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Updated: Jul 19, 2026

Legionella pneumophila Outer Membrane Vesicles: Isolation and Analysis of Their Pro-inflammatory Potential on Macrophages
Published on: February 22, 2017
Domain motions of the Mip protein from Legionella pneumophila
Martin Horstmann1, Philipp Ehses, Kristian Schweimer
1Lehrstuhl für Experimentelle Physik 5, Universität Würzburg, Würzburg, Germany.
Abstract:
The homodimeric 45.6 kDa (total mass) Mip protein, a virulence factor from Legionella pneumophila, was investigated with solution NMR spectroscopy and molecular dynamics (MD) simulations. Two Mip monomers are dimerized via an N-terminal helix bundle that is connected via a long alpha-helix to a C-terminal FKBP domain in each subunit. More than 85% of the amino acids were identified in triple-resonance NMR spectra. (15)N relaxation analysis showed a bimodal distribution of R(1)/R(2) values, with the lower ratio in the N-terminal domain. Relaxation dispersion measurements confirmed that these reduced ratios did not originate from conformational exchange. Thus, two different correlation times (tau(c)) can be deduced, reflecting partly uncoupled motions of both domains. Relaxation data of a Mip(77)(-)(213) monomer mutant were similar to those observed in the dimer, corroborating that the FKBP domain, including part of the connecting helix, behaves as one dynamic entity. MD simulations (18 ns) of the Mip dimer also yielded two different correlation times for the two domains and thus confirm the independence of the domain motions. Principal component analysis of the dihedral space covariance matrix calculated from the MD trajectory suggests a flexible region in the long connecting helix that acts as a hinge between the two domains. Such motion provides a possible explanation of how Mip can bind to complex molecular components of the extracellular matrix and mediate alveolar damage and bacterial spread in the lung.
Insights
The Mip protein from Legionella pneumophila exhibits independent domain motions, explained by a flexible hinge region. This dynamic behavior is crucial for Mip
Area of Science:
- Microbiology and Structural Biology
Background:
- Legionella pneumophila Mip protein is a key virulence factor.
- Mip is a homodimeric protein with N-terminal helix bundles and C-terminal FKBP domains.
Purpose of the Study:
- To investigate the dynamics and structural properties of the Mip protein.
- To understand the relationship between Mip's structure and its function as a virulence factor.
Main Methods:
- Solution NMR spectroscopy for protein structure and dynamics.
- Molecular dynamics (MD) simulations to model Mip dimer behavior.
- Analysis of (15)N relaxation data and relaxation dispersion measurements.
Main Results:
- Over 85% of Mip amino acids were identified by NMR.
- (15)N relaxation analysis revealed distinct dynamics for N-terminal and FKBP domains.
- MD simulations confirmed independent domain motions with a flexible hinge in the connecting helix.
Conclusions:
- The Mip protein exhibits domain independence, facilitated by a flexible hinge.
- This flexibility likely enables Mip to interact with extracellular matrix components.
- Understanding Mip's dynamics provides insights into Legionella pathogenesis and bacterial spread.
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