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Leveraging Next-Generation Directed Evolution Platforms and Chemical Control of Proteostasis to Deliver Robust Biotechnologies and Illuminate Roles of Chaperone Networks in Protein Evolution

Leveraging Next-Generation Directed Evolution Platforms and Chemical Control of Proteostasis to Deliver Robust Biotechnologies and Illuminate Roles of Chaperone Networks in Protein Evolution
利用下一代定向进化平台和蛋白质稳态的化学控制来提供强大的生物技术并阐明伴侣网络在蛋白质进化中的作用
批准号:
10728415
负责人:
Matthew Donald Shoulders
金额:
$8.97万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-06-01 至 2025-04-30

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中文摘要
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英文摘要
Directed evolution mimics and accelerates natural evolution in the laboratory in order to create useful new biomolecules and to study evolutionary processes. Although methodologies for directed evolution are well- established in test tubes and in simple organisms like E. coli and yeast, there is still a major challenge. Specifi- cally, novel biomolecules derived from directed evolution campaigns in these platforms often fail to function when transferred to more complex cellular environments, such as that of human cells. To address this critical issue, our laboratory recently pioneered a directed evolution platform that can be used to repeatedly generate massive libraries of mutant biomolecules while continuously selecting and enriching the most functional vari- ants directly in the human cell environment. From a chemical biology perspective, we are also deeply engaged in studying functions of the proteostasis network – a vital and unique aspect of the human cellular environment that ensures proteins are correctly folded, processed and trafficked. We have developed an array of chemical genetic tools to modulate proteostasis, and we are now primed to integrate these tools with our directed evolu- tion platform to both evolve previously inaccessible biomolecule functions and gain a deeper understanding of how cells solve protein folding problems. Altogether, this NIGMS MIRA application seeks to combine two of my laboratory's primary interests: (1) Developing and applying next-generation, human cell-based directed evolution platforms to generate biomole- cules optimized for function in complex cells and (2) Integrating evolution with chemical modulation of proteo- stasis to gain new insights into fundamental principles of proteostasis network function. Here, we propose to integrate these research areas to deliver an array of biomolecules that reliably and robustly perform valuable new functions in the complex human cellular milieu. Examples include G-protein coupled receptors controlled by synthetic regulators for neuroscience applications, systems for incorporation of unnatural amino acids in proteins, and inhibitors of important signaling pathways related to disease. All of these targets have proven ex- ceedingly difficult to reliably evolve in lower organisms or test tubes. Beyond these practical advances, we will also integrate human cell-based directed evolution with proteostasis modulation to gain insights into how the network solves protein folding problems. For example, we will use our capacity to modulate proteostasis to test the hypothesis that chaperones can be used to “turbo-charge” directed evolution campaigns by providing ac- cess to otherwise biophysically unacceptable regions of the mutational landscape. Further, we will pursue an understanding of the roles of chaperones in human protein evolution, a process that is particularly important in the setting of tumorigenesis and in the development of drug resistance in oncogenes. Altogether, our contribu- tions will impact fields ranging from biotechnology and drug development to protein folding biophysics, evolu- tionary biology, and cancer research.
期刊论文(8)
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会议论文
DOI: 10.1093/nar/gkad003
发表时间: 2023-04-11
期刊: NUCLEIC ACIDS RESEARCH
影响因子: 14.9
作者: [Mengiste, Amanuella A., Wilson, Robert H., Weissman, Rachel F., Papa III, Louis J., Hendel, Samuel J., Moore, Christopher L., Butty, Vincent L., Shoulders, Matthew D.]
通讯作者: Shoulders, Matthew D.
DOI: 10.1021/acs.analchem.9b04049
发表时间: 2020-01-07
期刊: Analytical chemistry
影响因子: 7.4
作者: [Desaire H, Hua D]
通讯作者: Hua D
DOI: 10.1021/jacs.1c10621
发表时间: 2022-03-09
期刊: Journal of the American Chemical Society
影响因子: 15
作者: [King DT, Serrano-Negrón JE, Zhu Y, Moore CL, Shoulders MD, Foster LJ, Vocadlo DJ]
通讯作者: Vocadlo DJ
The Immune-Evasive Proline 283 Substitution in Influenza Nucleoprotein Increases Aggregation Propensity Without Altering the Native Structure.
流感核蛋白中的免疫逃避脯氨酸 283 取代增加了聚集倾向而不改变天然结构。
DOI: 10.1101/2023.09.08.556894
发表时间: 2023
期刊: bioRxiv : the preprint server for biology
影响因子: --
作者: [Yoon,Jimin, Zhang,YuMeng, Her,Cheenou, Grant,RobertA, Ponomarenko,AnnaM, Ackermann,BryceE, Debelouchina,GaliaT, Shoulders,MatthewD]
通讯作者: Shoulders,MatthewD
6
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    海外基金