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CAREER: Uncovering Quantitative Design Principles of RNA Regulators For Synthetic Biology

CAREER: Uncovering Quantitative Design Principles of RNA Regulators For Synthetic Biology
职业:揭示合成生物学 RNA 调节剂的定量设计原理
批准号:
1650040
负责人:
Julius Lucks
金额:
$57.41万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-01 至 2021-07-31

项目摘要

项目成果

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中文摘要
翻译
非技术描述:细胞具有惊人的能力来处理信息,做出决定,并改变其状态以应对不断变化的环境。这种能力在细胞DNA基因组中编码,通过基因表达的基本过程转化为RNA和蛋白质分子。在这些RNA和蛋白质执行的许多功能中,调节它们自身的表达。事实上,现在已知RNA调节基因表达的几乎所有方面,并在控制生命的一些最基本的过程中发挥核心作用。生物技术和合成生物学的一个关键问题是:如何设计RNA分子来控制细胞内靶基因的表达,以促进从将细胞用作化学工厂到将其用作环境传感器的应用?与许多生物分子一样,RNA的功能与其结构密切相关。在这项工作中,研究人员开发了一种新的小合成RNA机制,称为小转录激活RNA或STARs。STAR被假设允许构建独特的基因表达控制技术,因为它们代表了sRNA的全新功能。该项目旨在利用STARs作为试验平台,揭示工程RNA分子的原理,以精确控制细胞内的基因表达。这项工作将有助于实现RNA作为细胞工程强大底物的潜力。它还将为我们对RNA在自然生物系统中的核心作用的基本序列/结构/功能关系的科学理解提供新的启发。因此,预计计划中的研究和研究培训活动将对社会产生广泛影响,从细胞基因调控科学到RNA基因调控工程科学,这些科学可直接与广泛的生物技术应用相联系。该项目还将培养下一代训练有素的合成生物学研究生和教师,他们将被介绍到生物技术研究的广泛,跨学科性质。此外,该计划将积极参与更广泛的社区,以帮助创造一个知情的公众,他们有能力对合成生物学的未来做出重要决定。技术描述:该项目的总体目标是建立一个综合的研究和教育计划,重点是揭示连接小RNA序列,结构和功能的定量设计原则,并利用这些原理来设计能够精确调节基因表达的合成RNA。该教育计划的重点是将研究融入下一代合成生物学学生和教师的培训中,并向更广泛的公众宣传和激发合成生物学知识。反式作用细菌小RNA(sRNA)通过与靶信使RNA(mRNA)的直接RNA-RNA相互作用来发挥调控作用,从而导致靶的结构变化。这些变化反过来又调节基因表达的许多方面,包括转录、翻译和mRNA降解。该项目的核心假设是:1)可以发现定量sRNA结构/功能设计原则,并用于合理优化和扩展RNA调节因子的功能,2)可以发现电路级设计规则,并用于设计新的合成RNA遗传模块,控制基因表达的时间和模式。这个CAREER项目的中心目标是使用小转录激活RNA(STARs)作为试验平台,以揭示合成生物学RNA调节因子的定量设计原则。这将采用多方面的方法,包括使用尖端的RNA结构测量技术来阐明STAR的分子水平设计原理。一旦学会了分子水平的原理,该项目将专注于使用这些技术来学习将STAR整合到决策调控网络中的设计规则。此外,新的实验和计算工具,可以定量建模的STAR介导的基因表达的动力学将被用来了解星星功能的不同方面如何通过RNA网络传播。这些研究的成功完成将推动更广泛的目标,即创建一个生物设计的定量学科,可用于编程细胞系统,以解决可持续能源和生物制造中的重要问题。 此外,这项工作可能提供洞察机制的天然小RNA调节自然发生的生物system.Educational活动包括制定一个长期计划,继续冷泉港合成生物学暑期课程作为培训中心,为广大学生和教师在地球仪;开发定量教材,培训未来几代的合成生物学家;并针对有学龄儿童的家庭开展实践活动,激发他们的兴趣并向他们介绍合成生物学。
英文摘要
Nontechnical Description: Cells have an amazing ability to process information, make decisions, and change their state in response to changing environments. This ability is encoded within the cellular DNA genome, which is converted into RNA and protein molecules through the basic processes of gene expression. Among the many functions these RNAs and proteins perform is regulating their own expression. In fact RNAs are now known to regulate almost all aspects of gene expression, and play central roles in controlling some of life's most basic processes. A key question in biotechnology and synthetic biology is then: How can RNA molecules be designed to control the expression of target genes inside cells to facilitate applications ranging from using cells as chemical factories all the way to using them as environmental sensors? As with many biomolecules, RNA function is intimately related to its structure. In this work, the investigator builds off of his development of a new small synthetic RNA mechanism called Small Transcription Activating RNAs, or STARs. STARs are hypothesized to allow the construction of unique gene expression control techniques since they represent a brand new function for sRNAs. This project seeks to use STARs as a test-bed for uncovering the principles for engineering RNA molecules to precisely control gene expression inside cells. This work will help realize the potential of RNA as a powerful substrate for cellular engineering. It will also shed new light on our scientific understanding of the fundamental sequence/structure/function relationship that underlies RNA's central role in natural biological systems. The projected studies and research training activities are thus expected to have a broad impact on society, ranging from the science of cellular gene regulation and the engineering science of RNA gene regulation that can directly connect to a broad array of biotechnological applications. This project will also cultivate the next generation of highly trained graduate students and teachers of synthetic biology who will be introduced to the broad, interdisciplinary nature of biotechnology research. Moreover, this program will actively engage the broader community to help create an informed public that is equipped to make important decisions about the future of synthetic biology.Technical Description: The overall goal of this project is to build an integrated research and education program focused on uncovering quantitative design principles that link small RNA sequence, structure, and function, and to use these principles to design synthetic RNAs that can precisely regulate gene expression. The education plan focuses on integrating research into the training of the next generation of synthetic biology students and teachers, and informing and exciting the broader public about synthetic biology.Trans-acting bacterial small RNAs (sRNA) exert regulation via direct RNA-RNA interactions with target messenger RNAs (mRNAs) that cause structural changes in the target. These changes in turn regulate many aspects of gene expression including transcription, translation and mRNA degradation. The central hypotheses of this project are that: 1) quantitative sRNA structure/function design principles can be discovered and used to rationally optimize and expand the functionality of RNA regulators, and 2) circuit-level design rules can be discovered and used to engineer new synthetic RNA genetic modules that control the timing and pattern of gene expression. The central goal of this CAREER project is to use Small Transcription Activating RNAs (STARs) as a test-bed for uncovering the quantitative design principles of RNA regulators for synthetic biology. This will be pursued using a multi-faceted approach that includes using cutting-edge RNA structure measurement technologies to elucidate the molecular level design principles of STARs. Once molecular-level principles are learned, the project will focus on using these techniques to learn the design rules for integrating STARs into decision making regulatory networks. In addition, new experiments and computational tools that can quantitatively model the kinetics of gene expression mediated by STARs will be used to understand how different aspects of STAR function propagate through RNA networks. Successful completion of these studies will forward the broader goal of creating a quantitative discipline of biological design that can be used to program cellular systems to solve important problems in sustainable energy, and biomanufacturing. In addition, the work may provide insight to mechanisms of native small RNA regulation of naturally occurring biological systems.Educational activities include developing a long term plan for the continuation of the Cold Spring Harbor Synthetic Biology summer course as a training center for a broad range of students and teachers across the globe; developing quantitative curricular materials for training future generations of synthetic biologists; and performing hands-on activities aimed towards families with school-age children to excite and inform them about synthetic biology.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1038/s41545-020-0064-8
发表时间: 2020-04
期刊: npj Clean Water
影响因子: 11.4
作者: [Walter Thavarajah;Matthew S. Verosloff;J. Jung;Khalid K. Alam;Joshua D. Miller;M. Jewett;S. Young;J. Lucks]
通讯作者: Walter Thavarajah;Matthew S. Verosloff;J. Jung;Khalid K. Alam;Joshua D. Miller;M. Jewett;S. Young;J. Lucks
Transitions: Evolving our Understanding of Dynamic RNA Folding and Function
  • 批准号:
    2310382
  • 项目类别:
    Standard Grant
  • 资助金额:
    $75.0万
  • 财政年份:
    2023
  • 负责人:
    Julius Lucks
  • 依托单位:
URoL:ASC: The design, development, and societal impact of rapid, in-home, water quality biosensors
  • 批准号:
    2319427
  • 项目类别:
    Standard Grant
  • 资助金额:
    $300.0万
  • 财政年份:
    2023
  • 负责人:
    Julius Lucks
  • 依托单位:
NRT-URoL: Synthesizing Biology Across Scales – A Convergent Synthetic Biology Training Program
  • 批准号:
    2021900
  • 项目类别:
    Standard Grant
  • 资助金额:
    $299.5万
  • 财政年份:
    2020
  • 负责人:
    Julius Lucks
  • 依托单位:
RAPID: Point-of-Need Detection of COVID-19 using CRISPR-Enabled Cell-Free Synthetic Biology
  • 批准号:
    2028651
  • 项目类别:
    Standard Grant
  • 资助金额:
    $20.0万
  • 财政年份:
    2020
  • 负责人:
    Julius Lucks
  • 依托单位:
海外基金