Surface anchoring of a bacterial adhesin secreted by the two-partner secretion pathway

Amy Z Buscher1, Susan Grass, John Heuser

  • 1Edward Mallinckrodt Department of Pediatrics , Washington University School of Medicine, 660 S. Euclid Avenue, St. Louis, MO 63110, USA.

Insights

The Haemophilus influenzae HMW1 adhesin anchors to the bacterial outer membrane via its C-terminus, interacting with the HMW1B translocator. This anchoring mechanism involves disulfide bond formation and may apply to other two-partner secretion system proteins.

Area of Science:

  • Microbiology
  • Bacterial protein secretion
  • Outer membrane proteins

Background:

  • Most Gram-negative bacterial surface proteins are integral outer-membrane proteins.
  • Exceptions include adhesins like Haemophilus influenzae HMW1/HMW2, secreted via the two-partner secretion system.

Purpose of the Study:

  • To elucidate the anchoring mechanism of the HMW1 adhesin to the bacterial surface.
  • To understand how HMW1 is translocated and stabilized on the outer membrane.

Main Methods:

  • Mutagenesis of HMW1 and HMW1B.
  • Polyethylene glycol maleimide labeling.
  • Immunolabeling studies.
  • Coexpression of wild-type and mutant HMW1.

Main Results:

  • HMW1 forms hair-like fibers on the bacterial surface, often in pairs.
  • HMW1 anchoring directly correlates with HMW1B outer membrane translocator levels.
  • Anchoring requires the C-terminal 20 amino acids of HMW1, involving disulfide bond formation between conserved cysteines.
  • The HMW1 C-terminus appears to occupy the HMW1B pore, remaining inaccessible to surface labeling.

Conclusions:

  • HMW1 is anchored to the bacterial surface through interaction with the HMW1B translocator.
  • Disulfide bond formation in the C-terminus is crucial for HMW1 anchoring.
  • The C-terminus of HMW1 likely inserts into the HMW1B pore.
  • This mechanism may be conserved among surface proteins secreted by the two-partner secretion system.

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