Collaborative Research: Mechanism-guided enzyme engineering for fucosylated glycoconjugate synthesis
Collaborative Research: Mechanism-guided enzyme engineering for fucosylated glycoconjugate synthesis
批准号:
1904862
负责人:
Ronald Larson
金额:
$27.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-08-01 至 2024-07-31
中文摘要
糖合酶是一种酶,它被设计成制造复合糖(低聚糖和碳水化合物)的链而不是断链。通过这一奖项,化学部生命过程化学计划资助密歇根大学的Heather Mayes博士和罗格斯大学的Shishir Chundawat博士揭示糖合成酶是如何合成益生素低聚糖或碳水化合物的。这些酶满足了研究和工业生物技术对生产设计碳水化合物的能力的迫切需求,碳水化合物是为特定目的设计的糖。然而,对于如何更好地设计糖合成酶以高度特异性和高效地制造复杂糖,仍然缺乏机械上的理解。该项目将计算和实验研究相结合,以提供对糖合成酶(α-L岩藻糖苷酶)如何催化产生特定寡糖的机制理解,这将反过来使酶的合理设计成为设计碳水化合物的基础。更广泛的影响包括设计有效的路线来创造母乳低聚糖,这些低聚糖可以被包括在婴儿配方奶粉中,使其成分更接近母乳。人乳低聚糖可以通过促进有益肠道细菌的生长和降低其他病原性感染的发生率来改善人类健康。在这项工作中开发的用于设计这种酶的软件将公开可用。最后,这些研究构成了推广活动的基础,这些活动利用碳水化合物的生物化学与密歇根州和新泽西州资源匮乏的社区的学生接触。该项目的总体目标是了解α-L岩藻糖苷酶如何合成简单的糖结合物(例如,人乳低聚糖)。需要检验的假设是,基于序列和结构数据的酶活性和结合位置的先验分析可以用来预测突变,这些突变将消除酶的水解性,有利于定制低聚糖的糖苷键合成。这个项目的目标是:1)利用实验和计算研究来确定关键的结构属性,以确定特定的酶突变是否将是活性的糖合成酶;2)创建自动化过程来预测和测试不同酶的哪些突变将是活性岩藻合酶;以及3)预测和测试改变底物特异性所需的突变。这项可行性研究的结果将推动生产一系列目前尚不能用于研究和/或商业应用的低聚糖。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Glycosynthases are enzymes that have been engineered to make instead of break chains of complex sugars (oligosaccharides and carbohydrates). With this award, the Chemistry of Life Processes Program in the Chemistry Division is funding Dr. Heather Mayes from the University of Michigan and Dr. Shishir Chundawat from Rutgers University to uncover how glycosynthases synthesize prebiotic oligosaccharides or carbohydrates. These enzymes fill a pressing need in research and industrial biotechnology for the ability to produce designer carbohydrates, sugars that are designed for a specific purpose. There remains, however, a lack mechanistic understanding for how to better engineer glycosynthases to be highly specific and efficient in making complex sugars. This project combines computational and experimental studies to provide a mechanistic understanding of how a glycosynthase (alpha-L-fucosidase) catalyzes creation of specific oligosaccharides, which will in turn enable rational design of enzymes to make designer carbohydrates. The broader impacts include designing efficient routes for creating human milk oligosaccharides that could be included in infant formula to bring the composition closer to that of human milk. Human milk oligosaccharides can improve human health by promoting growth of beneficial gut bacteria and lowering incidences of other pathogenic infections. The software developed in this work for designing such enzymes will be made publicly available. Finally, the studies form the basis for outreach activities that use the biochemistry of carbohydrates to engage with students from under-resourced communities in Michigan and New Jersey.The overall goal of this project is to understand how alpha-L-fucosidases synthesize simple glycoconjugates (e.g., human milk oligosaccharides). The hypothesis to be tested is that a priori analysis of enzyme active and binding sites, based on sequence and structural data, can be used to predict mutations that will eliminate the hydrolysis activity of the enzyme in favor of glycosidic bond synthesis of bespoke oligosaccharides. The objectives of this project are to: 1) employ experimental and computational studies to identify key structural properties that determine whether a particular enzyme mutant will be an active glycosynthase; 2) create automated processes to predict and test which mutants of disparate enzymes will be active fucosynthases; and 3) predict and test mutations needed to alter substrate specificity. The results of this feasibility study will advance the path to production of a broad suite of oligosaccharides not currently readily available for research and/or commercial applications.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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