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A Comparative Genome Analysis Identifies Distinct Sorting Pathways in Gram-positive Bacteria

Overview
Journal Infect Immun
Date 2004 Apr 23
PMID 15102780
Citations 89
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Abstract

Surface proteins in gram-positive bacteria are frequently required for virulence, and many are attached to the cell wall by sortase enzymes. Bacteria frequently encode more than one sortase enzyme and an even larger number of potential sortase substrates that possess an LPXTG-type cell wall sorting signal. In order to elucidate the sorting pathways present in gram-positive bacteria, we performed a comparative analysis of 72 sequenced microbial genomes. We show that sortase enzymes can be partitioned into five distinct subfamilies based upon their primary sequences and that most of their substrates can be predicted by making a few conservative assumptions. Most bacteria encode sortases from two or more subfamilies, which are predicted to function nonredundantly in sorting proteins to the cell surface. Only approximately 20% of sortase-related proteins are most closely related to the well-characterized Staphylococcus aureus SrtA protein, but nonetheless, these proteins are responsible for anchoring the majority of surface proteins in gram-positive bacteria. In contrast, most sortase-like proteins are predicted to play a more specialized role, with each anchoring far fewer proteins that contain unusual sequence motifs. The functional sortase-substrate linkage predictions are available online (http://www.doe-mbi.ucla.edu/Services/Sortase/) in a searchable database.

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References
1.
Kaneko T, Nakamura Y, Sato S, Minamisawa K, Uchiumi T, Sasamoto S . Complete genomic sequence of nitrogen-fixing symbiotic bacterium Bradyrhizobium japonicum USDA110 (supplement). DNA Res. 2003; 9(6):225-56. DOI: 10.1093/dnares/9.6.225. View

2.
Bentley S, Maiwald M, Murphy L, Pallen M, Yeats C, Dover L . Sequencing and analysis of the genome of the Whipple's disease bacterium Tropheryma whipplei. Lancet. 2003; 361(9358):637-44. DOI: 10.1016/S0140-6736(03)12597-4. View

3.
Roche F, Massey R, Peacock S, Day N, Visai L, Speziale P . Characterization of novel LPXTG-containing proteins of Staphylococcus aureus identified from genome sequences. Microbiology (Reading). 2003; 149(Pt 3):643-654. DOI: 10.1099/mic.0.25996-0. View

4.
Paulsen I, Banerjei L, Myers G, Nelson K, Seshadri R, Read T . Role of mobile DNA in the evolution of vancomycin-resistant Enterococcus faecalis. Science. 2003; 299(5615):2071-4. DOI: 10.1126/science.1080613. View

5.
Bae T, Schneewind O . The YSIRK-G/S motif of staphylococcal protein A and its role in efficiency of signal peptide processing. J Bacteriol. 2003; 185(9):2910-9. PMC: 154403. DOI: 10.1128/JB.185.9.2910-2919.2003. View