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Updated: Oct 31, 2025

Method to Visualize and Analyze Membrane Interacting Proteins by Transmission Electron Microscopy
Published on: March 5, 2017
Conserved features of the MlaD domain aid the trafficking of hydrophobic molecules
Angshu Dutta1, Monika Chandravanshi1, Shankar Prasad Kanaujia1
1Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati, Assam, India.
Abstract:
In Gram-negative bacteria, the maintenance of lipid asymmetry (Mla) system is involved in the transport of phospholipids between the inner (IM) and outer membrane. The Mla system utilizes a unique IM-associated periplasmic solute-binding protein, MlaD, which possesses a conserved domain, MlaD domain. While proteins carrying the MlaD domain are known to be primarily involved in the trafficking of hydrophobic molecules, not much is known about this domain itself. Thus, in this study, the characterization of the MlaD domain employing bioinformatics analysis is reported. The profiling of the MlaD domain of different architectures reveals the abundance of glycine and hydrophobic residues and the lack of cysteine residues. The domain possesses a conserved N-terminal region and a well-preserved glycine residue that constitutes a consensus motif across different architectures. Phylogenetic analysis shows that the MlaD domain archetypes are evolutionarily closer and marked by the conservation of a functionally crucial pore loop located at the C-terminal region. The study also establishes the critical role of the domain-associated permeases and the driving forces governing the transport of hydrophobic molecules. This sheds sufficient light on the structure-function-evolutionary relationship of MlaD domain. The hexameric interface analysis reveals that the MlaD domain itself is not a sole player in the oligomerization of the proteins. Further, an operonic and interactome map analysis reveals that the Mla and the Mce systems are dependent on the structural homologs of the nuclear transport factor 2 superfamily.
Insights
The MlaD domain in Gram-negative bacteria, crucial for lipid transport, is characterized by specific amino acid compositions and conserved regions. This bioinformatics study reveals its structure-function-evolutionary relationship.
Area of Science:
- Microbiology
- Structural Biology
- Bioinformatics
Background:
- The maintenance of lipid asymmetry (Mla) system in Gram-negative bacteria facilitates phospholipid transport between the inner and outer membranes.
- The Mla system employs MlaD, an inner membrane-associated periplasmic protein with a conserved MlaD domain, primarily implicated in hydrophobic molecule trafficking.
Purpose of the Study:
- To characterize the MlaD domain using bioinformatics analysis.
- To elucidate the structure-function-evolutionary relationship of the MlaD domain.
Main Methods:
- Bioinformatics analysis including profiling, phylogenetic analysis, and hexameric interface analysis.
- Operonic and interactome map analysis.
Main Results:
- The MlaD domain is rich in glycine and hydrophobic residues, lacking cysteine.
- A conserved N-terminal region and a consensus motif with a preserved glycine residue were identified.
- Phylogenetic analysis indicated evolutionary closeness of MlaD domain archetypes, with a conserved C-terminal pore loop.
- The study highlighted the role of associated permeases and transport driving forces, and that MlaD is not solely responsible for protein oligomerization.
- Mla and Mce systems were found to depend on structural homologs of the nuclear transport factor 2 superfamily.
Conclusions:
- The MlaD domain possesses distinct structural and evolutionary characteristics crucial for its function in lipid transport.
- Understanding the MlaD domain provides insights into the broader mechanisms of hydrophobic molecule transport in bacteria.
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