1Landry RM, An D, Hupp JT, et al. Mucin-Pseudomonas aeruginosa interactions promote biofilm formation and antibiotic resistance[J]. Mol Microbiol, 2006, 59( 1 ) : 142-151.
2Scharfman A, Arora SK, Delmotte P, et al. Recognition of Lewis x derivatives present on mucins by flagellar components of Pseudomonas aeruginosa[J]. Infect Immun, 2001,69(9) 5243-5248.
3Lillehoj EP, Kim BT, Kim KC. Identification of Pseudomonas aeruginosa flagellin as an adhesin for Mucl mucin[J]. Am J Physiol Lung Cell Mol Physiol,2002, 282(4) : L751-L756.
4Gilmer CL, van Schaik EJ, Audette GF, et al. The Pseudomonas aeruginosa type Ⅳ pilin receptor binding domain functions as an adhesin for both biotic and abiotic surfaces[J]. Mol Microbiol, 2006, 59(4) : 1083-1096.
5Imberty A, wimmerova M, Mitchell EP, et al. Structures of the lectins from Pseudomonas aeruginosa: insight into the molecular basis for host glycan recognition[J]. Microbes Infect, 2004, 6(2): 221-228.
6Tielen P, Strathmann M. Jaeger KE, et al. Alginate acetylation influences initial surface colonization by mucoid Pseudomonas aeruginosa[J]. Microbiol Res, 2005, 160(2): 165-176.
7Roussel P, Lamblin G. The glycosylation of airway mucins in cystic fibrosis and its relationship with lung infection by Pseudomonas aeruginosa[J]. Adv Exp Med Biol, 2003, 535: 17-32.
8Morelle W, Sutton-Smith M, Morris HR, et al. FAB-MS char acterization of sialyl Lewis x determinants on polylactosamine chains of human airway mucins secreted by patients suffering from cystic fibrosis or chronic bronchitis[J]. Glycoconj J, 2001, 18 (9) : 699-708.
9Oceandy D, McMorran BJ, Smith SN, et al. Gene complementation of airway epithelium in the cystic fibrosis mouse is necessary and sufficient to correct the pathogen clearance and inflammatory abnormalities[J]. Hum Mol Gent, 2002, 11 (9): 1059-1067.
10Saba S, Soong G, Greenberg S, et al. Bacterial stimulation of epithelial G-CSF and GM-CSF expression promotes PMN survival in CF airways[J]. Am J Respir Cell Mol Biol, 2002, 27(5): 561-567.