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Roles of the Arabidopsis AKIP RNA-Binding-Proteins in Guard Cell Function

Roles of the Arabidopsis AKIP RNA-Binding-Proteins in Guard Cell Function
拟南芥 AKIP RNA 结合蛋白在保卫细胞功能中的作用
批准号:
0345251
负责人:
Sarah Assmann
金额:
$68.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-05-15 至 2010-04-30

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中文摘要
翻译
在植物和动物中,遗传密码都包含在生物体的DNA中。多细胞生物体中的每个细胞都有完全相同的DNA,正是对该DNA中哪些基因被使用或“表达”的调节,才使一个细胞与另一个细胞不同。这一规定发生在许多层面上。DNA被转录(转录)成另一种类型的核酸,RNA,在翻译成蛋白质之前进行进一步的加工(剪切、剪接、修饰)。因此,基因表达的调控可以发生在转录水平、mRNA加工和稳定水平以及翻译水平。植物激素脱落酸(ABA)在植物适应干旱、寒冷和盐分等环境胁迫的能力中发挥着不可或缺的作用,这些环境胁迫严重影响了美国和世界各地的作物产量。众所周知,ABA在基因转录调控中起着重要作用。一些实验室的结果现在开始表明,ABA在RNA新陈代谢中也发挥着重要作用。在本研究中,我们将探讨3种RNA结合蛋白AtAKIPs在调节ABA敏感性、RNA代谢和抗旱性中的作用。实验将在模式生物拟南芥中进行。ABA敏感性、抗旱性和RNA稳定性将在改变了这3种蛋白质的量的拟南芥转基因植株中进行评估。还将确定AtAKIP RNA靶标,并将应用计算和实验方法来确定这些RNA中的共识基序,这些基序是RNA与AtAKIP结合的必要条件和充分条件。一旦确定了这样的基序,将在整个基因组的基础上评估它们在拟南芥和其他生物中的存在,以进一步科学地了解激素对RNA新陈代谢的影响机制。调查人员积极参与对小学的外展教育。阿斯曼博士开发了向幼儿园儿童介绍植物生物学的教学模块,并制作了一段关于植物重力感应的视频。Bevilacqua博士参与了“带孩子上班”日的职业现场活动,并为当地小学制作了化学演示。调查人员将利用从目前的研究中获得的信息,为荣誉本科生生物学课程开发新的实验室,并扩大核酸物理化学研究生课程的生物学方面。
英文摘要
In plants as well as in animals, the genetic code is contained within the organism's DNA. Every cell in a multicellular organism has exactly the same DNA, and it is the regulation of which genes within that DNA are used, or "expressed", that makes one cell different from another. This regulation occurs at many levels. DNA is transcribed (transcription) into another type of nucleic acid, RNA, which is further processed (cut, spliced, modified) before its translation into protein. Thus, regulation of gene expression can occur at the level of transcription, at the level of mRNA processing and stability, and at the level of translation. The plant hormone, abscisic acid (ABA), plays an integral role in the ability of plants to acclimate to environmental stresses such as drought, cold, and salinity, which seriously compromise crop productivity both in the U.S. and world-wide. It has been known for some time that ABA plays an important role in the regulation of gene transcription. Results from a few laboratories are now beginning to show that ABA also plays an important role in RNA metabolism. In the present research, the roles of 3 RNA binding proteins, "AtAKIPs" in the regulation of ABA sensitivity, RNA metabolism, and drought tolerance will be investigated. Experiments will be conducted in the model organism, Arabidopsis thaliana. ABA sensitivity, drought tolerance, and RNA stability will be assessed in Arabidopsis transgenic plants that have altered amounts of each of these 3 proteins. AtAKIP RNA targets also will be identified, and computational and experimental approaches will be applied to identify consensus motifs within these RNAs that are necessary and sufficient for the RNA to bind to the AtAKIP. Once such motifs are identified, their presence will be assessed on a genome-wide basis both in Arabidopsis and in other organisms, to further scientific insight into the mechanisms of hormonally-mediated effects on RNA metabolism. The investigators are actively involved in outreach education to elementary schools. Dr. Assmann has developed teaching modules to introduce plant biology to kindergartners and has developed a video about plant gravity sensing. Dr. Bevilacqua is involved in career-site activities for "take your child to work" day and has created chemistry demonstrations for local elementary schools. The investigators will use information obtained from the present research in the development of new laboratories for an honors undergraduate biology course, and to expand the biological aspects of the curriculum of a graduate Nucleic Acids physical chemistry class.
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Systems Biology of Plant Heterotrimeric G-protein Signaling in Overlapping Pathways Regulating Stomatal Closure
Conference: The 20th Penn State Plant Biology Symposium: Plant Stress-Omics in a Changing Climate to be held at Penn State University, College Park, PA from May 13-16, 2015
Collaborative Research: Redox Regulation of Protein Kinase Functions in Guard Cell Signaling
COLLABORATIVE RESEARCH: Metabolomic Characterization of Red Light and CO2 Signaling in Guard Cells and Mesophyll Cells
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