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Collaborative Research: Characterization of Lipo-peptides for use as Bio-dispersants to Clean-up Oil Spills

Collaborative Research: Characterization of Lipo-peptides for use as Bio-dispersants to Clean-up Oil Spills
合作研究:用作生物分散剂清理溢油的脂肽的表征
批准号:
1059173
负责人:
Buddhi Lamsal
金额:
$9.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-01 至 2012-08-31

项目摘要

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中文摘要
翻译
英国石油公司的石油泄漏始于2010年4月20日,在大约三个月的时间里,石油以每天35,000到60,000桶的速度泄漏到墨西哥湾。人们已经采用了各种技术来收集或分散石油,以尽量减少对野生动物和财产的损害。这包括使用大约100万磅的化学分散剂来分散石油。分散剂在环境中的大规模使用引起了人们对这些化学品的安全和环境影响的高度关注。该项目的目标是开发对墨西哥湾本地主要生物有效且毒性最小的“生物分散剂”。生物分散剂将通过自然发酵过程产生。具体而言,微生物将用于将未充分利用的农业残留物(例如大豆壳)转化为生物分散剂。基因工程方法将在实验室中用于产生许多不同的微生物纯培养物,每一种都产生不同的生物分散剂。每种生物分散剂都将被纯化,并测量每种生物分散剂分散油的能力。有效的生物分散剂将被测试,以确定它们是否对关键生物有毒,底栖动物是海湾食物链和生态系统的重要成员。这项研究的目的是通过反复的设计、生产和测试来发现安全有效的生物分散剂。本研究的所有重大发现将及时发表。作为本研究的一部分收集的所有结果和数据将提供给其他研究人员。更广泛的影响。计算机设计工具与机器人操作的结合使细胞和分子生物学能够生产新的化学物质和材料。计算机科学、机器人技术和生物学融合而成的领域被称为“合成生物学”。1930年至1960年间发生了一场化学革命,通常被称为“合成化学”革命。正是在那个时期,科学家和工程师学会了使用石化原料来生产我们今天可以使用的大量有机化学品、聚合物和塑料。我们正处于化学新革命的早期阶段。特别是,“合成生物学”使工程师能够从可再生原料中产生我们社会所需的化学物质和材料,类似于“合成化学”使石油生产有机化学品的方式。合成生物学正在促成一场“可持续化学”革命,这对美国来说是一个重大机遇,因为它依赖于美国优势和卓越的三个领域的结合:农业、生物技术和化学制造。根据BIO组织的数据,可持续化学可以从化学品销售中产生1900亿美元的国内收入,并创造或保留23.7万个美国就业岗位。该研究项目代表了这一重要领域的领先公司模块化遗传学公司与哥伦比亚大学、爱荷华州立大学和路易斯安那州立大学三所大学的科学家之间的合作。这个项目应该同时导致新的商业产品的推出,并培训科学家和工程师,为推动这个行业的发展做好准备。
英文摘要
The BP oil spill began on April 20th, 2010 and leaked oil into the Gulf of Mexico at a rate of 35,000 to 60,000 barrels per day for a period of about three months. Various technologies have been deployed to attempt to collect or disperse the oil and to minimize damage to wildlife and property. This includes the use of about 1 million pounds of chemical dispersants to disperse the oil. The large-scale introduction of dispersants into the environment has led to an intense focus on the safety and environmental impact of these chemicals. The objective of this project is to develop "bio-dispersants" that are effective and minimally toxic to key organisms native to the Gulf of Mexico. The bio-dispersants will be produced by the natural process of fermentation. Specifically, microorganisms will be used to convert underutilized agricultural residue (for example, soybean hulls) into bio-dispersants. Gene engineering methods will be used in the laboratory to generate many different pure cultures of the microorganisms, each of which produces a different bio-dispersant. Each bio-dispersant will be purified, and the ability of each bio-dispersant to disperse oil will be measured. Bio-dispersants that are effective will be tested to determine whether they are toxic to key organisms, the benthic infauna, which are important members of the Gulf food chain and ecosystem. The objective of this research is to use iterative rounds of design, production and testing to discover bio-dispersants that are safe and effective. All significant findings from this work will be published promptly. All results and data collected as part of this research will be made available to other researchers.Broader Impacts. The integration of computer design tools with robotic manipulation enables the use of cellular and molecular biology to produce new chemicals and materials. The field created by the convergence of computer science, robotics and biology is called "synthetic biology". There was a revolution in chemistry that occurred between 1930 and 1960, typically referred to as the "synthetic chemistry" revolution. It was during that period that scientists and engineers learned to use petrochemical feedstocks to produce the vast array of organic chemicals, polymers and plastics available to us today. We are in the early phase of a new revolution in chemistry. In particular, "synthetic biology" is enabling engineers to generate the chemicals and materials needed by our society from renewable raw materials, similar to the way "synthetic chemistry" enabled the production of organic chemicals from petroleum. Synthetic biology is enabling a "sustainable chemistry" revolution, which represents a significant opportunity for America because it depends on combining three areas of U.S. strength and excellence: agriculture, biotechnology and chemical manufacturing. According to the BIO Organization, sustainable chemistry could lead to the generation of $190 billion in domestic revenue from chemical sales, and to the creation or retention of 237,000 U.S. jobs. This research project represents a collaboration between a leading company in this important field, Modular Genetics, Inc. and scientists at three universities: Columbia University, Iowa State University and Louisiana State University. This project should simultaneously lead to the launch of new commercial products, and to the training of scientists and engineers prepared drive this industry forward.
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  • 批准号:
    24ZR1403900
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2024
  • 负责人:
    SATOSHI NAWATA
  • 依托单位:
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