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Updated: Oct 18, 2025

Membrane-SPINE: A Biochemical Tool to Identify Protein-protein Interactions of Membrane Proteins In Vivo
Published on: November 7, 2013
The Central PXXP Motif Is Crucial for PMAP-23 Translocation across the Lipid Bilayer
Sung-Tae Yang1, Song-Yub Shin2, Sung-Heui Shin1
1Department of Microbiology, School of Medicine, Chosun University, Gwangju 61452, Korea.
Abstract:
PMAP-23, a cathelicidin-derived host defense peptide, does not cause severe membrane permeabilization, but exerts strong and broad-spectrum bactericidal activity. We have previously shown that it forms an amphipathic α-helical structure with a central hinge induced by the PXXP motif, which is implicated in the interaction of PMAP-23 with negatively charged bacterial membranes. Here, we studied the potential roles of the PXXP motif in PMAP-23 translocation across the lipid bilayer by replacing Pro residues with either α-helix former Ala (PMAP-PA) or α-helix breaker Gly (PMAP-PG). Although both PMAP-PA and PMAP-PG led to effective membrane depolarization and permeabilization, they showed less antimicrobial activity than wild-type PMAP-23. Interestingly, we observed that PMAP-23 crossed lipid bilayers much more efficiently than its Pro-substituted derivatives. The fact that the Gly-induced hinge was unable to replace the PXXP motif in PMAP-23 translocation suggests that the PXXP motif has unique structural properties other than the central hinge. Surface plasmon resonance sensorgrams showed that the running buffer almost entirely dissociated PMAP-23 from the membrane surface, while its Pro-substituted derivatives remained significantly bound to the membrane. In addition, kinetic analysis of the sensorgrams revealed that the central PXXP motif allows PMAP-23 to rapidly translocate at the interface between the hydrophilic and hydrophobic phases. Taken together, we propose that the structural and kinetic understanding of the PXXP motif in peptide translocation could greatly aid the development of novel antimicrobial peptides with intracellular targets by promoting peptide entry into bacterial cells.
Insights
The PXXP motif in PMAP-23 is crucial for its efficient translocation across bacterial membranes, enhancing its antimicrobial activity. Understanding this motif can help develop new antimicrobial peptides targeting intracellular bacterial components.
Area of Science:
- Biochemistry
- Molecular Biology
- Antimicrobial Peptides
Background:
- Host defense peptides, such as cathelicidin-derived PMAP-23, exhibit broad-spectrum bactericidal activity.
- PMAP-23 forms an amphipathic α-helical structure with a PXXP motif, crucial for interacting with bacterial membranes.
Purpose of the Study:
- To investigate the role of the PXXP motif in PMAP-23 translocation across lipid bilayers.
- To compare the translocation efficiency and antimicrobial activity of wild-type PMAP-23 with its PXXP-mutated derivatives.
Main Methods:
- Site-directed mutagenesis to create PMAP-PA and PMAP-PG variants.
- Lipid bilayer depolarization and permeabilization assays.
- Surface plasmon resonance (SPR) for kinetic analysis of peptide-membrane interactions.
Main Results:
- PMAP-23 translocated across lipid bilayers more efficiently than its Pro-substituted derivatives (PMAP-PA, PMAP-PG).
- While mutations affected translocation, PMAP-PA and PMAP-PG still induced membrane depolarization and permeabilization.
- SPR analysis revealed that PMAP-23 rapidly translocated at the hydrophilic-hydrophobic interface, unlike its derivatives which showed significant membrane binding.
Conclusions:
- The PXXP motif possesses unique structural properties beyond hinge formation, essential for efficient PMAP-23 translocation.
- Understanding the PXXP motif's role in peptide translocation can guide the development of novel antimicrobial peptides with enhanced intracellular targeting capabilities.
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