Distribution and Evolution of Yersinia Leucine-Rich Repeat Proteins

Yueming Hu1, He Huang2, Xinjie Hui1

  • 1Department of Medical Genetics, Shenzhen University Health Science Center, Shenzhen, People's Republic of China.

Insights

This study comprehensively analyzes Leucine-rich repeat (LRR) proteins in Yersinia, revealing distinct chromosomal (LRR1) and plasmid-encoded (LRR2) protein families. Structural similarities suggest conserved functions despite evolutionary divergence.

Area of Science:

  • Microbiology
  • Protein Science
  • Genomics

Background:

  • Leucine-rich repeat (LRR) proteins are crucial for bacterial protein-protein interactions.
  • Yersinia's type III secreted effector YopM is a known LRR protein encoded by virulence plasmids.
  • Limited knowledge exists regarding other Yersinia LRR proteins and their evolutionary history.

Purpose of the Study:

  • To comprehensively screen, categorize, and compare LRR proteins encoded by Yersinia genomes.
  • To investigate the evolutionary relationships and structural characteristics of chromosomal (LRR1) and plasmid-encoded (LRR2) Yersinia LRR proteins.

Main Methods:

  • Bioinformatic screening and categorization of Yersinia LRR proteins.
  • Comparative analysis of repeat-unit length, amino acid composition, and gene regulation.
  • Maximum parsimony modeling for inferring consensus and ancestral sequences.
  • Structural modeling to compare LRR1 and LRR2 protein structures.

Main Results:

  • Chromosomal LRR1 proteins are distinct from plasmid LRR2 proteins in repeat-unit length, amino acid composition, and gene regulation.
  • LRR1 proteins possess an E3 ligase (NEL) domain or its relic, absent in LRR2 proteins.
  • LRR1 genes diversified into four subgroups (a-d), with LRR1a-c sharing a common ancestor and LRR1d having a separate origin.
  • Structural modeling revealed conserved repeat-unit structures between LRR1 and LRR2 proteins despite sequence differences.

Conclusions:

  • Yersinia LRR proteins encoded by chromosomes and plasmids represent distinct families with potential functional variations.
  • Structural constraints likely drive observed mutations in LRR regions.
  • This study provides a foundation for future research into the functions of chromosomally encoded Yersinia LRR proteins.

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