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HBCU-UP RIA: Genetic Evaluation of Structural Determinants of Dopamine Transporters

HBCU-UP RIA: Genetic Evaluation of Structural Determinants of Dopamine Transporters
HBCU-UP RIA:多巴胺转运蛋白结构决定因素的遗传评估
批准号:
1505176
负责人:
Phyllis Freeman
金额:
$19.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-06-15 至 2018-05-31

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中文摘要
翻译
历史上的黑人学院和大学本科生计划(HBCU-UP)研究启动奖(RIAs)为HBCU的STEM教师提供支持,包括开始建立研究计划的初级教师和职业生涯中期的教师,他们在担任行政职务或需要重新定向和重建研究计划后返回教师队伍。教师可以在他们的家乡机构,在NSF资助的中心,在研究密集型机构或在国家实验室进行研究。RIA项目预计将有助于进一步提高教师的研究能力和效率,改善他或她的家乡机构的研究和教学,并让本科生参与研究经验。在国家科学基金会的支持下,菲斯克大学将利用线虫秀丽隐杆线虫(C. elegans)。 该研究项目将有助于维持所涉教师的专业成长和生产力,扩大菲斯克大学的研究能力,并提高学生在这个小型文理学院的教育和研究经验。该项目有可能成为增加非洲裔美国学生追求STEM学位课程和职业的数量的典范。本研究的总体目标是揭示C.线虫多巴胺(DA)转运蛋白(DAT-1),其决定转运蛋白功能并整合调节信号以在体内实现适当的运动-感觉活性。这些研究将利用最近建立的线虫菌株来自百万突变项目(MMP),携带单核苷酸变异的dat-1基因组位点,改变转运蛋白编码序列。本项目的目标是:1)确定dat-1错义等位基因对体内DAT功能和定位的影响,2)利用反向遗传学来完善MMP突变对DAT-1功能和定位的体内影响的结构基础的理解。这项工作的发现将加深我们对DAT结构/功能关系的理解,并展示从转运蛋白到活体动物行为的功能。在菲斯克大学的遗传学和分子细胞生物学本科课程中注入项目研究将有助于提高对STEM研究和职业的兴趣。
英文摘要
The Historically Black Colleges and Universities-Undergraduate Program (HBCU-UP) Research Initiation Awards (RIAs) provide support to STEM faculty at HBCUs including junior faculty who are starting to build a research program and mid-career faculty returning to the faculty ranks after holding an administrative post or who need to redirect and rebuild a research program. Faculty members may pursue research at their home institution, at an NSF-funded Center, at a research intensive institution or at a national laboratory. The RIA projects are expected to help further the faculty member's research capability and effectiveness, to improve research and teaching at his or her home institution, and to involve undergraduate students in research experiences. With support from the National Science Foundation, Fisk University will conduct neuroscience research using the nematode Caenorhabditis elegans (C. elegans). This research project will help sustain the professional growth and productivity of the faculty involved, expand Fisk University's research capabilities, and enhance the educational and research experiences of the students at this small liberal arts college. This project has the potential to be a model for increasing the number of African American students pursuing STEM degree programs and careers. The overall goal of the proposed research is to reveal structural features of the C. elegans dopamine (DA) transporter (DAT-1) that dictate transporter function and that integrate regulatory signals to achieve appropriate motor-sensory activity in vivo. These studies will exploit recently established nematode strains derived from the Million Mutation Project (MMP) that carry single nucleotide variants at the dat-1 genomic locus which alter transporter coding sequences. The objectives of this project are to: 1) determine the impact of dat-1 missense alleles on in vivo DAT function and localization and 2) utilize reverse genetics to refine understanding of the structural bases for in vivo effects of MMP mutations on DAT-1 function and localization. Findings from this work will deepen our understanding of DAT structure/function relationships and demonstrate functionality from the trafficking of transporter proteins to the behaviors of living animals. The infusion of the project research in the Genetics and Molecular Cell Biology undergraduate courses at Fisk University will help foster increased interest in STEM research and careers.
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