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Infection and Immunity, June 2000, p. 3548-3553, Vol. 68, No. 6
0019-9567/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.
In Vitro Resistance of Staphylococcus aureus to
Thrombin-Induced Platelet Microbicidal Protein Is Associated with
Alterations in Cytoplasmic Membrane Fluidity
Arnold S.
Bayer,1,2,*
Rajendra
Prasad,3
Jyotsna
Chandra,3
Anjni
Koul,3
M.
Smriti,3
Archana
Varma,3
Ronald A.
Skurray,4
Neville
Firth,4
Melissa H.
Brown,4
Su-Pin
Koo,1 and
Michael R.
Yeaman1,2
Research and Education Institute, St. John's
Cardiovascular Research Center and the Division of Infectious Diseases,
Harbor-UCLA Medical Center, Torrance, California,
905091; UCLA School of Medicine, Los
Angeles, California, 900242; School of
Life Sciences, Jawaharlal Nehru University, New Delhi 110067, India3; and School of Biological
Sciences, University of Sydney, Sydney, New South Wales 2006, Australia4
Received 15 December 1999/Returned for modification 18 February
2000/Accepted 17 March 2000
Platelet microbicidal proteins (PMPs) are small, cationic peptides
which possess potent microbicidal activities against common bloodstream
pathogens, such as Staphylococcus aureus. We previously showed that S. aureus strains exhibiting resistance to
thrombin-induced PMP (tPMP-1) in vitro have an enhanced capacity to
cause human and experimental endocarditis (T. Wu, M. R. Yeaman, and A. S. Bayer, Antimicrob. Agents Chemother. 38:729-732, 1994; A. S. Bayer et al., Antimicrob. Agents Chemother. 42:3169-3172, 1998; V. K. Dhawan
et al., Infect. Immun. 65:3293-3299, 1997). However, the mechanisms
mediating tPMP-1 resistance in S. aureus are not fully delineated. The S. aureus cell membrane appears to be a
principal target for the action of tPMP-1. To gain insight into the
basis of tPMP-1 resistance, we compared several parameters of membrane structure and function in three tPMP-1-resistant (tPMP-1r)
strains and their genetically related, tPMP-1-susceptible
(tPMP-1s) counterpart strains. The tPMP-1r
strains were derived by three distinct methods: transposon mutagenesis, serial passage in the presence of tPMP-1 in vitro, or carriage of a
naturally occurring multiresistance plasmid (pSK1). All
tPMP-1r strains were found to possess elevated levels of
longer-chain, unsaturated membrane lipids, in comparison to their
tPMP-1s counterparts. This was reflected in corresponding
differences in cell membrane fluidity in the strain pairs, with
tPMP-1r strains exhibiting significantly higher degrees of
fluidity as assessed by fluorescence polarization. These data provide
further support for the concept that specific alterations in the
cytoplasmic membrane of S. aureus strains are associated
with tPMP-1 resistance in vitro.
*
Corresponding author. Mailing address: Division of
Infectious Diseases, Harbor-UCLA Medical Center, St. John's
Cardiovascular Research Center (RB2 - Room 225), 1000 West Carson St.,
Torrance, CA 90509. Phone: (310) 222-6422. Fax: (310) 782-2016. E-mail: Bayer{at}humc.edu.
Infection and Immunity, June 2000, p. 3548-3553, Vol. 68, No. 6
0019-9567/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.
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