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EAGER: Alternative defensive mechanisms of autotrophs from harmful reactive oxygen species

EAGER: Alternative defensive mechanisms of autotrophs from harmful reactive oxygen species
EAGER:自养生物免受有害活性氧的替代防御机制
批准号:
1664052
负责人:
Hidetoshi Urakawa
金额:
$5.4万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-07-01 至 2021-06-30

项目摘要

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中文摘要
翻译
蓝藻(也称为蓝藻)能够在各种环境中茁壮成长。生态干扰往往有利于蓝藻的生长,因为它们有能力适应环境的快速变化。有时,环境条件的变化会导致蓝藻种群密集(藻华),还可能产生高浓度的毒素(氰毒素),这些毒素会杀死鱼类,对人类构成危害。这个早期概念探索性研究奖助金项目的目标是测试氰基毒素是否具有重要的替代生化和生态功能,即通过清除过氧化氢来保护蓝藻。如果这被证明是真的,它将改变我们对淡水湖结构和功能的理解。这个迫切的项目的结果也可能导致对有害的蓝藻水华进行更有效和经济的管理。在有害的藻类大量繁殖期间释放的氰化毒素可能会对健康构成风险,并需要数百万美元来净化淡水供应。该项目还将包括为本科生和研究生提供研究培训机会,努力扩大对科学的参与。最重要的环境梯度之一是由氧气形成的,它的可获得性是生命分布模式的基础。蓝藻是第一个建立产氧光合作用的谱系。蓝藻的光合作用吸收太阳能,但也有产生过氧化氢等活性氧物种的风险。能够处理细胞内活性氧分子的细胞过程的发展是蓝藻光合作用进化的关键。这个急切的项目将测试一个有趣的假说,即为什么蓝藻产生氰毒素,它们的功能是隔离过氧化氢,或者以其他方式将其转化为非活性形式。在这个项目中,有毒和无毒的蓝藻菌株将与过氧化氢的产生进行比较。一种新的过氧化氢微型传感器将被用来检测薄表层湖水中过氧化氢的微尺度分布,以确定它是否与产生毒素的蓝藻的丰度成反比(与假设一致)。最后,研究将确定是否可以通过添加α-酮酸来清除细胞产生的任何过氧化氢来提高在培养中分离和生长新型蓝藻的能力。
英文摘要
Cyanobacteria (also known as blue-green algae) are capable of thriving in a variety of environments. Ecological disturbances often favor growth of cyanobacteria because of their capability to adapt to rapid changes in the environment. Sometimes changes in environmental conditions can result in dense populations of cyanobacteria, (algal bloom) and they may also produce high concentrations of toxins (cyanotoxins) that kill fish and are a hazard to humans. The goal of this EArly-concept Grant for Exploratory Research (EAGER) project is to test whether cyanotoxins have an important alternative biochemical and ecological function, namely, to protect the cyanobacteria by removing hydrogen peroxide. If this proves to be true, it would transform our understanding of the structure and function of freshwater lakes. The results from this EAGER project may also lead to more effective and economical management of harmful cyanobacerial blooms. Cyanotoxins released during harmful algal blooms can pose health risks, and require millions of dollars to decontaminate freshwater supplies. The project will also include research training opportunities for undergraduate and graduate students, with efforts to broaden participation in science.One of the most important environmental gradients is formed by oxygen, and its availability is fundamental to the distribution patterns of life. Cyanobacteria were the first lineage to establish oxygen-producing photosynthesis. Cyanobacterial photosynthesis captures solar energy, but it comes at the risk of producing reactive oxygen species such as hydrogen peroxide. The development of a cellular process capable of handling intracellular reactive oxygen molecules was key to the evolution of cyanobacterial photosynthesis. This EAGER project will test an intriguing hypothesis about why cyanobacteria produce cyanotoxins, that they function to sequester hydrogen peroxide, or otherwise convert it to a non-reactive form. In this project, toxic and non-toxic cyanobacterial strains will be compared with respect to hydrogen peroxide production. A new hydrogen peroxide microsensor will be used to examine the microscale distribution of hydrogen peroxide in thin surface lake water to determine whether (consistent with the hypothesis) it is inversely proportional with the abundance of toxin-producing cyanobacteria. Finally, studies will determine whether the ability to isolate and grow novel cyanobacteria in culture can be improved by adding alpha-keto acids to scavenge any hydrogen peroxide produced by cells.
期刊论文(9)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.ecoleng.2017.07.022
发表时间: 2017-11
期刊: Ecological Engineering
影响因子: 3.8
作者: [H. Urakawa;A. Bernhard]
通讯作者: H. Urakawa;A. Bernhard
DOI: 10.1038/ismej.2017.186
发表时间: 2017-10
期刊: The ISME Journal
影响因子: --
作者: [W. Qin;Shady A. Amin;Rachel A Lundeen;K. Heal;Willm Martens-Habbena;S. Turkarslan;H. Urakawa;Kyle C Costa;E. Hendrickson;Tony Wang;David AC Beck;Sonia M. Tiquia-Arashiro;F. Taub;Andrew D Holmes;Neeraja Vajrala;P. Berube;Todd M Lowe;James W. Moffett;A. Devol;N. Baliga;D. Arp;L. Sayavedra-Soto;M. Hackett;E. Armbrust;A. Ingalls;David A. Stahl]
通讯作者: W. Qin;Shady A. Amin;Rachel A Lundeen;K. Heal;Willm Martens-Habbena;S. Turkarslan;H. Urakawa;Kyle C Costa;E. Hendrickson;Tony Wang;David AC Beck;Sonia M. Tiquia-Arashiro;F. Taub;Andrew D Holmes;Neeraja Vajrala;P. Berube;Todd M Lowe;James W. Moffett;A. Devol;N. Baliga;D. Arp;L. Sayavedra-Soto;M. Hackett;E. Armbrust;A. Ingalls;David A. Stahl
DOI: 10.1111/1462-2920.14391
发表时间: 2018-10
期刊: Environmental Microbiology
影响因子: 5.1
作者: [H. Urakawa;Suja S. Rajan;M. Feeney;P. Sobecky;B. Mortazavi]
通讯作者: H. Urakawa;Suja S. Rajan;M. Feeney;P. Sobecky;B. Mortazavi
DOI: 10.1016/j.ecoleng.2019.07.011
发表时间: 2019-11
期刊: Ecological Engineering
影响因子: 3.8
作者: [Luka K. Ndungu;J. H. Steele;Taylor L. Hancock;Richard D. Bartleson;E. Milbrandt;M. Parsons;H. Urakawa-H.]
通讯作者: Luka K. Ndungu;J. H. Steele;Taylor L. Hancock;Richard D. Bartleson;E. Milbrandt;M. Parsons;H. Urakawa-H.
共 9 条
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    • 项目类别:
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    • 资助金额:
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    • 批准年份:
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    • 负责人:
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    • 依托单位:
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