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M. Millar (2012)
Constraining the use of antibiotics: applying Scanlon’s contractualismJ. Med. Ethics., 38
A.L. Mulyukin, Yu.K. Kudykina, M.O. Shleeva, A.M. Anuchin, N.E. Suzina, V.N. Danilevich, V.I. Duda, A.S. Kaprelyants, G.I. El-Registan (2010)
Intraspecies diversity of dormant forms of Mycobacterium smegmatisMicrobiology (Moscow), 79
Y. Zhang (2014)
Persisters, persistent infections and the Yin–Yang modelEmerg. Microb. Infect., 3
I. Keren, D. Shah, A. Spoering, N. Kaldalu, K. Lewis (2004)
Specialized persister cells and the mechanism of multidrug tolerance in Escherichia coliJ. Bacteriol., 186
B.W. Kwan, J.A. Valenta, M.J. Benedik, T.K. Wood (2013)
Arrested protein synthesis increases persister-like cell formationAntimicrob. Agents Chemother., 57
E. Drenkard, F.M. Ausubel (2002)
Pseudomonas biofilm formation and antibiotic resistance are linked to phenotypic variationNature, 416
N. Möker, C.R. Dean, J. Tao (2010)
Pseudomonas aeruginosa increases formation of multidrug-tolerant persister cells in response to quorum-sensing signaling moleculesJ. Bacteriol., 192
A.L. Mulyukin, N.E. Suzina, V.I. Duda, G.I. ElRegistan (2008)
Structural and physiological diversity among cyst-like resting cells of bacteria of the genus PseudomonasMicrobiology (Moscow), 77
A.L. Mulyukin, N.E. Suzina, V.G. Melnikov, V.F. Galchenko, G.I. El-Registan (2014)
Dormant state and phenotypic variability of Staphylococcus aureus and Corynebacterium pseudodiphtheriticumMicrobiology (Moscow), 83
D. Shah, Z. Zhang, A.B. Khodursky, N. Kaldalu, K. Kurg, K. Lewis (2006)
Persisters: a distinct physiological state of E. coliBMC Microbiol., 6
D. Nguyen, A. Joshi-Datar, F. Lepine, E. Bauerle, O. Olakanmi, K. Beer, G. McKay, R. Siehnel, J. Schafhauser, Y. Wang, B.E. Britigan, P.K. Singh (2011)
Active starvation responses mediate antibiotic tolerance in biofilms and nutrient-limited bacteriaScience, 334
R.B. Fick (1993)
Pseudomonas aeruginosa, the Opportunist: Pathogenesis and Disease
K.D. Xu, P.S. Stewart, F. Xia, C.-T. Huang, G.A. McFeters (1998)
Spatial physiological heterogeneity in Pseudomonas aeruginosa biofilm is determined by oxygen availabilityAppl. Env. Microbiol., 64
M.J. Kirisits, L. Pros, M. Starkey, M.R. Parsek (2005)
Characterization of colony morphology variants isolated from Pseudomonas aeruginosa biofilmsAppl. Environ. Microbiol., 71
T.K. Wood, S.J. Knabel, B.W. Kwan (2013)
Bacterial persister cell formation and dormancyAppl. Environ. Microbiol., 79
J.W. Costerton, A.K. Camper, P.S. Stewart, N. Zelver, M.E. Dirckx (1999)
The problem: not just bacteria–bacterial biofilmsThe Analyst, 6
L.E. Dietrich, A. Price-Whelan, A. Petersen, M. Whiteley, D.K. Newman (2006)
The phenazine pyocyanin is a terminal signaling factor in the quorum sensing network of Pseudomonas aeruginosaMol. Microbiol., 61
I. Keren, N. Kaldalu, A. Spoering, Y. Wang, K. Lewis (2004)
Persister cells and tolerance to antimicrobialsFEMS Microbiol. Lett., 230
G.I. El-Registan, A.L. Mulyukin, Yu.A. Nikolaev, N.E. Suzina, V.F. Galchenko, V.I. Duda (2006)
Adaptogenic functions of extracellular autoregulators of microorganismsMicrobiology (Moscow), 75
B. Nowak-Thompson, P.E. Hammer, D.S. Hill, J. Stafford, N. Torkewitz, T.D. Gaffney, S.T. Lam, I. Molnar, J.M. Ligon (2003)
2,5-Dialkylresorcinol biosynthesis in Pseudomonas aurantiaca: novel head-to-head condensation of two fatty acid-derived precursorsJ. Bacteriol., 185
D.B. Roszak, R.R. Colwell (1987)
Metabolic activity of bacterial cells enumerated by direct viable countAppl. Environ. Microbiol., 53
L. Li, N. Mendis, H. Trigui, J.D. Oliver, S.P. Faucher (2014)
The importance of the viable but non-culturable state in human bacterial pathogensFront. Microbiol., 5
N.Q. Balaban, J. Merrin, R. Chait, L. Kowalik, S. Leibler (2004)
Bacterial persistence as a phenotypic switchScience, 305
S.S. Grant, D.T. Hung (2013)
Persistent bacterial infections, antibiotic tolerance, and the oxidative stress responseVirulence, 4
K. Leung, M.B. Cassidy, S.B. Holmes, H. Lee, J.T. Trevors (1995)
Survival of carrageenan-encapsulated and unencapsulated Pseudomonas aeruginosa UG2Lr cells in forest soil monitored by polymerase chain reaction and spread platingFEMS Microbiol. Ecol., 16
J. Kim, J.-S. Hahn, M.J. Franklin, P.S. Stewart, J. Yoon (2009)
Tolerance of dormant and active cells in Pseudomonas aeruginosa PAO1 biofilm to antimicrobial agentsJ. Antimicrob. Chemother., 63
J.W. Bigger (1944)
Lancet
G.A. Osipov, G.I. El-Registan, V.A. Svetlichnyi, A.N. Kozlova, V.I. Duda, A.S. Kaprel’yants, V.V. Pomazanov (1985)
The chemical nature of the autoregulatory factor d1 in Pseudomonas carboxydoflavaMicrobiology, 54
R.S. Smith, B.H. Iglewski (2003)
P. aeruginosa quorumsensing systems and virulenceCurr. Opin. Microbiol., 6
O. Gefen, N.Q. Balaban (2009)
The importance of being persistent: heterogeneity of bacterial populations under antibiotic stressFEMS Microbiol. Rev., 33
E. Bédard, D. Charron, C. Lalancette, E. Déziel, M. Prévost (2014)
Recovery of Pseudomonas aeruginosa culturability following copperand chlorine-induced stressFEMS Microbiol. Lett., 356
Z. Dwidjosiswojo, J. Richard, M.M. Moritz, E. Dopp, H.-C. Flemming, J. Wingender (2011)
Influence of copper ions on the viability and cytotoxicity of Pseudomonas aeruginosa under conditions relevant to drinking water environmentsInt. J. Hyg. Environ. Health, 214
K. Lewis (2007)
Persister cells, dormancy and infectious diseaseNat. Rev. Microbiol., 5
Survival of bacterial populations treated with lethal doses of antibiotics is ensured by very small numbers of persister cells. Unlike antibiotic-resistant cells, antibiotic tolerance of persisters is not inheritable and reversible. The present work provides evidence supporting the hypothesis on transformation (maturation) of persisters of an opportunistic pathogen Pseudomonas aeruginosa, revealed by ciprofloxacin (CF) treatment (25–100 μg/mL), into dormant cystlike cells (CLC) and nonculturable cells (NC), as was described previously for a number of non-spore-forming bacteria. Subpopulations of type 1 and type 2 persisters, which survived antibiotic treatment and developed into dormant forms, were heterogeneous in their capacity to form colonies or microcolonies upon germination as resistance to heating at 70°C and in cell morphology. Type 1 persisters, which were formed after 1-month incubation of the stationary-phase cultures grown in the medium with decreased C and N concentrations, developed in several types of surviving cells, including those similar to CLC in cell morphology. In the course of 1-month incubation of type 2 persisters, which were formed in exponentially growing cultures, other types of surviving cells developed: immature CLC and L-forms. Unlike P. aeruginosa CLC formed in the control post-stationary phase cultures without antibiotic treatment, most of 1-month persisters, especially type 2 ones, were characterized by the loss of colony-forming capacity, probably due to transition into an nonculturable state with relatively high numbers of live intact cells (Live/Dead test). Another survival strategy of P. aeruginosa populations was ensured by a minor subpopulation of CF-tolerant and CF-resistant cells able to grow in the form of microcolonies or regular colonies of decreased size in the presence of the antibiotic. The described P. aeruginosa dormant forms may be responsible for persistent forms in bacteria carriers and latent infections and, together with antibiotic-resistant cells, are important as components of test systems to assay the efficiency of potential pharmaceuticals against resistant infections.
Microbiology – Springer Journals
Published: Nov 25, 2015
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