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6L4J

Monomer structure of monellin loop1 mutant (YEPKG)

Summary for 6L4J
Entry DOI10.2210/pdb6l4j/pdb
DescriptorSingle chain Monellin (2 entities in total)
Functional Keywordssingle chain monellin, loop1 mutant, plant protein
Biological sourceDioscoreophyllum cumminsii (Serendipity berry)
Total number of polymer chains2
Total formula weight21338.51
Authors
Manjula, R.,Ramaswamy, S.,Gosavi, S. (deposition date: 2019-10-17, release date: 2021-04-21, Last modification date: 2026-07-22)
Primary citationManjula, R.,Chockalingam, N.,Subramanian, R.,Gosavi, S.
On proline isomerization and 3D-domain-swapping.
Biochem.Biophys.Res.Commun., 821:153872-153872, 2026
Cited by
PubMed Abstract: 3D-domain-swapping is the exchange of identical "domains" between two protein monomers, which leads to homodimerization. This domain exchange can be facilitated by a single hinge-loop extending out. Hinge-loop prolines have been associated with domain-swapping, but their role remains unclear. Previously, we had engineered three domain-swapping variants of the monomeric monellin by replacing the wild-type hinge-loop sequence (L1:YENEGFREIKG) with QEVKG, YEIKG or QVVAG. The central residues of these sequences are hydrophobic (V/I), and lie at the apex of a tight solvent-exposed hinge-loop (L1Δ6) connecting two β-strands (β2-β3). The hydrophobic residue-solvent interaction likely impedes the closure of L1Δ6 and the formation of intra-chain β2-β3 contacts. This promotes domain-swapping. Here, we replaced the apex residue with the borderline-hydrophobic proline and found that it reduced domain-swapping in all three variants, with significant domain-swapping observed only in the most hydrophobic QVPAG construct. We then structurally characterized three monomeric (QEPKG, YEPKG, and QVPAG) and one domain-swapped dimeric (QVPAG) variants of monellin using X-ray crystallography. Interestingly, we find that the dimer has a trans-proline isomer, whereas all three monomers have a cis-proline. Thus, introducing proline into a solvent-exposed tight β-turn may be a robust method for designing cis-proline. Conversely, mutating such a naturally-occurring cis-proline to a hydrophobic amino acid may induce domain-swapping. The trans-proline in a hydrophobic hinge-loop (e.g. QVPAG), can provide rigidity to the domain-swapped dimer enabling the precise design of domain-swapping-driven protein assemblies. Overall, our mutational-design strategy is a step towards clarifying the role of prolines in 3D-domain-swapping and the rational design of proline isomerization.
PubMed: 42102672
DOI: 10.1016/j.bbrc.2026.153872
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (2.3 Å)
Structure validation

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