Hydrophobic moment drives penetration of bacterial membranes by transmembrane peptides

Tyler S Johnson1, Aleksandra A Bourdine1, Charles M Deber1

  • 1Program in Molecular Medicine, Research Institute, The Hospital for Sick Children, Toronto, Ontario, Canada; Department of Biochemistry, University of Toronto, Toronto, Ontario, Canada.

PubMed

Insights

Antimicrobial resistance (AMR) is a global threat. New membrane-active peptides target efflux pumps, with hydrophobic moment driving bacterial membrane permeabilization and depolarization to combat AMR infections.

Area of Science:

  • Microbiology
  • Biochemistry
  • Drug Discovery

Background:

  • Antimicrobial resistance (AMR) poses a significant global health challenge.
  • Multi-drug resistant (MDR) efflux pumps are key contributors to AMR.
  • Membrane-active peptides offer a promising alternative strategy against AMR.

Purpose of the Study:

  • To investigate the mechanism of action for transmembrane peptides (TMs) targeting the AcrB efflux pump.
  • To understand how TMs associate with and penetrate bacterial membranes.
  • To identify key peptide properties influencing membrane activity.

Main Methods:

  • Design and synthesis of novel transmembrane peptides (TMs) targeting the AcrB efflux pump.
  • Utilized N-terminal acetyl-A-(Sar)3 and C-terminal lysine tags for improved peptide properties.
  • Investigated peptide-induced bacterial membrane permeabilization and depolarization.

Main Results:

  • Peptide hydrophobic moment (μH) was identified as the primary driver of bacterial membrane permeabilization and depolarization.
  • Mechanism likely involves lateral-phase separation of negatively-charged lipids and disruption of lipid packing.
  • Demonstrated a correlation between μH and the permeabilizing or non-permeabilizing function of TMs.

Conclusions:

  • Hydrophobic moment (μH) is a critical parameter in designing effective membrane-active peptides.
  • Understanding μH can guide the development of novel antimicrobial strategies targeting bacterial membranes.
  • This research provides insights into overcoming AMR by targeting MDR efflux pumps.

Related Concept Videos

Aquaporins01:25

Aquaporins

Aquaporins or AQPs are a family of integral membrane proteins whose primary function is to transport water, while some called aquaglyceroporins also transport glycerol. In addition, aquaporins have also been suspected to be involved in transporting volatile substances, such as carbon dioxide and ammonia, across membranes. Such AQPs that act as gas channels are often highly expressed in cells involved in the gaseous exchange, such as red blood cells, epithelial cells, and pulmonary capillaries.
4.9K
Multi-pass Transmembrane Proteins and β-barrels01:09

Multi-pass Transmembrane Proteins and β-barrels

In multi-pass transmembrane proteins, the polypeptide chain crosses the membrane more than once. The transmembrane polypeptide chain either forms an α-helix or β-strand structure. α-Helix containing multi-pass transmembrane proteins are ubiquitous, whereas β-strand containing ones are mainly found in gram-negative bacteria, mitochondria, and chloroplasts.
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as...
5.3K
Single-pass Transmembrane Proteins01:25

Single-pass Transmembrane Proteins

Integral membrane proteins are tightly associated with the cell membrane and play a crucial role in cell communication, signaling, adhesion, and transport of the molecules. Some integral membrane proteins are present only in the membrane monolayer. For example, the enzyme fatty acid amide hydrolase is present in the cytoplasmic side of the membrane monolayer. In contrast, another type of integral membrane protein, also known as a transmembrane protein, spans across the membrane. Transmembrane...
5.0K
Insertion of Single-pass Transmembrane Proteins in the RER01:26

Insertion of Single-pass Transmembrane Proteins in the RER

Integral membrane proteins are proteins adhered to the lipid bilayer of a cell organelle or membrane. They can be of two types: transmembrane integral proteins that span the lipid bilayer and monotopic proteins that are attached to either side of the membrane but do not pass through it.
Integral transmembrane proteins possess transmembrane and extra membrane domains. The transmembrane domains are primarily made of 20-25 hydrophobic amino acids arranged in a helical secondary confirmation. These...
6.8K
Insertion of Multi-pass Transmembrane Proteins in the RER01:29

Insertion of Multi-pass Transmembrane Proteins in the RER

The rough ER membrane synthesizes, assembles, and embeds transmembrane proteins in diverse topologies. These proteins function as transporters or channels and can remain in the ER membrane or are sent to the Golgi complex, lysosome, and cell membrane.
The multipass transmembrane proteins are the type IV integral membrane proteins with multiple topogenic sequences determining their spatial arrangement in the ER membrane. Nearly all multipass proteins lack a cleavable signal sequence and use...
8.1K
Introduction to Membrane Proteins01:16

Introduction to Membrane Proteins

The cell membrane, or plasma membrane, is an ever-changing landscape. It is described as a fluid mosaic where various macromolecules are embedded in the phospholipid bilayer. Among the macromolecules are proteins. The protein content varies across cell types. For example, mitochondrial inner membranes contain ~76% protein content, while myelin contains ~18% protein content. Individual cells contain many types of membrane proteins—red blood cells contain over 50—and different cell...
66.7K