YfiB: An Outer Membrane Protein Involved in the Virulence of Shigella flexneri

Tanuka Sen1, Naresh K Verma1

  • 1Division of Biomedical Science and Biochemistry, Research School of Biology, The Australian National University, Canberra, ACT 2601, Australia.

Microorganisms
|March 26, 2022
PubMed

Insights

Disrupting the Shigella yfiB gene impairs virulence by affecting cyclic-di-GMP levels, impacting biofilm formation and invasion. This finding offers a new target for anti-Shigella drugs and vaccines.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Infectious Diseases

Background:

  • Shigella flexneri causes bacillary dysentery, a leading cause of diarrheal deaths globally.
  • Multidrug resistance and lack of vaccines necessitate new therapeutic and preventative strategies against Shigella.
  • The YfiBNR system regulates cyclic-di-GMP (c-di-GMP), a key molecule in bacterial virulence.

Purpose of the Study:

  • To investigate the role of the yfiB gene within the YfiBNR signaling system in Shigella virulence.
  • To understand how yfiB disruption affects c-di-GMP levels and downstream virulence factors.
  • To identify potential drug and vaccine targets against Shigella flexneri.

Main Methods:

  • Genetic manipulation to create a yfiB knockout mutant.
  • Biochemical assays to measure c-di-GMP levels.
  • Virulence assays assessing biofilm formation, bacterial invasion, and host-surface attachment.

Main Results:

  • Knocking out the yfiB gene disrupts the YfiBNR system and significantly lowers intracellular c-di-GMP levels.
  • Reduced c-di-GMP negatively impacts biofilm formation, bacterial invasion, and host-surface attachment.
  • The study identified critical amino acid residues in YfiB essential for system function.

Conclusions:

  • The yfiB gene is crucial for Shigella virulence through its role in the YfiBNR c-di-GMP regulatory system.
  • Disruption of this pathway attenuates Shigella virulence, highlighting its importance in pathogen survival.
  • The YfiB protein and the YfiBNR system represent promising targets for developing novel anti-Shigella therapies and vaccines.

Related Concept Videos

Fimbriae, Pili, and Axial Filaments01:28

Fimbriae, Pili, and Axial Filaments

Fimbriae and pili are specialized bacterial surface structures that play pivotal roles in adhesion, genetic exchange, and motility. Composed primarily of pilin protein, these hairlike appendages are crucial for bacterial survival and pathogenicity in various environments.Fimbriae: Adhesion and PathogenicityFimbriae are fine, filamentous structures measuring 2–10 nanometers in diameter and are densely distributed on the bacterial cell surface. They facilitate bacterial adhesion to abiotic...
468
Gram-negative Bacterial Protein Secretion Systems01:17

Gram-negative Bacterial Protein Secretion Systems

Gram-negative bacteria utilize sophisticated protein secretion systems to transport proteins across their double-membrane envelope into the extracellular environment or host cells. Based on their mechanism of action, these systems are classified into one-step and two-step pathways.One-Step Secretion Systems (Types I, III, IV, and VI)One-step secretion systems bypass the periplasm entirely, forming a continuous channel that spans both the inner and outer membranes:Type I Secretion System (T1SS):...
188
Formation of Lipopolysaccharides01:19

Formation of Lipopolysaccharides

Lipopolysaccharides (LPS) are crucial components of the outer membrane of Gram-negative bacteria, serving both structural and functional roles. It contributes to membrane stability and protects bacteria from host immune responses. LPS is composed of three major regions—lipid A, a core oligosaccharide, and an O antigen. The biosynthesis and assembly of LPS involve a highly coordinated set of enzymatic reactions and transport mechanisms. Additionally, LPS is recognized as an endotoxin,...
141
Bacterial Translocation and Protein Secretion01:26

Bacterial Translocation and Protein Secretion

Bacterial protein secretion involves translocation systems to ensure proteins reach their designated locations, including the plasma membrane, periplasm, outer membrane, or the external environment. These translocation systems are vital for bacterial physiology, supporting processes like membrane assembly, enzymatic activity in the periplasm, and interactions with the external environment. The division of labor between Sec and Tat pathways ensures efficiency in handling proteins with diverse...
119
Outer Layers of the Cell Envelope01:18

Outer Layers of the Cell Envelope

The outermost layers of prokaryotic cells play a critical role in their survival, virulence, and interaction with the environment. These layers, often composed of polysaccharides, polypeptides, or proteins, form protective and adhesive structures that vary in organization and function.Capsules and Slime LayersCapsules are highly organized, tightly bound layers that firmly attach to the bacterial cell wall. Capsules are usually made of polysaccharides, though some are made of polypeptides. These...
444
Cytoskeletal Proteins in Bacteria01:29

Cytoskeletal Proteins in Bacteria

Bacterial cells were initially considered simple, randomly organized structures lacking a cytoskeleton. However, the discovery of cytoskeleton homologs in bacteria led to the change of this opinion. Bacterial cytoskeletal filaments regulate the cell shape, cell polarity, cell division, and partitioning of plasmids during cell division. It was later discovered that bacterial cytoskeletal proteins, mainly actin and tubulin homologs, are diverse compared to their eukaryotic counterparts. On the...
3.6K