Next Article in Journal
Strategies of Luminescent Gold Nanoclusters for Chemo-/Bio-Sensing
Next Article in Special Issue
Plant Leucine-Rich Repeat Receptor Kinase (LRR-RK): Structure, Ligand Perception, and Activation Mechanism
Previous Article in Journal
An Improved HILIC HPLC-MS/MS Method for the Determination of β-ODAP and Its α Isomer in Lathyrus sativus
Previous Article in Special Issue
Structural Characterization of Arabidopsis thaliana NAP1-Related Protein 2 (AtNRP2) and Comparison with Its Homolog AtNRP1
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Sub-Atomic Resolution Crystal Structures Reveal Conserved Geometric Outliers at Functional Sites

1
Faculty of Biochemistry and Molecular Medicine & Biocenter Oulu, University of Oulu, 90014 Oulu, Finland
2
European Spallation Source, 22100 Lund, Sweden
3
Department of Biomedicine, University of Bergen, 5020 Bergen, Norway
*
Author to whom correspondence should be addressed.
Molecules 2019, 24(17), 3044; https://doi.org/10.3390/molecules24173044
Submission received: 24 July 2019 / Revised: 19 August 2019 / Accepted: 20 August 2019 / Published: 22 August 2019
(This article belongs to the Special Issue Frontier of Protein Crystallography)

Abstract

Myelin protein 2 (P2) is a peripheral membrane protein of the vertebrate nervous system myelin sheath, having possible roles in both lipid transport and 3D molecular organization of the multilayered myelin membrane. We extended our earlier crystallographic studies on human P2 and refined its crystal structure at an ultrahigh resolution of 0.72 Å in perdeuterated form and 0.86 Å in hydrogenated form. Characteristic differences in C–H…O hydrogen bond patterns were observed between extended β strands, kinked or ending strands, and helices. Often, side-chain C–H groups engage in hydrogen bonding with backbone carbonyl moieties. The data highlight several amino acid residues with unconventional conformations, including both bent aromatic rings and twisted guanidinium groups on arginine side chains, as well as non-planar peptide bonds. In two locations, such non-ideal conformations cluster, providing proof of local functional strain. Other ultrahigh-resolution protein structures similarly contain chemical groups, which break planarity rules. For example, in Src homology 3 (SH3) domains, a conserved bent aromatic residue is observed near the ligand binding site. Fatty acid binding protein (FABP) 3, belonging to the same family as P2, has several side chains and peptide bonds bent exactly as those in P2. We provide a high-resolution snapshot on non-ideal conformations of amino acid residues under local strain, possibly relevant to biological function. Geometric outliers observed in ultrahigh-resolution protein structures are real and likely relevant for ligand binding and conformational changes. Furthermore, the deuteration of protein and/or solvent are promising variables in protein crystal optimization.
Keywords: ultrahigh resolution; protein structure; myelin protein; fatty acid-binding protein; geometry; deuteration ultrahigh resolution; protein structure; myelin protein; fatty acid-binding protein; geometry; deuteration

Share and Cite

MDPI and ACS Style

Laulumaa, S.; Kursula, P. Sub-Atomic Resolution Crystal Structures Reveal Conserved Geometric Outliers at Functional Sites. Molecules 2019, 24, 3044. https://doi.org/10.3390/molecules24173044

AMA Style

Laulumaa S, Kursula P. Sub-Atomic Resolution Crystal Structures Reveal Conserved Geometric Outliers at Functional Sites. Molecules. 2019; 24(17):3044. https://doi.org/10.3390/molecules24173044

Chicago/Turabian Style

Laulumaa, Saara, and Petri Kursula. 2019. "Sub-Atomic Resolution Crystal Structures Reveal Conserved Geometric Outliers at Functional Sites" Molecules 24, no. 17: 3044. https://doi.org/10.3390/molecules24173044

APA Style

Laulumaa, S., & Kursula, P. (2019). Sub-Atomic Resolution Crystal Structures Reveal Conserved Geometric Outliers at Functional Sites. Molecules, 24(17), 3044. https://doi.org/10.3390/molecules24173044

Article Metrics

Back to TopTop