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Enrichment of Bacterial Lipoproteins and Preparation of N-terminal Lipopeptides for Structural Determination by Mass Spectrometry
Published on: May 21, 2018
Structure of the type VI secretion phospholipase effector Tle1 provides insight into its hydrolysis and membrane
Haidai Hu1, Heng Zhang2, Zengqiang Gao2
1Key Laboratory of Molecular Virology and Immunology, Institute Pasteur of Shanghai, Chinese Academy of Sciences, Shanghai 200025, People's Republic of China.
Abstract:
A diverse superfamily of phospholipases consisting of the type VI lipase effectors Tle1-Tle5 secreted by the bacterial type VI secretion system (T6SS) have recently been identified as antibacterial effectors that hydrolyze membrane phospholipids. These effectors show no significant homology to known lipases, and their mechanism of membrane targeting and hydrolysis of phospholipids remains unknown. Here, the crystal structure of Tle1 (∼96.5 kDa) from Pseudomonas aeruginosa refined to 2.0 Å resolution is reported, representing the first structure of this superfamily. Its overall structure can be divided into two distinct parts, the phospholipase catalytic module and the putative membrane-anchoring module; this arrangement has not previously been observed in known lipase structures. The phospholipase catalytic module has a canonical α/β-hydrolase fold and mutation of any residue in the Ser-Asp-His catalytic triad abolishes its toxicity. The putative membrane-anchoring module adopts an open conformation composed of three amphipathic domains, and its partial folds are similar to those of several periplasmic or membrane proteins. A cell-toxicity assay revealed that the putative membrane-anchoring module is critical to Tle1 antibacterial activity. A molecular-dynamics (MD) simulation system in which the putative membrane-anchoring module embedded into a bilayer was stable over 50 ns. These structure-function studies provide insight into the hydrolysis and membrane-targeting process of the unique phospholipase Tle1.
Insights
The crystal structure of bacterial phospholipase Tle1 reveals a unique two-part design critical for antibacterial activity. This finding elucidates the mechanism of membrane targeting and phospholipid hydrolysis by type VI secretion system effectors.
Area of Science:
- Structural biology
- Bacteriology
- Biochemistry
Background:
- Type VI secretion system (T6SS) effectors include phospholipases like Tle1-Tle5.
- These antibacterial proteins hydrolyze membrane phospholipids but lack homology to known lipases.
- The mechanism of Tle1 action, including membrane targeting and hydrolysis, is unknown.
Purpose of the Study:
- Determine the crystal structure of Tle1 from Pseudomonas aeruginosa.
- Investigate the structure-function relationship of Tle1.
- Elucidate the mechanism of membrane targeting and phospholipid hydrolysis by Tle1.
Main Methods:
- X-ray crystallography (2.0 Å resolution) of Tle1.
- Site-directed mutagenesis of the catalytic triad (Ser-Asp-His).
- Cell-toxicity assays and molecular dynamics (MD) simulations.
Main Results:
- The Tle1 structure comprises a phospholipase catalytic module (α/β-hydrolase fold) and a putative membrane-anchoring module.
- Mutation of the catalytic triad abolished Tle1 toxicity.
- The membrane-anchoring module is essential for antibacterial activity and stably embedded into lipid bilayers in MD simulations.
Conclusions:
- Tle1 possesses a unique structural organization not seen in other lipases.
- The membrane-anchoring module is crucial for Tle1's antibacterial function.
- These findings provide mechanistic insights into Tle1's phospholipid hydrolysis and membrane interaction.
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