PAPM-EAGER: Single-locus multi-hormone reporters for comprehensive plant phenotyping: a synthetic-biology approach.
PAPM-EAGER: Single-locus multi-hormone reporters for comprehensive plant phenotyping: a synthetic-biology approach.
批准号:
1650139
负责人:
Anna Stepanova
金额:
$30.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-10-01 至 2020-03-31
中文摘要
所有多细胞生物体都依赖一套激素来控制生长和发育。这些化合物是由生物体产生的,数量极少,但效力很强,能够引发剧烈的生理变化,对于适当的发育和防御有害的环境条件或感染是绝对必要的。在植物中,有九类植物产生的化学荷尔蒙。它们控制着广泛的发育过程,从种子萌发到果实成熟,以及对环境的反应,从干旱到食草动物的攻击。尽管植物激素起着关键作用,但它们很难研究,部分原因是它们很难被检测和量化,以便确切地知道它们是在何时何地产生、运输和感觉的。解决这个问题的一种方法是测量荷尔蒙引发的特定生物效应,而不是量化荷尔蒙本身。因此,生长调节剂可以在激素反应的荧光报告基因的帮助下被“可视化”,如果激素在植物的那一部分是活跃的,这种基因可以使植物的部分在紫外光下发光。该项目寻求生产一套合成报告基因,使其能够同时监测多种激素的活动,所有这些都在一种植物中。重要的是,这些记者将有助于分析许多植物物种的激素,包括农作物和观赏植物,甚至树木。除了给植物研究界带来上述明显的好处外,这个项目还是一个向理科本科生介绍合成生物学概念和策略的理想机会。在这里,NCSU生物化学本科生研究与培训项目(BURT-P)将被作为一个有效的平台,招收和培养最多10名对合成生物学感兴趣的新学生。此外,所有人员(PI、博士后和本科生)都将参加之前为儿童设立的Plants4Kids双语推广计划。GoldenBraid基因组装技术的开发者Diego Orzaez博士将交流材料,推广想法,并协调努力,在植物生物学家中推广基因组装策略。现有激素记者的一个主要限制是他们无法监测单一植物生产线上的多种激素。目前,由于存在相同的可选择标记、相同的报告基因和/或重复使用相同或重叠的DNA元件而引起的主要沉默问题,需要单独地将可用的最佳合成报告(例如,DR5:GUS、DR5v2-GFP或生长素的DII-Venus和乙烯的EBS:GUS)交叉或转化到感兴趣的背景(例如,一个人最喜欢的突变体)中。如果植物群落能够获得多基因激素报告结构和转基因株系,将极大地促进多效性突变体的多方面表型分析,以及胁迫和其他处理的影响,这些处理通常会同时改变几个激素途径。此外,同时观察几种激素的活性可能有助于揭示这些生长调节剂之间的相互作用和关系。例如,不难想象,同时监测所有主要激素的活动和细胞分辨率的动态将对我们理解干旱、营养缺乏、植物-微生物相互作用、病原体反应或激素串扰等重要过程产生巨大影响。
英文摘要
All multicellular organisms rely on a set of hormones to control growth and development. These chemical compounds are produced by the organisms in extremely minute amounts, but are highly potent, capable of triggering dramatic physiological changes, and absolutely essential for proper development and defense against harmful environmental conditions or infections. In plants, there are nine classes of plant-produced chemical hormones. These control a wide-range of developmental processes, from seed germination to fruit ripening, and responses to the environment, from drought to herbivore attack. Despite the critical role of plant hormones, they are difficult to study, in part because they are hard to detect and quantify in order to know exactly when and where they are produced, transported and sensed. One way around this problem is to measure the specific biological effects triggered by the hormone instead of quantifying the hormone itself. Thus, growth regulators can be "visualized" with the help of hormone-responsive fluorescent reporter genes that make parts of the plants glow under UV light if the hormone is active in that part of the plant. This project seeks to produce a set of synthetic reporter genes that will make it possible to monitor the activity of multiple hormones at once, all in a single plant. Importantly, these reporters will be useful for the analysis of hormones in many plant species, including crop and ornamental plants and even trees. In addition to the obvious benefits to the plant research community highlighted above, this project is an ideal opportunity to introduce synthetic biology concepts and strategies to science undergraduates. Herein, the NCSU Biochemistry Undergraduate Research & Training Program (BURT-P) lead by the co-PI Dr. Ascencio-Ibanez (that currently houses 25 students) will be used as an effective platform to recruit and train up to 10 new students interested in synthetic biology. Furthermore, all personnel (the PIs, the postdoc and undergraduates) will take part in a previously established Plants4Kids bilingual outreach program for kids. Dr. Diego Orzaez, the developer of GoldenBraid gene assembly technology, will exchange materials, outreach ideas, and coordinate efforts for the popularization of gene assembly strategies among plant biologists.A major limitation of existing hormone reporters is their inability to monitor multiple hormones in a single plant line. Currently, the best available synthetic reporters (e.g., DR5:GUS, DR5v2-GFP, or DII-Venus for auxin and EBS:GUS for ethylene) need to be crossed or transformed into the background of interest (e.g., one's favorite mutant) individually due to the presence of the same selectable markers, identical reporter genes, and/or major silencing issues caused by the repetitive use of the same or overlapping DNA elements. If the plant community had access to multi-gene hormonal reporter constructs and transgenic lines, it would greatly facilitate the multi-faceted phenotypic analysis of pleiotropic mutants, as well as of the effects of stresses and other treatments that typically alter several hormonal pathways in parallel. Furthermore, visualizing the activity of several hormones simultaneously may help to uncover interactions and relationships between these growth regulators. For example, it is easy to imagine the tremendous impact simultaneous monitoring of the dynamics of all major hormones' activities with cellular resolution will have on our understanding of processes as important as drought, nutrient deficiency, plant-microbiome interactions, pathogen responses, or hormone crosstalk.
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From Ethylene-Auxin Interactions to Auxin Biosynthesis and Signal Integration
从乙烯-生长素相互作用到生长素生物合成和信号整合
DOI:
10.1105/tpc.19.00339
发表时间:
2019
期刊:
The Plant Cell
影响因子:
--
作者:
[Stepanova, Anna N., Alonso, Jose M.]
通讯作者:
Alonso, Jose M.
DOI:
10.1111/tpj.13520
发表时间:
2017-05-01
期刊:
PLANT JOURNAL
影响因子:
7.2
作者:
[Merchante, Catharina, Stepanova, Anna N., Alonso, Jose M.]
通讯作者:
Alonso, Jose M.
DOI:
10.1105/tpc.19.00431
发表时间:
2020-01-01
期刊:
PLANT CELL
影响因子:
11.6
作者:
[Brumos, Javier, Zhao, Chengsong, Alonso, Jose M.]
通讯作者:
Alonso, Jose M.
DOI:
10.1016/j.devcel.2018.09.022
发表时间:
2018-11-05
期刊:
DEVELOPMENTAL CELL
影响因子:
11.8
作者:
[Brumos, Javier, Robles, Linda M., Stepanova, Anna N.]
通讯作者:
Stepanova, Anna N.
Improving undergraduate student critical thinking and ability to solve environmental problems with fossil records through FossilSketch application
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批准号:2337105
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项目类别:Standard Grant
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资助金额:$74.98万
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财政年份:2024
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负责人:Anna Stepanova
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依托单位:
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资助金额:$50.0万
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财政年份:2023
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依托单位:
CAREER: Tailoring hormone responses in plants via synthetic signal integration devices
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批准号:1750006
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资助金额:$127.59万
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财政年份:2018
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负责人:Anna Stepanova
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依托单位:
海外基金