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De novo Design of Proteins for Catalysis and Fluorescence Imaging

NIGMS - National Institute of General Medical Sciences

open
OpenLast verified: 2026-07-26

About This Grant

Project Summary/Abstract Protein-small molecule interactions regulate protein function, signal transduction, and enzymatic catalysis in biological systems. Advances in protein engineering have enabled modifications of natural protein-small molecule interactions for diverse applications, including developing protein tags for fluorescence imaging and engineering enzymes for biocatalysis. However, designing de novo proteins to bind small molecules and catalyze reactions remains a significant challenge, often requiring extensive screening and experimental optimization. In my recent work, I developed a nature-inspired strategy leveraging weak protein affinities for non-primary substrates to create functional proteins. Using this approach, I designed Fluorescent ABLE (FABLE), a fluorophore-binding protein, and Kemp eliminase ABLE (KABLE), an enzyme for Kemp elimination. The initial Kemp eliminase design achieved an activity of 6600 M⁻¹s⁻¹ in just five attempts, surpassing previous computational designs by over an order of magnitude. Saturation mutagenesis produced a quadruple mutant with an activity of 600,000 M⁻¹s⁻¹, setting a new benchmark for base-catalyzed Kemp eliminase and outperforming mechanistically similar natural enzymes. These successes highlight the frontier of de novo protein design for specific ligand interactions. A deeper understanding of protein-small molecule interactions in de novo proteins is crucial for advancing both fundamental understanding of these interactions in Nature and practical applications in protein engineering, particularly in the development of protein tags for fluorescence imaging and the design of enzymes for biocatalysis. In this proposal, In this proposal, I aim to test my hypothesis that protein dynamics, particularly the enrichment of productive conformations, contribute to the enhanced rate of KABLE1.4 using a multidisciplinary approach that includes molecular dynamics, X-ray crystallography, and NMR (Aim 1). For fluorescence imaging, I will transform the proof-of-concept de novo protein (FABLE) into a set of ready-to- use protein tags by designing proteins that bind modern rhodamine fluorophores while equipping them with a predefined set of optimal features that no existing tool offers (Aim 2). Lastly, I propose engineering de novo proteins with covalent ligand interactions, allowing stable binding and a universal protein tag for various synthetic molecules without requiring sequence redesign (Aim 3). Harnessing de novo protein design will revolutionize the ability to engineer protein-small molecule interactions, driving transformative advancements in fluorescence imaging, enzyme catalysis, and broader applications requiring precise molecular recognition.

Grant Summary

De novo Design of Proteins for Catalysis and Fluorescence Imaging is a NIGMS - National Institute of General Medical Sciences grant providing up to $125K for university, nonprofit, healthcare org. Applications are due 2028-04-30 (open). Check eligibility and apply with FindGrants.

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Focus Areas

health research

Eligibility

universitynonprofithealthcare org

How to Apply

Funding Range

Up to $125K

Deadline

2028-04-30

Complexity
Medium
  1. 1Confirm your organization is eligible for De novo Design of Proteins for Catalysis and Fluorescence Imaging from NIGMS - National Institute of General Medical Sciences, checking organization type, location, and any population or project requirements.
  2. 2Gather the required documents and information, including your organization details, project plan, and budget figures.
  3. 3Draft your application narrative and budget addressing the funder's priorities and review criteria. FindGrants can draft each section for you to review and edit.
  4. 4Review every section against the requirements checklist, then export a submission-ready application pack and submit it to NIGMS - National Institute of General Medical Sciences before the deadline.
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De novo Design of Proteins for Catalysis and Fluorescence Imaging: Frequently Asked Questions

Who is eligible for the De novo Design of Proteins for Catalysis and Fluorescence Imaging?

De novo Design of Proteins for Catalysis and Fluorescence Imaging is offered by NIGMS - National Institute of General Medical Sciences and is generally open to university, nonprofit, healthcare org. It is open to organizations nationwide unless the funder specifies otherwise. Review the specific eligibility terms before applying, since funders set their own requirements around organization type, location, and the population or project being served.

How much funding does the De novo Design of Proteins for Catalysis and Fluorescence Imaging provide?

De novo Design of Proteins for Catalysis and Fluorescence Imaging provides up to $125K per award from NIGMS - National Institute of General Medical Sciences. Actual award sizes depend on the scope of your project, available program funds, and the number of applicants, so build a budget that reflects realistic, allowable costs rather than the maximum figure.

When is the De novo Design of Proteins for Catalysis and Fluorescence Imaging deadline?

Applications for De novo Design of Proteins for Catalysis and Fluorescence Imaging are due 2028-04-30 (open). Because deadlines can change, verify the date with the funder, NIGMS - National Institute of General Medical Sciences, and give yourself enough time to prepare a complete, competitive application before the close date.

How do you apply for the De novo Design of Proteins for Catalysis and Fluorescence Imaging?

To apply for De novo Design of Proteins for Catalysis and Fluorescence Imaging, confirm your eligibility, gather the required documents, and prepare a narrative and budget that address the funder's priorities. FindGrants guides you step by step and can draft each section, then exports a submission-ready application pack for this grant from NIGMS - National Institute of General Medical Sciences.