DexDesign: an OSPREY-based algorithm for designing de novo D-peptide inhibitors.

dc.contributor.author

Guerin, Nathan

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Childs, Henry

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Zhou, Pei

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Donald, Bruce R

dc.date.accessioned

2024-06-01T14:02:19Z

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2024-06-01T14:02:19Z

dc.date.issued

2024-01

dc.description.abstract

With over 270 unique occurrences in the human genome, peptide-recognizing PDZ domains play a central role in modulating polarization, signaling, and trafficking pathways. Mutations in PDZ domains lead to diseases such as cancer and cystic fibrosis, making PDZ domains attractive targets for therapeutic intervention. D-peptide inhibitors offer unique advantages as therapeutics, including increased metabolic stability and low immunogenicity. Here, we introduce DexDesign, a novel OSPREY-based algorithm for computationally designing de novo D-peptide inhibitors. DexDesign leverages three novel techniques that are broadly applicable to computational protein design: the Minimum Flexible Set, K*-based Mutational Scan, and Inverse Alanine Scan. We apply these techniques and DexDesign to generate novel D-peptide inhibitors of two biomedically important PDZ domain targets: CAL and MAST2. We introduce a framework for analyzing de novo peptides-evaluation along a replication/restitution axis-and apply it to the DexDesign-generated D-peptides. Notably, the peptides we generated are predicted to bind their targets tighter than their targets' endogenous ligands, validating the peptides' potential as lead inhibitors. We also provide an implementation of DexDesign in the free and open source computational protein design software OSPREY.

dc.identifier

7670946

dc.identifier.issn

1741-0126

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1741-0134

dc.identifier.uri

https://hdl.handle.net/10161/30750

dc.language

eng

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Oxford University Press (OUP)

dc.relation.ispartof

Protein engineering, design & selection : PEDS

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10.1093/protein/gzae007

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.subject

Humans

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Peptides

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Drug Design

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Algorithms

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PDZ Domains

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DexDesign: an OSPREY-based algorithm for designing de novo D-peptide inhibitors.

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Journal article

duke.contributor.orcid

Zhou, Pei|0000-0002-7823-3416

pubs.begin-page

gzae007

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Duke

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School of Medicine

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Trinity College of Arts & Sciences

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Basic Science Departments

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Institutes and Centers

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Biochemistry

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Duke Cancer Institute

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Chemistry

pubs.publication-status

Published

pubs.volume

37

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