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NSF Minority Postdoctoral Research Fellowship for FY 2009

NSF Minority Postdoctoral Research Fellowship for FY 2009
2009 财年 NSF 少数族裔博士后研究奖学金
批准号:
0905948
负责人:
Elisa Maldonado
金额:
$18.9万
依托单位:
依托单位国家:
美国
项目类别:
Fellowship Award
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-01-01 至 2012-12-31

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中文摘要
翻译
这项行动为2009财年的NSF少数民族博士后研究奖学金提供资金,并根据2009年美国复苏和再投资法案(公法111-5)提供资金。该研究金支持研究员在东道实验室的研究和培训计划,研究员还提出了扩大生物学参与的计划。该研究和培训计划的标题为这项奖学金的ELISA马尔多纳多是“调查的因素,促进细菌粘附使用工程表面,模仿棘皮动物皮肤。“这项研究将在乔安娜·艾森伯格博士的赞助下在哈佛大学进行。细菌生物膜--覆盖在表面的活细胞薄层--在环境中无处不在。细菌对表面的初始附着是生物膜发展的关键阶段。然而,许多生物体如海星具有天然防止生物污垢的表面。目前尚不清楚表面的哪些化学、物理或机械性质对于促进或防止细菌粘附至关重要。这可能是一个因素的组合是负责的鲁棒性和新兴的生物膜的属性。该项目使用工程技术(例如,新型仿生纳米结构表面),其模拟棘皮动物皮肤并提供多种刺激以确定表面的电、化学、物理和机械性质对细菌粘附的相互作用。这项研究将同时增加对多细胞进化的理解,并应用于预防生物污染。一个预期的结果是开发出可防止生物膜形成的材料,适用于包括健康、食品和航运在内的几个行业。培训计划包括材料科学、纳米技术和微生物学方面的理论和技术培训。该研究金增加了博士后和本科生一级代表性不足的群体的参与。
英文摘要
This action funds an NSF Minority Postdoctoral Research Fellowship for FY 2009 and is funded under the American Recovery and Reinvestment Act of 2009 (Public Law 111-5). The fellowship supports a research and training plan in a host laboratory for the Fellow who also presents a plan to broaden participation in biology. The title of the research and training plan for this fellowship to Elisa Maldonado is "Investigating the factors that promote bacterial adhesion using engineered surfaces that mimic echinoderm skin." This research will be conducted at Harvard University under the sponsorship of Dr. Joanna Aizenberg.Bacterial biofilms - thin layers of living cells that coat surfaces - are everywhere in the environment. The initial attachment of bacteria to a surface is a critical stage in biofilm development. However, many organisms such as starfish have surfaces that naturally prevent biofouling. It remains unclear which of the chemical, physical, or mechanical properties of a surface is critical in promoting or preventing bacterial adhesion. It may be that a combination of factors is responsible for the robustness and emergent properties of biofilms. This project is using engineering technology (e.g., novel biomimetic, nanostructured surfaces) that mimic echinoderm skin and present multiple stimuli to determine the interaction of electrical, chemical, physical, and mechanical properties of a surface on bacterial adhesion. This research will simultaneously add to an understanding of the evolution of multicellularity and have applications to the prevention of biofouling. An expected outcome is the development of materials that prevent biofilm formation, applicable to several industries including health, food, and shipping. Training plans include theoretical and technical training in materials science, nanotechnology, and microbiology. This fellowship increases the participation of underrepresented groups at the postdoctoral and undergraduate level.
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