Crystal structure of the lipid flippase MurJ in a "squeezed" form distinct from its inward- and outward-facing forms

Hidetaka Kohga1, Takaharu Mori2, Yoshiki Tanaka1

  • 1Nara Institute of Science and Technology, Ikoma, Nara 630-0192, Japan.

Insights

The bacterial protein MurJ flips Lipid II for cell wall synthesis. New crystal structures reveal a "squeezed" form, suggesting a novel intermediate in the essential Lipid II flipping mechanism.

Area of Science:

  • Microbiology
  • Structural Biology
  • Biochemistry

Background:

  • Bacterial peptidoglycan is essential for cell structure.
  • MurJ protein is crucial for transporting Lipid II, a key building block for peptidoglycan biosynthesis.
  • Previous studies identified inward- and outward-facing structures of MurJ.

Purpose of the Study:

  • To elucidate the mechanism of Lipid II transport by the MurJ protein.
  • To investigate novel conformational states of MurJ involved in substrate translocation.

Main Methods:

  • X-ray crystallography was used to determine the structures of MurJ.
  • Molecular dynamics simulations were performed to analyze protein dynamics.

Main Results:

  • Two inward-facing structures of Arsenophonus endosymbiont MurJ were determined.
  • A novel "squeezed" inward-facing structure of Escherichia coli MurJ was resolved, lacking a substrate-binding cavity.
  • Molecular dynamics simulations supported the "squeezed" form as an intermediate conformation.

Conclusions:

  • The study reveals a previously undescribed "squeezed" conformation of MurJ.
  • This conformation likely represents an intermediate state in the Lipid II flipping mechanism.
  • The findings enhance the understanding of how MurJ facilitates peptidoglycan biosynthesis.

Related Concept Videos

Membrane Asymmetry Regulating Transporters01:19

Membrane Asymmetry Regulating Transporters

Enzymes like flippase, floppase, and scramblase transfer phospholipids from one layer to another in the membrane, thereby affecting membrane asymmetry.
Flippase
Eukaryotic flippases are type-IV P-type ATPases or P4-ATPases belonging to P-type ATPase family proteins that are membrane-bound pumps involved in the ATP-mediated transport of ions and molecules across the membrane. Flippases flip specific phospholipids from the outer to the inner leaflet of a membrane. All P4-ATPases have one...
5.0K
Fluid Mosaic Model01:19

Fluid Mosaic Model

Scientists identified the plasma membrane in the 1890s and its principal chemical components (lipids and proteins) by 1915. The model for plasma membrane structure, proposed in 1935 by Hugh Davson and James Danielli, was the first model to be widely accepted in the scientific community. The model was based on the plasma membrane's "railroad track" appearance in early electron micrographs. Davson and Danielli theorized that the plasma membrane's structure resembled a sandwich...
13.1K
Asymmetric Lipid Bilayer01:35

Asymmetric Lipid Bilayer

Biological membranes show uneven distribution of different types of lipids in the inner and outer layers, resulting in transverse asymmetric membranes. The treatment of the erythrocyte membrane with the enzyme phospholipase confirmed the asymmetric nature of the lipid bilayer. The enzyme hydrolyzes lipids into fatty acids and hydrophilic groups. The phospholipase acts only on the outer layer of the membrane, while the inner layer remains intact. The phospholipase treatment resulted in 80%...
7.9K
Membrane Fluidity01:26

Membrane Fluidity

Membrane fluidity is explained by the fluid mosaic model of the cell membrane, which describes the plasma membrane structure as a mosaic of components—including phospholipids, cholesterol, proteins, and carbohydrates—that gives the membrane a fluid character.
Mosaic nature of the membrane
The mosaic characteristic of the membrane helps the plasma membrane remain fluid. The integral proteins and lipids exist as separate but loosely-attached molecules in the membrane. The membrane is...
12.2K
Assembly of the Lipid Bilayer in the ER01:28

Assembly of the Lipid Bilayer in the ER

Biological membranes are more than just a barrier separating cell cytoplasm from the outside environment. They are highly dynamic and help maintain the integrity and physiological stability of the cells as well as membrane-bound organelles. Membranes also play vital roles in cell-to-cell and intracellular communication.
A large chunk of any biological membrane is composed of phospholipids. These lipids have a heterogeneous distribution across different subcellular organelles and even between...
3.4K
Pinching-off of Coated Vesicles01:32

Pinching-off of Coated Vesicles

Vesicle budding is orchestrated by distinct cytosolic proteins such as adaptor proteins, coat proteins, and GTPases. To initiate vesicle budding, membrane-bending proteins containing crescent-shaped BAR domains bind to the lipid heads in the bilayer and distort the membrane to form a protein-coated vesicle bud. Adaptors proteins such as AP2 for clathrin-coated vesicles can nucleate on the deformed membrane. Finally, coat proteins such as clathrin or COPI and COPII assemble into a coat forming...
3.3K