The versatility of Helicobacter pylori CagA effector protein functions: The master key hypothesis
Steffen Backert1, Nicole Tegtmeyer, Matthias Selbach
1University College Dublin, Ireland. steffen.backert@ucd.ie <steffen.backert@ucd.ie>
Abstract:
Several bacterial pathogens inject virulence proteins into host target cells that are substrates of eukaryotic tyrosine kinases. One of the key examples is the Helicobacter pylori CagA effector protein which is translocated by a type-IV secretion system. Injected CagA becomes tyrosine-phosphorylated on EPIYA sequence motifs by Src and Abl family kinases. CagA then binds to and activates/inactivates multiple signaling proteins in a phosphorylation-dependent and phosphorylation-independent manner. A recent proteomic screen systematically identified eukaryotic binding partners of the EPIYA phosphorylation sites of CagA and similar sites in other bacterial effectors by high-resolution mass spectrometry. Individual phosphorylation sites recruited a surprisingly high number of interaction partners suggesting that each phosphorylation site can interfere with many downstream pathways. We now count 20 reported cellular binding partners of CagA, which represents the highest quantitiy among all yet known virulence-associated effector proteins in the microbial world. This complexity generates a highly remarkable and puzzling scenario. In addition, the first crystal structure of CagA provided us with new information on the function of this important virulence determinant. Here we review the recent advances in characterizing the multiple binding signaling activities of CagA. Injected CagA can act as a 'master key' that evolved the ability to highjack multiple host cell signalling cascades, which include the induction of membrane dynamics, actin-cytoskeletal rearrangements and the disruption of cell-to-cell junctions as well as proliferative, pro-inflammatory and anti-apoptotic nuclear responses. The discovery that different pathogens use this common strategy to subvert host cell functions suggests that more examples will emerge soon.
Insights
The bacterial protein CagA, injected by Helicobacter pylori, hijacks host cell signaling pathways by interacting with numerous host proteins. This
Area of Science:
- Microbiology and Molecular Biology
- Cellular Signaling
- Pathogen-Host Interactions
Background:
- Bacterial pathogens deliver effector proteins into host cells, influencing host cell functions.
- The Helicobacter pylori CagA protein is a key virulence factor injected via a type-IV secretion system.
- CagA is phosphorylated by host kinases on EPIYA motifs, altering its interactions with host proteins.
Purpose of the Study:
- To review recent advances in understanding the signaling activities of the Helicobacter pylori CagA effector protein.
- To highlight the extensive network of host-cell binding partners of CagA.
- To discuss the functional consequences of CagA's interactions with host signaling pathways.
Main Methods:
- Proteomic screening using high-resolution mass spectrometry to identify eukaryotic binding partners of CagA's phosphorylation sites.
- Analysis of the crystal structure of CagA to gain insights into its function.
- Review of existing literature on CagA's phosphorylation-dependent and -independent interactions.
Main Results:
- Systematic identification of eukaryotic binding partners for CagA's EPIYA phosphorylation sites.
- Discovery that individual phosphorylation sites recruit a high number of interaction partners, affecting multiple pathways.
- CagA has 20 reported cellular binding partners, the highest number for any known microbial virulence effector.
- The crystal structure of CagA provides new functional information.
Conclusions:
- CagA acts as a 'master key,' hijacking diverse host cell signaling cascades.
- Hijacked pathways include membrane dynamics, cytoskeletal rearrangements, cell junctions, proliferation, inflammation, and apoptosis.
- The strategy of subverting host cell functions using effector proteins is common among pathogens, suggesting more examples will be found.
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