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1 g to the formation of the reuterin system, a broad-spectrum antimicrobial.
2 lerate the discovery of potent and selective broad-spectrum antimicrobials.
3 asing bacterial resistance to currently used broad-spectrum antimicrobials.
4 re common after LTx despite prophylaxis with broad-spectrum antimicrobials.
5 reduced treatment of contaminants and use of broad-spectrum antimicrobials.
6  agents potentially represent a new class of broad-spectrum antimicrobials.
7  ligases, representing promising targets for broad-spectrum antimicrobials.
8  explored for development of potential novel broad-spectrum antimicrobials.
9 ntimicrobials, and continuation of empirical broad-spectrum antimicrobials.
10 in of arginine are major determinants in the broad-spectrum antimicrobial action of CG 117-136.
11                     Salts 8a and 8b also had broad spectrum antimicrobial activities and were most po
12  diterpenoid phytoalexins (DPs) that exhibit broad-spectrum antimicrobial activities and are biosynth
13 elated dithiolopyrrolone antibiotics display broad-spectrum antimicrobial activities and contain a un
14 egranate rind extract (PRE) is known for its broad-spectrum antimicrobial activities, including again
15            Aaptamine derivatives 3 and 5 had broad-spectrum antimicrobial activities.
16 peptides, which are membrane-active and have broad spectrum antimicrobial activity on bacteria.
17 c, amidated white bass moronecidin exhibited broad spectrum antimicrobial activity that was retained
18 at the aforementioned pathogens due to their broad-spectrum antimicrobial activity and relatively low
19                                Peptides with broad-spectrum antimicrobial activity are found in the m
20 s work, we characterize the requirements for broad-spectrum antimicrobial activity by membrane permea
21  represents the minimal structure needed for broad-spectrum antimicrobial activity encompassing bacte
22                  A few studies have reported broad-spectrum antimicrobial activity for both peptides.
23 tectin, an S100 calcium-binding protein with broad-spectrum antimicrobial activity in vitro, is expre
24  continuation of our previous reports on the broad-spectrum antimicrobial activity of atmospheric non
25 on in defense against infection, explain the broad-spectrum antimicrobial activity of CP relative to
26 that the addition of thiourea (TU) initiated broad-spectrum antimicrobial activity of otherwise inact
27         Nitric oxide (NO) is associated with broad-spectrum antimicrobial activity of particular impo
28    beta-Defensins are cationic peptides with broad-spectrum antimicrobial activity that are produced
29    beta-Defensins are cationic peptides with broad-spectrum antimicrobial activity that may play a ro
30                       Both exhibited potent, broad-spectrum antimicrobial activity under low-concentr
31   The models predicted 37,176 sequences with broad-spectrum antimicrobial activity, 11,035 of which w
32 es as well as increased protease resistance, broad-spectrum antimicrobial activity, and enhanced pote
33                                They all have broad-spectrum antimicrobial activity, but several also
34 bial oligomers (AMOs), recently demonstrated broad-spectrum antimicrobial activity, but the underlyin
35 thetic peptides derived from M6 that exhibit broad-spectrum antimicrobial activity, exposing a potent
36                                 Due to their broad-spectrum antimicrobial activity, some bacteriocins
37              All of these peptides displayed broad-spectrum antimicrobial activity, validating our LS
38 ainst gram-positive pathogens, verine showed broad-spectrum antimicrobial activity.
39 supported by its strong acid suppression and broad-spectrum antimicrobial activity.
40 ainst these proteins, two of which exhibited broad-spectrum antimicrobial activity.
41 entional antibiotics because of their potent broad-spectrum antimicrobial activity.
42 ial peptides produced by eukaryotes and have broad-spectrum antimicrobial activity.
43 ided series of low nanomolar inhibitors with broad-spectrum antimicrobial activity.
44 hort, cationic peptides that display potent, broad-spectrum antimicrobial activity.
45 have been discovered that possess potent and broad-spectrum antimicrobial activity.
46 PG-1), an 18-residue cationic peptide with a broad-spectrum antimicrobial activity.
47 ationic, membrane-active peptides which show broad-spectrum antimicrobial activity.
48 is study emphasizes the importance of early, broad-spectrum antimicrobial administration in severe se
49  GHMP kinases with the purpose of developing broad spectrum antimicrobial agents that target the subs
50                                              Broad-spectrum antimicrobial agents also increase the ri
51                    The use of nontherapeutic broad-spectrum antimicrobial agents triclosan (TCS) and
52 ly with tetracycline, doxycycline, and other broad-spectrum antimicrobial agents.
53  opportunities for the development of potent broad-spectrum antimicrobial agents.
54 atient, and patients are commonly exposed to broad-spectrum antimicrobial agents.
55  potent biological messenger, has documented broad-spectrum antimicrobial and immunomodulatory proper
56 own that cascade reporting can reduce use of broad-spectrum antimicrobials and reduce antimicrobial r
57                  This study demonstrates the broad-spectrum antimicrobial (antibacterial, antiviral,
58 ase in clofazimine solubility activates this broad-spectrum antimicrobial, antiparasitic, antiviral o
59         epsilon-Polylysine (epsilon-PL) is a broad-spectrum antimicrobial biopolymer, suitable for us
60  L. reuteri bacteria convert glycerol to the broad-spectrum antimicrobial compound reuterin.
61                         Triclosan (TCS) is a broad-spectrum antimicrobial compound that is incorporat
62 headache, had negative cultures, and despite broad-spectrum antimicrobial coverage appeared progressi
63        Antimicrobial peptides (AMPs) provide broad spectrum antimicrobial defense in both healthy and
64 enzymes represent new, validated targets for broad spectrum antimicrobial drug and herbicide developm
65            Co-trimoxazole is an inexpensive, broad-spectrum antimicrobial drug that is widely used in
66              These findings support limiting broad-spectrum antimicrobial drug use and nonessential h
67                               Doxycycline, a broad-spectrum antimicrobial drug with excellent tissue
68 of antimicrobial use in US hospitals, use of broad-spectrum antimicrobial drugs such as piperacillin-
69 otential target for the development of novel broad-spectrum antimicrobial drugs, active against both
70 ing offers a strategy for the development of broad-spectrum antimicrobial drugs.
71           Bovine lysozyme (BvLz) is a potent broad-spectrum antimicrobial enzyme used in the food, co
72 ocomial bacteria may alleviate a reliance on broad spectrum antimicrobials for treatment of infection
73 d the injury-induced upregulation of HBD2, a broad-spectrum antimicrobial implicated in wound healing
74                           Triclosan (TCS), a broad-spectrum antimicrobial, is used in commercial toot
75 ide 18 (hCAP18) is a human cathelicidin with broad-spectrum antimicrobial, lipopolysaccharide binding
76    Thus, moronecidin is a new alpha-helical, broad spectrum antimicrobial peptide isolated from the s
77                                          The broad-spectrum antimicrobial peptide PG-1 ordered approx
78                      Protegrin 1 (PG-1) is a broad-spectrum antimicrobial peptide that contains 18 am
79 l studies have demonstrated that CXCL14 is a broad-spectrum antimicrobial peptide that is expressed a
80 ntibiotic kanamycin and a nonmembrane lytic, broad-spectrum antimicrobial peptide with efficient mamm
81                           beta-Defensins are broad spectrum antimicrobial peptides expressed at epith
82                    Development of potent and broad-spectrum antimicrobial peptides (AMPs) could help
83     Amphibian skin provides a rich source of broad-spectrum antimicrobial peptides including some tha
84 ges do not express alpha- or beta-defensins, broad-spectrum antimicrobial peptides which are expresse
85      Both animals and plants possess potent, broad-spectrum antimicrobial peptides, which they use to
86 ctive strategy for rapid discovery of novel, broad-spectrum antimicrobial peptides.
87 olecules of this defense in many species are broad-spectrum antimicrobial peptides.
88     Selenium dye 3 was highly effective as a broad-spectrum antimicrobial photosensitizer with fluenc
89 s of a saturated hydrocarbon analogue of the broad-spectrum antimicrobial, phthalylsulfathiazole.
90        Additionally, the system demonstrates broad-spectrum antimicrobial potential, effectively inhi
91               This study examined changes in broad-spectrum antimicrobial prescribing in the communit
92                                 Parabens are broad-spectrum antimicrobial preservatives and fragrance
93 osmetics, pharmaceuticals, and foodstuffs as broad-spectrum antimicrobial preservatives.
94                   Here, we are reporting the broad spectrum antimicrobial properties and self-assembl
95 nistic and nosocomial pathogen that displays broad-spectrum antimicrobial resistance and is recognize
96 opulations, suggests persistence as an early broad-spectrum antimicrobial resistance mechanism in the
97                      The pSEay-KPC conferred broad-spectrum antimicrobial resistance, allowing the pa
98                As a result of the overuse of broad-spectrum antimicrobials such as the carbapenems, s
99 ell respiration assay was adapted for use in broad-spectrum antimicrobial susceptibility testing (AST
100 to three antibiotics representing classes of broad-spectrum antimicrobial therapy (ceftriaxone [a 3rd
101                      After not responding to broad-spectrum antimicrobial therapy and achieving only
102 rly effective antibiotic therapy; therefore, broad-spectrum antimicrobial therapy is often initiated
103  source of infection (UG); administration of broad-spectrum antimicrobials therapy within 1 hr of rec
104         Structural analysis of InhA with the broad spectrum antimicrobial triclosan revealed a unique
105 here were very large reductions in community broad-spectrum antimicrobial use associated with the ste
106                                              Broad-spectrum antimicrobial use during the treatment of
107     Our final protocol significantly reduces broad-spectrum antimicrobial use for prophylaxis in pati
108 , we demonstrated a significant reduction in broad-spectrum antimicrobial use for prophylaxis in pati
109                                              Broad-spectrum antimicrobial use is likely to be widespr
110 chemotherapy prior to conditioning for HSCT, broad-spectrum antimicrobial use, and acute graft-versus
111 admissions associated with reduced community broad-spectrum antimicrobial use.
112 pital setting via telehealth, led to reduced broad-spectrum antimicrobial utilization, increased ID c
113 pital setting via telehealth, led to reduced broad-spectrum antimicrobial utilization, increased ID c
114                        Additionally, time to broad-spectrum antimicrobial was associated with progres
115                               Meropenem is a broad-spectrum antimicrobial with excellent activity aga

 
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