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Updated: Mar 20, 2026

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Published on: October 13, 2015
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.
Abstract:
Leucine-rich repeat (LRR) proteins are widely distributed in bacteria, playing important roles in various protein-protein interaction processes. In Yersinia, the well-characterized type III secreted effector YopM also belongs to the LRR protein family and is encoded by virulence plasmids. However, little has been known about other LRR members encoded by Yersinia genomes or their evolution. In this study, the Yersinia LRR proteins were comprehensively screened, categorized, and compared. The LRR proteins encoded by chromosomes (LRR1 proteins) appeared to be more similar to each other and different from those encoded by plasmids (LRR2 proteins) with regard to repeat-unit length, amino acid composition profile, and gene expression regulation circuits. LRR1 proteins were also different from LRR2 proteins in that the LRR1 proteins contained an E3 ligase domain (NEL domain) in the C-terminal region or an NEL domain-encoding nucleotide relic in flanking genomic sequences. The LRR1 protein-encoding genes (LRR1 genes) varied dramatically and were categorized into 4 subgroups (a to d), with the LRR1a to -c genes evolving from the same ancestor and LRR1d genes evolving from another ancestor. The consensus and ancestor repeat-unit sequences were inferred for different LRR1 protein subgroups by use of a maximum parsimony modeling strategy. Structural modeling disclosed very similar repeat-unit structures between LRR1 and LRR2 proteins despite the different unit lengths and amino acid compositions. Structural constraints may serve as the driving force to explain the observed mutations in the LRR regions. This study suggests that there may be functional variation and lays the foundation for future experiments investigating the functions of the chromosomally encoded LRR proteins of Yersinia.
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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