| 1. |
Lorenz MG, Wackernagel W (1994) Bacterial gene transfer by natural genetic transformation in the environment. Microbiol Rev
58:563–602
|
| |
| 2. |
Li YH, Lau PCY, Lee JH, Ellen RP, Cvitkovitch DG (2001) Natural genetic transformation of Streptococcus mutans growing in biofilms. J Bacteriol 183:897–908
|
| |
| 3. |
Håvarstein LS, Coomaraswamy G, Morrison DA (1995) An unmodified heptadecapeptide pheromone induces competence for genetic
transformation in Streptococcus pneumoniae. Proc Natl Acad Sci U S A 92:11140–11144
|
| |
| 4. |
Håvarstein LS, Hakenbeck R, Gaustad P (1997) Natural competence in the genus Streptococcus: evidence that streptococci can change pherotype by interspecies recombinational exchange. J Bacteriol 179:6589–6594
|
| |
| 5. |
Luo P, Li H, Morrison DA (2003) ComX is a unique link between multiple quorum sensing outputs and competence in Streptococcus pneumoniae. Mol Microbiol 50:623–33
|
| |
| 6. |
van der Ploeg JR (2005) Regulation of bacteriocin production in Streptococcus mutans by the quorum-sensing system required for development of genetic competence. J Bacteriol 187:3980–3989
|
| |
| 7. |
Kreth J, Merritt J, Shi W, Qi F (2005) Coordinated bacteriocin production and competence development: a possible mechanism
for taking up DNA from neighboring species. Mol Microbiol 57:392–404
|
| |
| 8. |
Martin B, Quentin Y, Fichant G, Claverys JP (2006) Independent evolution of competence regulatory cascades in streptococci?
Trends Microbiol 14:339–345
|
| |
| 9. |
Johnsborg O, Kristiansen PE, Blomqvist T, Håvarstein LS (2006) A hydrophobic patch in the competence-stimulating peptide,
a pneumococcal competence pheromone, is essential for specificity and biological activity. J Bacteriol 188:1744–1749
|
| |
| 10. |
Syvitski RT, Tian XL, Sampara K, Salman A, Lee SF, Jakeman DL, Li YH (2007) Structure–activity analysis of quorum sensing
signaling peptides from Streptococcus mutans. J Bacteriol 189:1441–1450
|
| |
| 11. |
Cavanagh J, Fairbrother WJ, Palmer AG III, Skelton NJ (1996) Protein NMR spectroscopy: principles and practice. Academic,
New York
|
| |
| 12. |
Greenfield NJ (2006) Using circular dichroism spectra to estimate protein secondary structure. Nat Protoc 1:2876–90
|
| |
| 13. |
Syvitski RT, Burton I, Mattatall NR, Douglas SE, Jakeman DL (2005) Structural characterization of the antimicrobial peptide
pleurocidin from winter flounder. Biochemistry 44:7282–7293
|
| |
| 14. |
Greenfield NJ (1999) Applications of circular dichroism in protein and peptide analysis. Trends Anal Chem 18:236–244
|
| |
| 15. |
Compton LA, Johnson WC Jr (1986) Analysis of protein circular dichroism spectra for secondary structure using a simple matrix
multiplication. Anal Biochem 155:155–167
|
| |
| 16. |
Lobley A, Wallace BA (2001) Dichroweb: a website for the analysis of protein secondary structure from circular dichroism spectra.
Biophys J 80:373A
|
| |
| 17. |
Griesinger C, Otting G, Wuthrich K, Ernst RR (1988) Clean TOCSY for H-1 spin system-identification in macromolecules. J Am
Chem Soc 110:7870–7872
|
| |
| 18. |
Smith LJ, Bolin KA, Schwalbe H, MacArthur MW, Thornton JM, Dobson CM (1996) Analysis of main chain torsion angles in proteins:
prediction of NMR coupling constants for native and random coil conformations. J Mol Biol 255:494–506
|
| |
| 19. |
Laskowski RA, Rullmann JAC, MacArthur MW, Kaptein R, Thornton JM (1996) AQUA and PROCHECK-NMR: programs for checking the quality
of protein structures solved by NMR. J Biomol NMR 8:477–486
|
| |
| 20. |
Aspiras MB, Ellen RP, Cvitkovitch DG (2004) ComX activity of Streptococcus mutans growing in biofilms. FEMS Microbiol Lett 238:167–174
|
| |
| 21. |
Dunny GM, Lee LN, LeBlanc DJ (1991) Improved electroporation and cloning vector system for gram-positive bacteria. Appl Environ
Microbiol 57:1194–1201
|
| |
| 22. |
Kreth J, Hung DCI, Merritt J, Perry J, Zhu L, Goodman SD, Cvitkovitch DG, Shi W, Qi F (2007) The response regulator ComE in
Streptococcus mutans functions both as a transcription activator of mutacin production and repressor of CSP biosynthesis. Microbiol 153:1799–1807
|
| |
| 23. |
Dawid S, Roche AM, Weiser JN (2007) The blp bacteriocins of Streptococcus pneumoniae mediate intra-species competition both in vitro and in vivo. Infect Immun 75:443–451
|
| |
| 24. |
Wang BY, Kuramitsu HK (2005) Interactions between oral bacteria: inhibition of Streptococcus mutans bacteriocin production by Streptococcus gordonii. Appl Environ Microbiol 71:354–362
|
| |
| 25. |
Matsumoto-Nakano M, Kuramitsu HK (2006) Role of bacteriocin immunity proteins in the antimicrobial sensitivity of Streptococcus mutans. J Bacteriol 188:8095–8102
|
| |
| 26. |
Wishart DS, Sykes BD, Richards FM (1992) The chemical-shift index—a fast and simple method for the assignment of protein secondary
structure through NMR-spectroscopy. Biochemistry 31:1647–1651
|
| |
| 27. |
Roccatano D, Colombo G, Fioroni M, Mark A (2002) Mechanism by which 2, 2, 2-trifluoroethanol/water mixtures stabilize secondary-structure
formation in peptides: a molecular dynamics study. Proc Nat Acad Sci U S A 99:12179–12184
|
| |
| 28. |
Allan E, Hussain HA, Crawford KR, Miah S, Ascott ZK, Khwaja MH, Hosie AHF (2007) Genetic variation in comC, the gene encoding competence-stimulating peptide (CSP) in Streptococcus mutans. FEMS Microbiol Lett 268:47–51
|
| |