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Updated: Dec 6, 2025

Tractable Mammalian Cell Infections with Protozoan-primed Bacteria
Published on: April 2, 2013
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.
Abstract:
Through coevolution with host cells, microorganisms have acquired mechanisms to avoid the detection by the host surveillance system and to use the cell's supplies to establish themselves. Indeed, certain pathogens have evolved proteins that imitate specific eukaryotic cell proteins, allowing them to manipulate host pathways, a phenomenon termed molecular mimicry. Bacterial "eukaryotic-like proteins" are a remarkable example of molecular mimicry. They are defined as proteins that strongly resemble eukaryotic proteins or that carry domains that are predominantly present in eukaryotes and that are generally absent from prokaryotes. The widest diversity of eukaryotic-like proteins known to date can be found in members of the bacterial genus Legionella, some of which cause a severe pneumonia in humans. The characterization of a number of these proteins shed light on their importance during infection. The subsequent identification of eukaryotic-like genes in the genomes of other amoeba-associated bacteria and bacterial symbionts suggested that eukaryotic-like proteins are a common means of bacterial evasion and communication, shaped by the continuous interactions between bacteria and their protozoan hosts. In this review, we discuss the concept of molecular mimicry using Legionella as an example and show that eukaryotic-like proteins effectively manipulate host cell pathways. The study of the function and evolution of such proteins is an exciting field of research that is leading us toward a better understanding of the complex world of bacterium-host interactions. Ultimately, this knowledge will teach us how host pathways are manipulated and how infections may possibly be tackled.
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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