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9R00

De novo NTF2-like protein with a 2-helix C-terminal extension.

Summary for 9R00
Entry DOI10.2210/pdb9r00/pdb
Related9QZD
DescriptorNTF2_HH, CADMIUM ION, CHLORIDE ION, ... (4 entities in total)
Functional Keywordsntf2, de novo protein
Biological sourcesynthetic construct
Total number of polymer chains1
Total formula weight17359.58
Authors
Nadal, M.,Marcos, E.,Castellvi, A. (deposition date: 2025-04-24, release date: 2025-10-22)
Primary citationNadal, M.,Albi-Puig, J.,Castellvi, A.,Garcia-Franco, P.M.,Vega, S.,Velazquez-Campoy, A.,Marcos, E.
Buttressing ligand-binding pockets in de novo designed NTF2-like domains.
Protein Sci., 34:e70323-e70323, 2025
Cited by
PubMed Abstract: NTF2-like proteins are compact α + β fold domains with cone-shaped architectures and internal pockets, making them attractive scaffolds for the de novo design of small-molecule binders and enzymes. However, creating ligand-binding pockets often compromises folding stability, posing a key challenge in de novo protein design. Here, we introduce strategies to stabilize NTF2-like domains while preserving pocket geometry and accessibility. By expanding the hydrophobic core through computationally designed α-helical subdomains or homodimer interfaces buttressing the β-sheet's convex face, we enhance structural stability without blocking pocket access on the concave face. Biochemical, biophysical, and crystallographic analyses confirm that the designed buttressing elements maintain the intended fold and support diverse, well-formed hydrophobic ligand-binding pockets with increased preorganization. Our results demonstrate that structural stabilization and pocket optimization need not be mutually exclusive, providing a generalizable approach to create robust ligand-binding proteins. This framework addresses a major bottleneck in protein design and should fuel the development of NTF2-based scaffolds for applications in small-molecule biosensing and enzyme catalysis.
PubMed: 41074781
DOI: 10.1002/pro.70323
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (2 Å)
Structure validation

243531

数据于2025-10-22公开中

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