The malarial host-targeting signal is conserved in the Irish potato famine pathogen

Souvik Bhattacharjee1, N Luisa Hiller, Konstantinos Liolios

  • 1Department of Pathology, Northwestern University, Chicago, Illinois, USA.

Plos Pathogens
|May 31, 2006
PubMed

Insights

Eukaryotic pathogens share conserved host-targeting (HT) signals, specifically the RxLR motif, enabling them to export virulence proteins into host cells. This discovery reveals conserved mechanisms across plant and animal kingdoms for pathogen entry, offering new targets for prophylaxis.

Area of Science:

  • Molecular Biology
  • Pathogen-Host Interactions
  • Eukaryotic Microbiology

Background:

  • Animal and plant eukaryotic pathogens like Plasmodium falciparum and Phytophthora infestans secrete virulence proteins to manipulate host cells.
  • Plasmodium falciparum utilizes a host-targeting (HT) motif (RxLx core) in leader sequences for protein export into host erythrocytes.
  • Understanding these export mechanisms is crucial for developing strategies against diverse pathogens.

Purpose of the Study:

  • To investigate if plant pathogenic oomycetes share similar host-targeting (HT) signals with Plasmodium falciparum.
  • To identify conserved motifs and sequences involved in the export of virulence proteins into host cells.
  • To explore potential cross-kingdom conserved mechanisms for pathogen entry and their implications for prophylaxis.

Main Methods:

  • Analysis of leader sequences from secretory proteins of Phytophthora infestans and other oomycetes.
  • Functional assays using green fluorescent protein (GFP) fusions to assess protein export from P. falciparum to host erythrocytes.
  • Bioinformatic identification and characterization of conserved motifs, particularly the RxLR sequence and downstream residues.

Main Results:

  • A secretory protein from Phytophthora infestans, containing an RxLR sequence, successfully exported GFP fusion proteins from P. falciparum to host erythrocytes.
  • The RxLR motif was conserved in oomycete secretory proteins functioning inside plant cells and was detected in hundreds of proteins across multiple Phytophthora species.
  • A consensus HT motif, including downstream E/D residues, was identified in oomycetes, suggesting an extended sequence (25-30 amino acids) rather than a short linear motif for export.

Conclusions:

  • Eukaryotic microbes share equivalent pathogenic HT signals and conserved mechanisms for accessing host cells across plant and animal kingdoms.
  • The RxLR motif and associated downstream sequences in oomycetes function as a conserved HT signal, analogous to the Plasmodium HT-leader.
  • These conserved pathogenic HT signals represent potential targets for developing broad-spectrum prophylactic strategies against diverse eukaryotic pathogens.

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