22LX image
Deposition Date 2026-01-16
Release Date 2026-08-05
Last Version Date 2026-08-05
Entry Detail
PDB ID:
22LX
Keywords:
Title:
De novo designed S-locus Protein 11 (SP11)-like protein (P6522 form)
Biological Source:
Source Organism(s):
Expression System(s):
Method Details:
Experimental Method:
Resolution:
1.50 Å
R-Value Free:
0.21
R-Value Work:
0.17
R-Value Observed:
0.18
Space Group:
P 65 2 2
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:De novo designed SP11-like pr
Chain IDs:A
Chain Length:0
Number of Molecules:1
Biological Source:synthetic construct
Primary Citation
Structural and Stability Analysis of de Novo Designed Proteins Incorporating a Plant Self-Incompatibility Motif.
Proteins ? ? ? (2026)
PMID: 42499170 DOI: 10.1002/prot.70162

Abstact

Artificial protein design enables the creation of stable scaffolds beyond those evolved in nature. Incorporation of native functional motifs into de novo scaffolds provides a promising strategy to mimic natural interactions while altering structural frameworks. Here, we designed de novo S-locus Protein 11 (SP11)-like proteins by incorporating a key feature of the Brassica pollen determinant SP11, which mediates self-incompatibility through specific interaction with the pistil determinant S receptor kinase (SRK). The designed proteins included the six-amino-acid SRK-binding motif from native SP11 but lacked all disulfide bonds characteristic of the plant defensin-like fold. Three variants (SP11-A, SP11-B, SP11-C) were designed using Rosetta and ProteinMPNN sequence optimization and expressed in Escherichia coli. SP11-A and SP11-B were purified and analyzed by circular dichroism spectroscopy. SP11-A exhibited exceptional thermal and chemical stability, demonstrating the robustness of the artificial scaffold, while SP11-B had lower stability and displayed biphasic chemical unfolding behavior. The crystal structures of SP11-A in two space groups were determined at 1.50 and 2.10 A resolution. Notably, the region derived from the native SP11 sequence exhibited two alternative main chain conformations, indicating that incorporation of the natural motif introduced local conformational frustration. Molecular dynamics analysis suggested that the two alternative main chain conformations remain kinetically stable within the 100 ns simulation timescale, without direct interconversion. Together, these results provide insight into how the incorporation of native motifs can influence local structure while preserving global scaffold stability in de novo protein design.

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Primary Citation of related structures
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