The properties of Bacillus cereus hemolysin II pores depend on environmental conditions

Zhanna I Andreeva1, Vladimir F Nesterenko, Maria G Fomkina

  • 1Institute of Biochemistry and Physiology of Microorganisms, Russian Academy of Sciences, Pushchino, Moscow Region, 142290, Russia.

Insights

Hemolysin II (HlyII) forms beta-barrel pores in cell membranes, with structure and function influenced by temperature and salt concentration. These pores exhibit voltage-induced gating at high salt levels, revealing environmental sensitivity.

Area of Science:

  • Biochemistry
  • Biophysics
  • Microbiology

Background:

  • Bacillus cereus is an opportunistic pathogen that produces cytolytic proteins.
  • Hemolysin II (HlyII) is a beta-barrel pore-forming toxin.
  • Understanding HlyII's mechanism is crucial for studying bacterial pathogenesis.

Purpose of the Study:

  • To investigate the pore-forming properties of Hemolysin II (HlyII).
  • To elucidate the structural and functional characteristics of HlyII pores.
  • To understand how environmental factors affect HlyII.

Main Methods:

  • Electron microscopy to visualize HlyII assemblies.
  • Osmotic protection assays to determine pore size.
  • 3D modeling for structural insights.
  • Temperature jump experiments to study dynamics.
  • Conductance measurements in lipid bilayers.

Main Results:

  • HlyII forms heptameric assemblies with inner pore diameters of 1.5-2 nm (EM) or 1-4 nm (3D model).
  • Hemolysis rate is temperature-dependent, with distinct pore structures at different temperatures.
  • HlyII channels are anion-selective and exhibit increased conductance with salt concentration.
  • Voltage-induced gating of HlyII pores observed at high salt concentrations and low negative potentials.

Conclusions:

  • HlyII pore formation and properties are significantly influenced by environmental conditions like temperature and salt concentration.
  • The study provides a comprehensive understanding of HlyII's membrane interactions and pore characteristics.
  • Structural insights combined with functional data enhance our knowledge of this toxin's channel functioning.

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