- 资助金额:
$ 60.36万 - 项目类别:
Standard Grant
A holistic framework for hybrid modelling of solid-liquid flows
固液流混合建模的整体框架
- 批准号:
EP/N033841/1 - 财政年份:2017
- 资助金额:
$ 60.36万 - 项目类别:
Research Grant
Collaborative Research: The Role of Iron-oxidizing Bacteria in the Sedimentary Iron Cycle: Ecological, Physiological and Biogeochemical Implications
合作研究:铁氧化细菌在沉积铁循环中的作用:生态、生理和生物地球化学意义
- 批准号:
1459600 - 财政年份:2015
- 资助金额:
$ 60.36万 - 项目类别:
Standard Grant
HIGH PERFORMANCE COMPUTING SUPPORT FOR UNITED KINGDOM CONSORTIUM ON TURBULENT REACTING FLOWS (UKCTRF)
为英国湍流反应流联盟 (UKCTRF) 提供高性能计算支持
- 批准号:
EP/K024574/1 - 财政年份:2014
- 资助金额:
$ 60.36万 - 项目类别:
Research Grant
Future-proof massively-parallel execution of multi-block applications
面向未来的多块应用程序大规模并行执行
- 批准号:
EP/K038451/1 - 财政年份:2013
- 资助金额:
$ 60.36万 - 项目类别:
Research Grant
The First Open Source Software for Non-Continuum Flows in Engineering
第一个用于工程非连续流的开源软件
- 批准号:
EP/K038427/1 - 财政年份:2013
- 资助金额:
$ 60.36万 - 项目类别:
Research Grant
CCP12: High Performance Computing in Engineering
CCP12:工程中的高性能计算
- 批准号:
EP/J010448/1 - 财政年份:2011
- 资助金额:
$ 60.36万 - 项目类别:
Research Grant
Microbial Systems in the Biosphere: Unraveling the Lifestyles of Dominant Freshwater Fe-oxidizing Bacteria
生物圈中的微生物系统:揭示主要淡水铁氧化细菌的生活方式
- 批准号:
0951077 - 财政年份:2010
- 资助金额:
$ 60.36万 - 项目类别:
Standard Grant
Collaborative Research: High Resolution Bacterial Mat Sampler for Operation with Deep Submergence Vehicles
合作研究:用于深潜车辆操作的高分辨率细菌垫采样器
- 批准号:
0927199 - 财政年份:2009
- 资助金额:
$ 60.36万 - 项目类别:
Standard Grant
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