Molecular Mimicry: a Paradigm of Host-Microbe Coevolution Illustrated by Legionella

Sonia Mondino1,2, Silke Schmidt1,2,3, Carmen Buchrieser4,2

  • 1Institut Pasteur, Biologie des Bactéries Intracellulaires, Paris, France.

Mbio
|October 7, 2020
PubMed

Insights

Bacteria use "eukaryotic-like proteins" to mimic host cells, evading detection and manipulating pathways for infection. Studying these proteins, particularly in Legionella, enhances understanding of host-bacterium interactions.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Evolutionary Biology

Background:

  • Microorganisms coevolve with hosts, developing strategies to evade surveillance and utilize host resources.
  • Pathogens employ molecular mimicry, using proteins that imitate host proteins to manipulate cellular pathways.
  • Bacterial "eukaryotic-like proteins" are defined by their resemblance to eukaryotic proteins or domains, often absent in prokaryotes.

Purpose of the Study:

  • To discuss the concept of molecular mimicry using bacterial eukaryotic-like proteins as an example.
  • To highlight the role of eukaryotic-like proteins in bacterial evasion and communication.
  • To explore the potential of studying these proteins for understanding and tackling infections.

Main Methods:

  • Review of existing literature on bacterial eukaryotic-like proteins.
  • Focus on *Legionella* as a model organism for molecular mimicry.
  • Analysis of the function and evolution of eukaryotic-like proteins in bacterium-host interactions.

Main Results:

  • *Legionella* bacteria exhibit a wide diversity of eukaryotic-like proteins, crucial for infection.
  • Eukaryotic-like proteins are a common bacterial strategy for evading host defenses and communicating.
  • These proteins effectively manipulate host cell pathways, aiding bacterial establishment.

Conclusions:

  • Eukaryotic-like proteins are a significant mechanism for bacterial manipulation of host cells.
  • Understanding the evolution and function of these proteins deepens insights into host-pathogen dynamics.
  • This research opens avenues for developing novel strategies to combat bacterial infections by targeting host pathway manipulation.

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