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Conformational flexibility of the pentasaccharide LNF-2 deduced from NMR spectroscopy and molecular dynamics
Elin Säwén1, Florian Hinterholzinger, Clas Landersjö
1Department of Organic Chemistry, Arrhenius Laboratory, Stockholm University, S-106 91 Stockholm, Sweden.
Abstract:
Human milk oligosaccharides (HMOs) are important as prebiotics since they stimulate the growth of beneficial bacteria in the intestine and act as receptor analogues that can inhibit the binding of pathogens. The conformation and dynamics of the HMO Lacto-N-fucopentaose 2 (LNF-2), α-L-Fucp-(1 → 4)[β-D-Galp-(1 → 3)]-β-D-GlcpNAc-(1 → 3)-β-D-Galp-(1 → 4)-D-Glcp, having a Lewis A epitope, has been investigated employing NMR spectroscopy and molecular dynamics (MD) computer simulations. 1D (1)H,(1)H-NOESY experiments were used to obtain proton-proton cross-relaxation rates from which effective distances were deduced and 2D J-HMBC and 1D long-range experiments were utilized to measure trans-glycosidic (3)J(CH) coupling constants. The MD simulations using the PARM22/SU01 force field for carbohydrates were carried out for 600 ns with explicit water as solvent which resulted in excellent sampling for flexible glycosidic torsion angles. In addition, in vacuo MD simulations were performed using an MM3-2000 force field, but the agreement was less satisfactory based on an analysis of heteronuclear trans-glycosidic coupling constants. LNF-2 has a conformationally well-defined region consisting of the terminal branched part of the pentasaccharide, i.e., the Lewis A epitope, and a flexible β-D-GlcpNAc-(1 → 3)-β-D-Galp-linkage towards the lactose unit, which is situated at the reducing end. For this β-(1 → 3)-linkage a negative ψ torsion angle is favored, when experimental NMR data is combined with the MD simulation in the analysis. In addition, flexibility on a similar time scale, i.e., on the order of the global overall molecular reorientation, may also be present for the ϕ torsion angle of the β-D-Galp-(1 → 4)-D-Glcp-linkage as suggested by the simulation. It was further observed from a temperature variation study that some (1)H NMR chemical shifts of LNF-2 were highly sensitive and this study indicates that Δδ/ΔT may be an additional tool for revealing conformational dynamics of oligosaccharides.
Insights
Human milk oligosaccharides (HMOs) like LNF-2 are crucial prebiotics. This study used NMR and simulations to reveal LNF-2’s structure, showing a defined Lewis A epitope and flexible linkages, aiding understanding of HMO function.
Area of Science:
- Carbohydrate Chemistry
- Structural Biology
- Computational Chemistry
Background:
- Human milk oligosaccharides (HMOs) are vital prebiotics promoting gut health and inhibiting pathogens.
- Lacto-N-fucopentaose 2 (LNF-2), an HMO with a Lewis A epitope, plays a significant role in infant gut microbiota modulation.
- Understanding HMO conformation and dynamics is key to elucidating their biological functions.
Purpose of the Study:
- To investigate the three-dimensional conformation and dynamics of the HMO Lacto-N-fucopentaose 2 (LNF-2).
- To combine experimental NMR data with molecular dynamics (MD) simulations for accurate structural analysis.
- To explore the flexibility of specific glycosidic linkages within LNF-2.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy, including 1D (1)H,(1)H-NOESY and 2D J-HMBC experiments.
- Molecular Dynamics (MD) simulations using the PARM22/SU01 force field with explicit water solvent (600 ns).
- In vacuo MD simulations with the MM3-2000 force field for comparative analysis.
- Temperature variation studies to analyze (1)H NMR chemical shift sensitivity.
Main Results:
- LNF-2 exhibits a conformationally well-defined Lewis A epitope region.
- The β-D-GlcpNAc-(1 → 3)-β-D-Galp linkage shows flexibility, favoring a negative ψ torsion angle.
- The β-D-Galp-(1 → 4)-D-Glcp linkage may possess flexibility on the timescale of molecular reorientation.
- NMR chemical shift sensitivity to temperature (Δδ/ΔT) is identified as a tool for probing oligosaccharide dynamics.
Conclusions:
- The study provides detailed insights into the conformational landscape of LNF-2, integrating NMR and MD simulation data.
- Specific flexible regions within LNF-2 were identified, contributing to its overall dynamic behavior.
- The findings enhance the understanding of HMO structure-function relationships and their prebiotic activities.
Related Concept Videos
¹H NMR of Conformationally Flexible Molecules: Temporal Resolution
¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR

