12.1 Mechanism of Action
ALTABAX is an antibacterial agent [see
Clinical Pharmacology (12.4)].
12.2 Pharmacodynamics
In post-hoc analyses of manually over-read 12-lead ECGs from
healthy subjects (N = 103), no significant effects on QT/QTc intervals were
observed after topical application of retapamulin ointment on intact and abraded
skin. Due to the low systemic exposure to retapamulin with topical application,
QT prolongation in patients is unlikely [see Clinical
Pharmacology (12.3)].
12.3 Pharmacokinetics
AbsorptionIn a study of healthy adult subjects, retapamulin ointment, 1%
was applied once daily to intact skin (800 cm2 surface
area) and to abraded skin (200 cm2 surface area) under
occlusion for up to 7 days. Systemic exposure following topical application of
retapamulin through intact and abraded skin was low. Three percent of blood
samples obtained on Day 1 after topical application to intact skin had
measurable retapamulin concentrations (lower limit of quantitation 0.5 ng/mL);
thus Cmax values on Day 1 could not be determined.
Eighty-two percent of blood samples obtained on Day 7 after topical application
to intact skin and 97% and 100% of blood samples obtained after topical
application to abraded skin on Days 1 and 7, respectively, had measurable
retapamulin concentrations. The median Cmax value in
plasma after application to 800 cm2 of intact skin was
3.5 ng/mL on Day 7 (range 1.2 to 7.8 ng/mL). The median Cmax value in plasma after application to 200 cm2 of abraded skin was 11.7 ng/mL on Day 1 (range 5.6 to 22.1
ng/mL) and 9.0 ng/mL on Day 7 (range 6.7 to 12.8 ng/mL).
Plasma samples were obtained from 380 adult patients and 136 pediatric
patients (aged 2-17 years) who were receiving topical treatment with ALTABAX
topically twice daily. Eleven percent had measurable retapamulin concentrations
(lower limit of quantitation 0.5 ng/mL), of which the median concentration was
0.8 ng/mL. The maximum measured retapamulin concentration in adults was
10.7 ng/mL and in pediatric patients was 18.5 ng/mL.
DistributionRetapamulin is approximately 94% bound to human plasma proteins,
and the protein binding is independent of concentration. The apparent volume of
distribution of retapamulin has not been determined in humans.
MetabolismIn vitro studies with human hepatocytes showed that the main
routes of metabolism were mono-oxygenation and di-oxygenation. In vitro studies
with human liver microsomes demonstrated that retapamulin is extensively
metabolized to numerous metabolites, of which the predominant routes of
metabolism were mono-oxygenation and N-demethylation. The major enzyme
responsible for metabolism of retapamulin in human liver microsomes was
cytochrome P450 3A4 (CYP3A4).
EliminationRetapamulin elimination in humans has not been investigated due
to low systemic exposure after topical application.
12.4 Microbiology
Retapamulin is a semisynthetic derivative of the compound
pleuromutilin, which is isolated through fermentation from Clitopilus passeckerianus (formerly Pleurotus passeckerianus). In vitro activity of retapamulin
against isolates of Staphylococcus aureus as well as
Streptococcus pyogenes has been demonstrated.
Antimicrobial Mechanism of
ActionRetapamulin selectively inhibits bacterial protein synthesis by
interacting at a site on the 50S subunit of the bacterial ribosome through an
interaction that is different from that of other antibiotics. This binding site
involves ribosomal protein L3 and is in the region of the ribosomal P site and
peptidyl transferase center. By virtue of binding to this site, pleuromutilins
inhibit peptidyl transfer, block P-site interactions, and prevent the normal
formation of active 50S ribosomal subunits. Retapamulin is bacteriostatic
against Staphylococcus aureus and Streptococcus pyogenes at the retapamulin in vitro minimum
inhibitory concentration (MIC) for these organisms. At concentrations 1,000x the
in vitro MIC, retapamulin is bactericidal against these same organisms.
Retapamulin demonstrates no in vitrotarget-specific cross-resistance with other
classes of antibiotics.
Mechanisms of Decreased
Susceptibility to RetapamulinIn vitro, 2 mechanisms that cause reduced susceptibility to
retapamulin have been identified, specifically, mutations in ribosomal protein
L3 or the presence of an efflux mechanism. Decreased susceptibility of S. aureus to retapamulin (highest retapamulin MIC was
2 mcg/mL) develops slowly in vitro via multistep mutations in L3 after serial
passage in sub-inhibitory concentrations of retapamulin. There was no apparent
treatment-associated reduction in susceptibility to retapamulin in the Phase 3
clinical program. The clinical significance of these findings is not
known.
OtherBased on in vitro broth microdilution susceptibility testing, no
differences were observed in susceptibility of S. aureus to retapamulin whether the isolates were
methicillin-resistant or methicillin-susceptible. Retapamulin susceptibility did
not correlate with clinical success rates in patients with methicillin-resistant
S.aureus. The reason for this is not known but may
have been influenced by the presence of particular strains of S. aureus possessing certain virulence factors, such as
Panton-Valentine Leukocidin (PVL). In the case of treatment failure associated
with S. aureus (regardless of methicillin
susceptibility), the presence of strains possessing additional virulence factors
(such as PVL) should be considered.
Retapamulin has been shown to be active against the following microorganisms,
both in vitro and in clinical trials [see Indications and
Usage (1)].
Aerobic and Facultative Gram-Positive Bacteria
Staphylococcus aureus
(methicillin-susceptible isolates only)
Streptococcus pyogenes
Susceptibility TestingThe clinical microbiology laboratory should provide cumulative
results of the in vitro susceptibility test results for antimicrobial drugs used
in local hospitals and practice areas to the physician as periodic reports that
describe the susceptibility profile of nosocomial and community-acquired
pathogens. These reports should aid the physician in selecting the most
effective antimicrobial.
Susceptibility Testing Techniques
Dilution TechniquesQuantitative methods can be used to determine the minimum
inhibitory concentration (MIC) of retapamulin that will inhibit the growth of
the bacteria being tested. The MIC provides an estimate of the susceptibility of
bacteria to retapamulin. The MIC should be determined using a standardized
procedure.1,2 Standardized procedures are based on a
dilution method (broth or agar) or equivalent with standardized inoculum
concentrations and standardized concentrations of retapamulin powder.
Diffusion TechniquesQuantitative methods that require measurement of zone diameters
also provide reproducible estimates of the susceptibility of bacteria to
antimicrobial compounds. One such standardized procedure requires the use of
standardized inoculum concentrations.2,3 This procedure
uses paper disks impregnated with 2 mcg of retapamulin to test the
susceptibility of microorganisms to retapamulin.
Susceptibility Test Interpretive Criteria
In vitro susceptibility test interpretive criteria for
retapamulin have not been determined for this topical antimicrobial. The
relation of the in vitro MIC and/or disk diffusion susceptibility test results
to clinical efficacy of retapamulin against the bacteria tested should be
monitored.
Quality Control Parameters for Susceptibility
Testing
In vitro susceptibility test quality control parameters were
developed for retapamulin so that laboratories that test the susceptibility of
bacterial isolates to retapamulin can determine if the susceptibility test is
performing correctly. Standardized dilution techniques and diffusion methods
require the use of laboratory control microorganisms to monitor the technical
aspects of the laboratory procedures. Standard retapamulin powder should provide
the following MIC and a 2 mcg retapamulin disk should produce the following zone
diameters with the indicated quality control strains in Table 3.
Table 3. Acceptable Quality Control Ranges for Retapamulin| Microorganism | MIC Range
(mcg/mL) | Disk Diffusion
Zone Diameter (mm) |
| Staphylococcus aureus ATCC 29213 | 0.06-0.25 | NA |
| Staphylococcus aureus ATCC 25923 | NA | 23-30 |
| Streptococcus pneumoniae ATCC 49619 | 0.06-0.5a
| 13-19b
|
NA = Not applicable.
a This quality control range is applicable using
cation-adjusted Mueller-Hinton broth with 2-5% lysed horse blood.
b This quality control limit is applicable using
Mueller-Hinton agar with 5% sheep blood.