548 Bibliography

บรรณานุกรม พัชริ นทร์ วัชริ นทร์ ยานนท์. 2551. เชื้ อแบคทีเรียทีเ่ ป็ นสาเหตุและความไวต่ อยาปฏิชีวนะของหูช้ั น กลางอักเส...

0 downloads 101 Views 212KB Size
บรรณานุกรม พัชริ นทร์ วัชริ นทร์ ยานนท์. 2551. เชื้ อแบคทีเรียทีเ่ ป็ นสาเหตุและความไวต่ อยาปฏิชีวนะของหูช้ั น กลางอักเสบเฉียบพลันในผู้ป่วยเด็กอายุ 3 เดือน ถึง 5 ปี รายงานการวิจยั เพือ่ สอบวุฒิบตั ร แสดงความรู ้ความชํานาญในการประกอบวิชาชีพเวชกรรมสาขาโสต คอ นาสิ กวิทยา ภาควิชาโสต คอ นาสิ กวิทยาคณะแพทยศาสตร์ มหาวิทยาลัยเชียงใหม่ เชียงใหม่. 24 หน้า. ไพรัตน์ ศรแผลง และ วิชยั ลีลาวัชรมาศ. 2010. ความไวต่อยาต้านจุลชีพของเชื้อแลคโตบาซิ ลไล โปรไบโอติกที่แยกได้จากมูลไก่. KKU Res J 15 (78) : August 2010 Alder, J.D. (2005) Daptomycin, a new drug class for treatment of gram-positive infections Drugs Today (Barcelona) 41:81-90. Bayer, A.S., R. Prasad,J. Chandra, A. Koul, A. Verma, R. A. Skurray, N. Firth, M. Brown, S-P Koo, and M.R. Yeaman. (2000) In vitro resistance of Staphylococcus aureus to thrombin- induced microbicidal protein is associated with alterations in membrane fluidity. Infect. Immun. 68:3548-3553. Bayer, A.S., L.I. Kupferwasser, M.H. Brown, R.A. Skurray, S. Grkovic, T. Jones, K. Mukhopadhay, and M.R. Yeaman. (2006) Low- level resistance of Staphylococcus aureus to thrombin-induced platelet microbial protein 1 in vitro associated with qacA gene carriage is independent of multidrug efflux pump activity. Antimicrob. Agents Chemother. 50(7): 2448-54. Chamberlain, N.R., B.G. Mehrtens, Z. Xiong, F.A. Kapral, J.I. Boardman, and J.I. Rearick. (1991) Correlation of carotenoid production, decreased membrane fluidity, and resistance to oleic acid killing in Staphylococcus aureus 18Z. Infect. Immun. 59: 4332-4337. Clauditz, A., A. Resah, K.P. Wieland, A. Peschel, and F. Gotz. (2006). Staphyloxanthin plays a role in the fitness of Staphylococcus aureus and its ability to cope with oxidative stress. Infect. Immun. 74:4950-4953. Cui, L., E. Tominaga, H.M. Neoh, and K. Hiramatsu. (2006) Correlation between reduced daptomycin susceptibility and vancomycin resistance in vancomycin-intermediate Antimicrob. Agents Chemother 50:1079-1082. Davis, A. O., J.O. O’Leary, A. Muthaiyan, M.J. Langevin, A. Delgado, A.T. Abalos, A.R. Fajardo, J. Marek, B.J. Wilkinson, and J.E. Gustafson. (2004). Characterization of Staphylococcus aureus mutants expressing reduced susceptibility to common housecleaners. J. Appl. Bacteriol 98:364-372. 32

Denyer, S.P. (1995) Mechanisms of action of antibacterial biocides. Int. Biodeterior. Biodegrad. 36:227-245. Enright, M. C., N. P. J. Day, C. E. Davies, S. J. Peacock, and B. G. Spratt. (2000) Multilocus sequence typing for characterization of methicillin-resistant and methicillin-susceptible clones of Staphylococcus aureus. Clin. Microbiol. 381008-1015. Friedman, L., J. D. Adler, and J.A. Silverman. (2006) Genetic changes that correlate with reduced susceptibility to daptamycin in Staphylococcus aureus. Antimicrob. Agents and Chemother. 50:2137-2145. Gabrielska, J., and W. Gruszecki. 1996. Zeaxanthin (dihydroxy β-carotene) but not β-carotene rigidifies lipid membranes: a 1H-NMR study of carotenoid-egg phosphatidylochline liposomes. Biochim. Biophys. Acta 1285:167-174. Hiramatsu, K., N. Aritaka, H. Hanaka, S. Kawasaki, Y. Hosoda, S. Hori, Y. Fukuchi, and I. Kobayashi. (1997) Dissemination in Japanese hospital of strains of Staphylococcus aureus heterogeneously resistant to vancomycin. Lancet 350:1670-1673. Junker, F., and J.L. Ramos. (1999) Involvement of the cis-trans isomerase CtiT1 in solvent resistance in Pseudomonas putida DOTT1. J. Bacteriol. 181:5639-5700. Heath, R.J., Y.-T. Yu, S. Shapiro, E. Olson, and C.E. Rock. (1998) Broad spectrum antimicrobial biocides target the FabI component of fatty acid biosynthesis. J. Biol. Chem. 273:3031630320. Heipieper, H.J., R. Diefenbach, and H. Kewloh (1992) Conversion of cis unsaturated to trans, a possible mechanism for the protection of phenol-degrading Pseudomonas putida P8 from substrate toxicity. Appl. Environ. Microbiol. 58:1847-1852. Jagannadhem, M.V., M.K. Chaltopadhyay, C. Subbalakshmi, M. Vairamani, K. Narayanan, C.M. Rao, and S. Shivaji. (2000) carotenoids of an Antarctic psychrotolerant bacterium, Sphingobacterium antarcticus, and a mesophilic bacterium, Sphingobacterium multivorum. Arch. Microbiol. 173:418-424. Jones T., M.R. Yeaman, G. Sakoulas, S.-J. Yang, R.A. Proctor, H.-G. Sahl, J. Schrenzel, Y.Q. Xiong, and A.S. Bayer. (2008) Failures in clinical treatment of Staphylococcus aureus infection with daptomycin are associated with alterations in surface charge, membrane phospholipids asymmetry and drug binding. Antimicrob. Agents Chemother. 52:269-278. Katzif S., D. Danavall, S. Browers, J. T. Balthazar, and W.M. Shafer. 2003. The major cold

33

shock gene, cspA, is involved in the susceptibility of Staphylococcus aureus to an antimicrobial peptide of human cathepsin G. Infect. Immun. 71(8):4304-12. Kim, J., M. Mosior, L.A. Chung, H. Wu, and S. McLauughlin. (1991) Bindingof peptides with basic residues to membranes containing acidic phospholipids Biophys. J. 60:135-148. Klevens, R. M., M.A. Morrison, J. Nadle, S. Petit, K. Gershman, S. Ray, L.H. Harrison, R. Lynfield, G. Dumyati, J.M. Townes, A.S. Craig, E.R. Zell, G.E. Fosheim, L.K. McDougall, R.B. Carey, and S.K. FRidkin. (2007) Invasive methicillin-resistant Staphylococcus aureus infections in United States. J. Am. Med. Assoc. 298:1763-1771. Lamichhane-Khadka, R., J. T.Riordan, A. Delgado, A. Muthaiyan, T.D. Reynolds, B.J. Wilkinson, and J.E. Gustafson. (2008) Genetic ghanges that correlate with the pine oil disinfectant-reduced susceptibility mechanism of Staphylococcus aureus. J. Appl. Microbiol. In press. Liu, G.Y., A. Essex, J.T. Buchanan, V. Datta, H.M. Hoffman, J.F. Bastian, J, Fierer, and V. Nizet. (2005) Staphylococcus aureus golden pigment impairs neutrophil killing and promoted virulence through its antioxidant activity. J. Exp. Med. 202:209-215. Liu,C.I., G.Y. Liu, Y. Song, F. Yin, M.E. Hensler, W.Y. Jeng, V. Nizet, A. H. Wang, and E.A. Oldfield. (2008) Cholesterol biosynthesis inhibitor blocks Staphylococcus aureus virulence. Science. 319:1391-1394. Marshall, J.H., and G.J. Wilmoth. (1981) Pigments of Staphylococcus aureus, a series of triterpenoid carotenoids. J. Bacteriol. 147:900-913. McMurry, L.M., M. Oethinger, and S.B. Levy. (1998) Triclosan targets lipids synthesis. Nature 394:531-532. Mishra,N.N., Liu, G.Y., Yeaman, M.R., Nast,C.C., Proctor,R.A., McKinnell,J. and Bayer, A.S. (2010) Carotenoid-related alteration of cell membrane fluidity impacts Staphylococcus aureus susceptibility to host defense peptides. Antimicrob. Agent. Feb 2011; 55(2): 526– 531. Moken, M.C., L.M. McMurry, and S.B. Levy. (1997) Selection of multiple antibiotic-resistant (mar) mutants of Escherichia coli by using the disinfectant pine oil: roles of the mar and acrAB loci. Antimicrob. Agents Chemother. 41:2770-2772. Muthaiyan, A., J. A. Silverman, R.K. Jayaswal, and B.J. Wilkinson. (2008) Transcriptional

34

profiling reveals that daptomycin induces the Staphylococcus aureus cell wall stress stimulation and genes responsive to membrane depolarization. Antimicrob. Agents Chemother. 52:980-990. National Committee for Clinical Laboratory Standards. 2003. Method for dilution antimicrobial susceptibility test for bacteria that grow aerobically, 6th ed., vol. 23, no. 2. Approved standard M7-A6. NCCLS, Wayne, PA. Nielsen, L. E., D. R. Kadavy, S. Rajagopal, R. Drijber, and K. W. Nickerson. 2005. Survey of extreme solvent tolerance in gram-positive cocci: membrane fatty acid changes in Staphylococcus haemolyticus grown in toluene. Appl. Environ. Microbiol. 71: 5171-5176. Nikaido, H. 1976. Outer membrane of Salmonella typhimurium: Transmembrane diffusion of some hydrophobic substances. Biochem. Biophys. Acta 433:118-132. Pelz, A., K.-P. Wieland, K. Putzback, P. Hentschel, K. Albert and F. Gotz. (2005) Structure and biosynthesis of staphyloxanthin from Staphylococcus aureus. J. Biol. Chem. 280:32493324981. Pfeltz, R.F., J.L. Schmidt, and B.J. Wilkinson. 2001. A microdilution plating method for population analysis of antibiotic-resistance staphylococci. Microbial Drug Res. 7:289-295. Pinkhart, H.C., and D.C. White. (1997) Phospholipid biosynthesis and solvent tolerance in Pseudomonas putida strains. J. Bacteriol. 179:4219-4226. Price, C.T. D., V. K. Singh, R. K. Jayaswal, B. J. Wilkinson, and J. E. Gustafson. 2002. Pine oil cleaner-resistance Staphylococcus aureus: reduced susceptibility to vancomycin and oxacillin and involvement of Sigβ. Appl. Environ. Microbiol. 58:5417-5421. Rottem, S., and O. Markowitz. 1979. Carotenoids act as reinforcers of the Acholeplasma laidlawii lipid bilayer. J. Bacteriol. 140:944-948. Sabczynski, W.K. and A. Wisniewska. (2000). Physical properties of Lipid bilayer membranes: relevance to membrane biological functions. Acta Biochim. Pol. 47(3):613-25. Silverman, J.A., N.G. Perlmutter, and H.M. Shapiro. (2003) Correlation of daptomycin bactericidal activity and membrane depolarization in Staphylococcus aureus. Antimicrob. Agents Chemother. 47:2538-2544. Singh, V. K., D. S. Hattangady, E. S. Giotis, A. K. Chamberlain, M. K. Stuart and B. J. Wilkinson. 2008. Insertional inactivaton of branched-chain-α-keto acid dehydrogenase in Staphylococcus aureus leads to decreased branched-chain membrane fatty acids

35

content and increased susceptibility to certain stresses. Appl. Environ. Microbiol. Aug. 8. Epubahead of print. Straus, S.K., and R.E.W. Hancock. (2006) Mode of action of the new antibiotics for gram positive pathogens daptomycin: comparison with cationic antimicrobial peptides and lipopeptides. Biophys. Acta 1758:1215-1223. Subczynski, W. K., E. Markowska, W.I. Gruazecki and, J. Sielewiesiuk. 1992. Effect of polar carotenoids on dimyrystoylphosphatidylcholine: a spin-label study. Biochim. Biophys. Acta. 1105:97-108. Suutari, M., and S. Laakso (1994) Microbial fatty acids and thermal adaptation. Crit. Rev. Microbiol. 20:285-328. Tenover, F.C., and R.C. Moellering Jr. (2007) The rationale for revising the Clinical and Laboratory Standards Institute vancomycin minimal inhibitory concentration interpretative criteria for Staphylococcus aureus. Clin. Infect. Dis. 44:1208-1215. Tunyapanit W., P. Pruekprasert, K. Laoprasopwattana, S. Chelae (2014) Antimicrobial susceptibility of Actinobacter baumannii isolated from hospital patients. ScienceAsia 40 (2014):28-34. Woods, G. L. and P. Yam (1988) Evaluation of MicroScan MIC panels for detection of oxacillinresistant staphylococci. J. Clin. Microbiol. May 1988 26:5 816-820. Willecke, K., and A.B. Pardee. (1971) Fatty acid-requiring mutant of Bacillus subtilis defective in branched chain α-keto acid dehydrogenase. J. Biol.Chem. 246:5264-5272. Yeaman, M.R., Y.Q. Tang, A.J. Shen, A.S. Bayer, and M.E. Selsted. (1997) Purification and in vitro activities of rabbit platelet microbicidal proteins. Infect. Immun. 65:1023-1031. Zhang, Y.-M., and C.O. Rock. (2008). Membrane lipid homeostasis in bacteria. Nature Rev. Microbiol. 6:222-233.

36