Antibiotic combination therapies

JP2025176113A5Pending Publication Date: 2026-05-20BIOVERSYS AG
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Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
BIOVERSYS AG
Filing Date
2025-09-02
Publication Date
2026-05-20

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Abstract

To provide antibiotic combination therapies for treating an A. baumannii infection in a subject.SOLUTION: Provided are combination therapies comprising rifabutin and a second antibiotic (for example, colistin and cefiderocol). The combinations of antibiotics display synergy to a wide range of A. baumannii strains, the synergy greatly increasing the susceptibility of A. baumannii cells to rifabutin and colistin, with some strains displaying over a 500-fold increase in sensitivity to one of those antibiotics used in combination with the other compared to when that antibiotic is used by itself.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] Related Applications This application claims the benefit of and priority to U.S. Provisional Patent Application Nos. 62 / 902,019, filed September 18, 2019, 62 / 899,257, filed September 12, 2019, 62 / 941,160, filed November 27, 2019, and 62 / 977,659, filed February 17, 2020, the contents of each of which are incorporated herein by reference in their entirety.

[0002] FIELD OF THE INVENTION The present invention relates generally to rifabutin combination therapy for treating A. baumannii infections. [Background technology]

[0003] background With the emergence of multidrug-resistant (MDR) or extensively drug-resistant (XDR) bacterial strains over recent decades, bacterial infections have become an increasingly serious public health concern. One bacterial species that poses a major health threat is Acinetobacter baumannii, which can cause pneumonia, meningitis, and infections of the blood, urinary tract, and skin. Because A. baumannii cells can survive on artificial surfaces for long periods of time, the bacterium can be easily transmitted in hospital environments, and most A. baumannii infections are acquired within the hospital. For example, many military personnel in the Middle East are infected with A. baumannii while being treated for injuries sustained during combat, and multidrug-resistant strains of the bacterium represent a significant complication in the rehabilitation of injured military personnel.

[0004] Treatment of A. baumannii infections is challenging. Through the use of transposable genetic elements, A. baumannii strains have developed resistance to several different classes of antibiotics, including aminoglycosides, aminocyclitols, tetracyclines, chloramphenicol, and carbapenems. Polymyxins (e.g., colistin) are typically used as a last resort due to their significant side effects, but some A. baumannii strains are also resistant to colistin (Zubair et al., 2015). Consequently, current tools for treating and preventing illness caused by this bacterium are inadequate for many patients. Considerable efforts have been made to find solutions to treat these nosocomial pathogens, one of which is combination therapy (Levin et al., 1999; Wood et al., 2003). Combinations of two antibiotics exhibit different effects against each other; in many cases, the effects are synergistic or potentiating, but in some cases, antagonism is observed (Montero et al., 2004; Tripodi et al., 2007). Rifampicin (an antibiotic belonging to the rifamycin group of antibiotics, such as rifabutin) targets the bacterial DNA-dependent RNA polymerase B subunit (rpoB) and is frequently used in combination with other antibiotics. Rifampicin (also known as rifampin) and colistin have shown synergistic effects against A. baumannii, although the outcome of this combination depends on the rifampin MIC (Giannouli et al., 2012). Notably, synergistic effects of rifampicin and colistin were observed in A. baumannii isolates, where elevated rifampicin MICs were attributed to mutations in the rpoB target gene. Summary of the Invention [Means for solving the problem]

[0005] Abstract The present invention provides a combination of rifabutin and a second antibiotic (e.g., polymyxins (e.g., colistin, polymyxin B, polymyxin B nonapeptides; polymyxin analogs as exemplified by MRX-8), other cationic antimicrobial peptides (e.g., SPR741; chimeric peptidomimetic antibiotics exemplified by POL7306; octapeptin cyclic peptides) to treat A. baumannii infections. The present invention provides a combination therapy containing rifabutin, a cyclic peptide), or cefiderocol. The invention is based on the discovery that rifabutin acts synergistically with certain other antibiotics to inhibit the growth of A. baumannii cells. The antibiotic combination exhibits synergistic effects against a wide range of A. baumannii strains. The synergistic effect greatly increases the susceptibility of A. baumannii cells to rifabutin and colistin, with some strains exhibiting a greater than 500-fold increase in susceptibility to one of the antibiotics used in combination with the other compared to when that antibiotic is used alone. Additionally, and unexpectedly, the combination of rifabutin and colistin acts synergistically to inhibit the growth of strains that are resistant to both antibiotics when they are provided individually, thus rendering those strains susceptible to the combination treatment, even when the elevated MICs to rifabutin and rifampicin are due to mutations in the rpoB gene. This observation is in stark contrast to that observed with the combination of rifampicin and colistin, where strains carrying the mutation remain resistant to the combination. Thus, the present invention unlocks the therapeutic potential of antibiotics in situations where they would otherwise be powerless, providing an effective therapy for the treatment of severe A. baumannii infections.

[0006] In one aspect, the present invention provides a method of treating an A. baumannii infection in a subject by providing the subject with rifabutin and a second antibiotic, which can be a polymyxin (e.g., colistin, polymyxin B, polymyxin B nonapeptide) or cefiderocol.

[0007] The subject may be infected with a strain of A. baumannii that is resistant to one or more antibiotics, which may be resistant to one or more of: aminocyclitols, aminoglycosides, β-lactams, β-lactamase inhibitors, carbapenems, cephalosporins, polymyxins, quinolones, rifamycins, sulfonamides, minocycline, eravacycline, sulbactam, and tetracyclines. The strain may be resistant to one or more of amikacin, trimethoprim-sulfamethoxazole, cefepime, cefiderocol, ceftazidime, chloramphenicol, ciprofloxacin, colistin, polymyxin B, doripenem, gentamicin, imipenem, levofloxacin, meropenem, penicillin, piperacillin, rifabutin, rifampicin, tazobactam, and tigecycline.

[0008] Each antibiotic may be administered by a separate route of administration. Two or more of the antibiotics may be administered by the same route of administration. Each antibiotic may be administered independently intravenously, orally, parenterally, subcutaneously, or by inhalation, injection, and / or infusion.

[0009] Each antibiotic may be administered separately in a formulation. Two or more of the antibiotics may be administered in a single formulation. The antibiotics may be administered according to the same administration regimen, or two or more antibiotics may be administered according to different administration regimens. The administration regimen may include one or more of the following: dosage, administration frequency, or interval between administrations.

[0010] The subject may be a human. The subject may be a pediatric, newborn, neonate, infant, toddler, child, adolescent, pre-teen, teenager, adult, or elderly subject. The subject may be in critical care, intensive care, neonatal intensive care, pediatric intensive care, coronary care, cardiothoracic care, surgical intensive care, medical intensive care, long-term intensive care, operating room, ambulance, field hospital, or out-of-hospital field setting.

[0011] The method can include providing one or more antibiotics in addition to the first two antibiotics (e.g., rifabutin and either colistin or cefiderocol), wherein the one or more additional antibiotics can be an aminocyclitol, an aminoglycoside, a β-lactam, a β-lactamase inhibitor, a carbapenem, a cephalosporin, a polymyxin, a quinolone, a rifamycin, a sulfonamide, minocycline, eravacycline, sulbactam, and a tetracycline. The one or more additional antibiotics can be amikacin, trimethoprim-sulfamethoxazole, cefepime, cefiderocol, ceftazidime, chloramphenicol, ciprofloxacin, colistin, doripenem, gentamicin, imipenem, levofloxacin, meropenem, penicillin, piperacillin, polymyxin B, rifabutin, rifampicin, tazobactam, and tigecycline.

[0012] In another aspect, the present invention provides a combination therapy comprising rifabutin and a second antibiotic in therapeutically effective amounts for treating an A. baumannii infection in a subject, wherein the second antibiotic can be a polymyxin (e.g., colistin, polymyxin B, polymyxin B nonapeptide) or cefiderocol.

[0013] The subject may be infected with a strain of A. baumannii that is resistant to one or more antibiotics (eg, any of those listed above).

[0014] Each antibiotic may be administered by a separate route of administration. Two or more of the antibiotics may be administered by the same route of administration. Each antibiotic may be administered independently intravenously, orally, parenterally, subcutaneously, by inhalation, by injection, and / or by infusion.

[0015] Each antibiotic may be administered in a separate formulation. Two or more of the antibiotics may be administered in a single formulation. The antibiotics may be administered according to the same dosing regimen, or two or more antibiotics may be administered according to different dosing regimens. The dosing regimen may include one or more of the dosage, dosing frequency, or interval between doses.

[0016] The subject can be a human or a class of humans, such as any of those described above.

[0017] The combination therapy can include providing one or more additional antibiotics (eg, any of those listed above) in a therapeutically effective amount.

[0018] In another aspect, the present invention provides use of a combination comprising rifabutin and a second antibiotic, which can be colistin or cefiderocol, to make one or more medicaments for treating an A. baumannii infection in a subject.

[0019] In an embodiment of the above use, the subject may be infected with a strain of A. baumannii that is resistant to one or more antibiotics (eg, any of those listed above).

[0020] In an embodiment of the use, each antibiotic is administered by a separate route of administration. In an embodiment of the use, two or more of the antibiotics are administered by the same route of administration. In an embodiment of the use, each antibiotic is independently administered intravenously, orally, parenterally, subcutaneously, by inhalation, by injection, and / or by infusion.

[0021] In an embodiment of the use, each antibiotic is administered in a separate formulation. In an embodiment of the use, two or more of the antibiotics are administered in a single formulation. In an embodiment of the use, the antibiotics are administered according to the same administration schedule. In an embodiment of the use, two or more of the antibiotics are administered according to different administration schedules. The administration schedule may include one or more of the dosage, administration frequency, or interval between administrations.

[0022] In an embodiment of the use, the subject is a human or a member of the human class (eg, any of those described above).

[0023] In an embodiment of the above use, the combination includes one or more additional antibiotics (eg, any of those listed above). [Brief explanation of the drawings]

[0024] [Figure 1] Figure 1 is an image of a 96-well plate checkerboard of A. baumannii cells cultured with various concentrations of rifabutin and colistin. [Figure 2] Figure 2 is an image of a 96-well plate checkerboard of A. baumannii cells cultured with various concentrations of rifabutin and cefiderocol. DETAILED DESCRIPTION OF THE INVENTION

[0025] Detailed Description The present invention provides a combination therapy for treating A. baumannii infection in a subject. The combination therapy is based on the discovery that rifabutin acts synergistically with antibiotics such as colistin and cefiderocol to inhibit the growth of A. baumannii cells. Thus, the use of rifabutin in combination with either colistin or cefiderocol is more effective in treating A. baumannii infection than the use of either antibiotic alone. Furthermore, and unexpectedly, the combination of rifabutin and colistin is effective even against A. baumannii strains that are resistant to both antibiotics when given individually but become susceptible to treatment when given in combination.

[0026] Combination therapy The combination therapy of the present invention includes two antibiotics that act synergistically to inhibit the growth of A. baumannii cells. The synergy between antibiotics (e.g., rifabutin and colistin) can be determined by any suitable method. One method involves determining the minimum inhibitory concentration (MIC) of each antibiotic individually and in combination and calculating the Fractional Inhibitory Concentration Index (FICI) as follows:

number

[0027] Antibiotic pairs are characterized as synergistic or non-synthetic based on the FICI according to the following criteria: synergistic (FICI<0.5); indifferent (FICI>0.50 and <4); antagonistic (FICI>4). Determining antibiotic synergy based on the FICI is described, for example, in Jenkins, SG & Schuetz, AN Current Concepts in Laboratory Testing to Guide Antimicrobial Therapy. Mayo Clin. Proc. 87, 290-308 (2012) (the contents of which are incorporated herein by reference).

[0028] One of the antibiotics in the combination therapy of the present invention is rifabutin. The combination therapy includes a second antibiotic that acts synergistically with rifabutin. The second antibiotic can be a polymyxin (e.g., colistin) or a cephalosporin (e.g., cefiderocol). Colistin can be provided as colistimethate sodium or colistin sulfate. The combination therapy can include additional antibiotics. For example, they can include three, four, five, or more different antibiotics. Each antibiotic can independently be an aminocyclitol, aminoglycoside, β-lactam, β-lactamase inhibitor, carbapenem, cephalosporin, polymyxin, quinolone, rifamycin, sulfonamide, minocycline, eravacycline, sulbactam, or tetracycline. Each antibiotic can independently be amikacin, trimethoprim-sulfamethoxazole, cefepime, cefiderocol, ceftazidime, chloramphenicol, ciprofloxacin, colistin, doripenem, gentamicin, imipenem, levofloxacin, meropenem, penicillin, piperacillin, polymyxin B, rifabutin, rifampicin, tazobactam, or tigecycline.

[0029] Rifabutin is a deep reddish-purple powder with the molecular formula C 46 H 62 NO 11 , molecular weight 847.02 and the following structure: [ka] It has.

[0030] Rifabutin has a broad spectrum of antimicrobial activity. It is significantly more active than rifampin against MAC, M. tuberculosis, and M. leprae. It is also active against most atypical mycobacteria (including M. kansasii and M. chelonae), although these are relatively resistant. Rifabutin is also active against staphylococci, group A streptococci, N. gonorrhoeae, N. meningitidis, H. influenzae, H. ducreyi, C. jejuni, H. pylori, C. trachomatis, T. gondii, and A. baumannii.

[0031] Each antibiotic may be administered by any suitable route of administration. For example, and without limitation, each antibiotic may be independently administered intravenously, orally, parenterally, subcutaneously, by inhalation, by injection, and / or by infusion.

[0032] One or more antibiotics in the combination therapy may be administered according to the same dosing regimen. One or more antibiotics may be administered according to different dosing regimens. The dosing regimen may include dosage, schedule, or administration, or both. Dosage may be described by the absolute amount of drug (e.g., mg) or by the relative amount of drug to the subject (e.g., mg / kg). The dosing schedule may be described by the interval between doses. For example, and without limitation, the interval between doses may be about 1 hour, about 2 hours, about 3 hours, about 4 hours, about 6 hours, about 8 hours, about 12 hours, about 24 hours, about 36 hours, about 48 hours, about 3 days, about 4 days, about 5 days, about 6 days, about 7 days, or longer.

[0033] formulation One or more of the above antibiotics may be provided in a single formulation. One or more antibiotics may be provided in separate formulations. Each formulation may be prepared for delivery by a particular route of administration (e.g., intravenously, orally, parenterally, subcutaneously, by inhalation, by injection, and / or by infusion).

[0034] The antibiotics may be provided as pharmaceutically acceptable salts (e.g., non-toxic acid addition salts) of amino groups formed with inorganic acids (e.g., including, but not limited to, hydrochloric acid, hydrobromic acid, phosphoric acid, sulfuric acid, and perchloric acid) or with organic acids (e.g., including, but not limited to, acetic acid, maleic acid, tartaric acid, citric acid, succinic acid, methanesulfonic acid, glucuronic acid, malic acid, gluconic acid, lactic acid, aspartic acid, or malonic acid).

[0035] The above-mentioned preparations can be administered in dosage forms, formulations, or through suitable delivery devices or implants containing conventional non-toxic pharmaceutically acceptable carriers, solvents, diluents, and adjuvants, by injection, infusion, implant (intravenous, intramuscular, subcutaneous, etc.), or by inhalation.The formulation and preparation of such compositions are well known to those skilled in the art of pharmaceutical formulation.

[0036] Formulations for parenteral use may be presented in unit dosage form (e.g., in single-dose ampoules and vials), in vials containing several doses and to which a suitable preservative (see below) may be added, in pre-filled syringes, or in pre-filled IV bags.

[0037] The pharmaceutical compositions described herein may be in the form suitable for sterile injection.

[0038] The formulation may comprise a solution containing rifabutin. Rifabutin solutions and methods of making rifabutin solutions are described in commonly owned, co-pending U.S. patent application Ser. No. 62 / 902,019, the contents of which are incorporated herein by reference.

[0039] Depending on the patient's needs and clinical condition, administering the composition by IV administration may be preferable to oral administration because it allows for rapid introduction of the antibiotic into the systemic circulation, provides complete bioavailability, allows for better control of the pharmacokinetic parameters driving pharmacological efficacy, and avoids stability and absorption issues in the gastrointestinal tract.

[0040] A typical dose of rifabutin is one that can achieve plasma or local levels of rifabutin with a Cmax of >2 mg / L but <50 mg / L and an AUC of 10 mg*h / L but <200 mg*h / L.

[0041] The preparation may be formulated for parenteral administration (e.g., by injection or infusion), which may be subcutaneous or intravenous.

[0042] Treatment of A. baumannii infection The combination therapy of the present invention is useful for treating A. baumannii infection in a subject. The subject may be a human. The subject may be a pediatric, newborn, neonate, infant, toddler, child, adolescent, pre-teen, teenager, adult, or elderly subject. The subject may be in critical care, intensive care, neonatal intensive care, pediatric intensive care, coronary care, cardiothoracic care, surgical intensive care, intensive care, long-term intensive care, operating room, ambulance, field hospital, or out-of-hospital field setting.

[0043] The subject may have an A. baumannii infection that is resistant to antibiotics. For example, and without limitation, the A. baumannii infection may be resistant to one or more of the following: aminocyclitols, aminoglycosides, beta-lactams, beta-lactamase inhibitors, carbapenems, cephalosporins, polymyxins, quinolones, rifamycins, sulfonamides, tetracyclines, amikacin, trimethoprim-sulfamethoxazole, cefepime, cefiderocol, ceftazidime, chloramphenicol, ciprofloxacin, colistin, doripenem, gentamicin, imipenem, levofloxacin, meropenem, penicillin, piperacillin, rifabutin, rifampicin, tazobactam, and tigecycline. The A. baumannii infection can be resistant to rifabutin, colistin, or both.The A. baumannii infection can be resistant to rifabutin, cefiderocol, or both.

[0044] The antibiotics in the combination therapy can be administered simultaneously or sequentially. Sequential or alternating administration can include providing each antibiotic exclusively for a predetermined period of time. Sequential administration can include an overlapping period during which the subject is provided with both an IV formulation containing rifabutin and a formulation containing another therapeutic agent. The exclusive period and the overlapping period can independently be 1 hour, 2 hours, 3 hours, 4 hours, 5 hours, 6 hours, 1 day, 2 days, 3 days, 4 days, 5 days, 6 days, 1 week, or 2 weeks. [Example]

[0045] Abstract The goal of this study was to identify standard-of-care (SoC) antibiotics that synergize with rifabutin against Acinetobacter baumannii. Synergy was assessed by checkerboard minimum inhibitor concentration (MIC) testing against multiple A. baumannii clinical isolates. Rifabutin synergy was first identified with colistin and cefiderocol when tested against the LAC-4 strain. When tested against a panel of strains, rifabutin / cefiderocol synergy was observed in 100% of the strains, with a >4-fold reduction in the cefiderocol MIC. Rifabutin / colistin synergy was observed in 100% of the strains, and the synergy was robust and independent of the initial resistance level to rifabutin or colistin. Rifabutin activity was superior to that of rifampicin when combined with colistin. This is because the synergistic effect with rifampicin is independent of the initial level of resistance to rifampicin and the presence or absence of rpoB mutations as described in the literature. Unexpectedly, the rifabutin / colistin combination was active against strains resistant to rifabutin (including isolates with rpoB mutations) and / or strains resistant to colistin, indicating that the combination overcomes both resistances.

[0046] In conclusion, rifabutin has the ability to improve the antibacterial activity of cefiderocol and colistin against A. baumannii strains.

[0047] antibacterial agents BV-015-3219-001-02 (rifabutin (batch number 17008MR89D)) was manufactured by Olon SpA, and a 10 g / L stock solution was prepared in DMSO. Stock solutions of rifampicin (Sigma R3501) and cefiderocol (Synnovator SYNNAAX397783) were prepared at 10 mg / mL in DMSO. Colistin sulfate (Sigma C4461), meropenem (Sigma M2578), cefotaxime (Acros 45495), tobramycin (Sigma T1783), eravacycline (MedChemExpress Stock solutions of ciprofloxacin (Sigma 17850) were prepared at 10 mg / ml in 0.1 N NaOH. Stock solutions were stored at -20°C until use.

[0048] Bacterial strains The A. baumannii clinical isolate used in this study was BioVersys The strains were collected from the strain collection. Glycerol stock cultures were stored at -80°C.

[0049] Antibacterial susceptibility and synergy testing The synergistic effect of rifabutin with SoC antibiotics was tested using the broth microdilution checkerboard method. The checkerboard was performed according to the CLSI parameters used for broth microdilution MIC5. CA-MHB, iron-deficient CA-MHB (ID-CA-MHB), or RPMI medium supplemented with 10% FCS was used as specified, and ID-CA-MHB was prepared according to CLSI guidelines. Rifabutin was serially diluted along the abscissa, and the antibiotic in the combination was diluted along the ordinate. This setup allows the combination of rifabutin and another antibiotic at increasing concentrations to provide a final classification of the combination based on the fractional inhibitory concentration (FIC) index (FICI) as follows: synergistic (FICI<0.5); neutral (FICI>0.50 and <4); antagonistic (FICI>4). FICI is calculated as follows:

number

[0050] In conclusion, synergy is defined when there is at least a four-fold reduction in the MIC of the antibiotics tested in combination compared to the MIC of the antibiotics tested alone.

[0051] Example 1 Rifabutin exerts synergistic activity with colistin and cefiderocol against A. baumannii strain LAC-4. The synergistic effect of rifabutin with SoC antibiotics was tested in a checkerboard assay against A. baumannii strain LAC-4. The checkerboard assay was performed with cefiderocol and either CA-MHB or ID-CA-MHB. The results are shown in Table 1.

[0052] [Table 1]

[0053] Of the eight SoC antibiotics tested, only colistin and cefiderocol exhibited synergy with rifabutin, while the other six were neutral.

[0054] Figure 1 shows an image of a 96-well checkerboard plate of A. baumannii cells cultured in various concentrations of rifabutin and colistin. Wells used to determine the MIC of the antibiotics alone are circled in green, wells for the combination MIC are circled in blue, and wells used to calculate the FICI are circled in red.

[0055] Figure 2 shows an image of a 96-well checkerboard plate of A. baumannii cells cultured in various concentrations of rifabutin and cefiderocol. Wells used to determine the MIC of the antibiotics alone are circled in green, wells for the combination MIC are circled in blue, and wells used to calculate the FICI are circled in red.

[0056] Example 2 Rifabutin reduces the MIC of cefiderocol >4-fold against the A. baumannii strains tested To further test the synergy between rifabutin and cefiderocol against A. baumannii, checkerboard tests were performed on a panel of 16 MDR clinical isolates of A. baumannii, including five isolates with elevated MICs (>32 mg / L) to rifabutin (and rifampicin) that harbor mutations in the rpoB gene. To more fully describe the level of synergy, the MICs of rifabutin and cefiderocol, alone and in combination, are shown for each strain in Table 2, along with these MICs and the associated fold shift. As expected, cefiderocol in combination with rifabutin had little or no effect on the efficacy of rifabutin against isolates harboring mutations in the rpoB gene. Unexpectedly, rifabutin caused at least a fourfold reduction in the MIC of cefiderocol against all Acinetobacter baumannii strains tested.

[0057] [Table 2]

[0058] Overall, the data indicate that the combination of rifabutin and cefiderocol may improve treatment outcomes for A. baumannii infections.

[0059] Example 3 Rifabutin exhibits strong synergy with colistin against 100% of A. baumannii strains tested The same challenge was performed on rifabutin synergy with colistin against A. baumannii. The checkerboard test was performed on a panel of 16 MDR clinical isolates of A. baumannii, including five isolates with elevated MICs (>32 mg / L) to rifabutin (and rifampicin) that harbored mutations in the rpoB gene, and five colistin-resistant strains (MICs >4 mg / L). Synergy was tested in CA-MHB medium, an approved medium for testing colistin MICs. The results are shown in Table 3. Unexpectedly, colistin in combination with rifabutin had a significant effect on rifabutin activity against isolates with mutations in the rpoB gene. In these cases, the shift in rifabutin MIC was >32-fold in combination with colistin.

[0060] [Table 3] Rifabutin synergy with colistin was observed in 100% of the strains tested in CA-MHB. Remarkably, the synergy was independent of the original resistance level of rifabutin or colistin, as exemplified in CA-MHB, where colistin MICs were reduced by at least 16-fold in colistin-resistant strains, rendering all but one of them colistin-susceptible. These results indicate that the combination of rifabutin and colistin has the potential to overcome resistance to both rifabutin and colistin in A. baumannii clinical isolates.

[0061] These observations may indicate that colistin plays a role as a cell-penetrating agent due to its synergistic effect with rifabutin. To assess whether colistin only plays a role as a cell-penetrating agent, rifabutin synergy was tested in combination with SPR741, a colistin derivative that retains its permeabilizing activity but loses its antibacterial activity. The results are shown in Table 4.

[0062] [Table 4]

[0063] Rifabutin synergy with SPR741 was observed in 88% of the strains. However, the synergy was less pronounced than that with colistin. For the majority of strains, the MICs of the rifabutin combination remained in the range of 0.125 to 2 mg / L. Furthermore, the SPR741 concentration required to achieve synergy with rifabutin was at least 8-fold higher than the colistin one. The results indicate that colistin's intrinsic antibacterial activity is required for strong synergy with rifabutin.

[0064] Example 4 Comparison of rifampicin synergism in combination with colistin against A. baumannii isolates As a comparison factor, rifampicin synergy with colistin was determined against a panel of A. baumannii strains, and the results are shown in Table 5.

[0065] [Table 5]

[0066] Synergy was observed in 88% of the strains. For rifabutin, synergy was independent of colistin resistance, as exemplified by synergy for the majority of colistin-resistant strains. However, in contrast to rifabutin, and as predicted from the literature, rifampicin / colistin synergy was lower in isolates with mutations in the rpoB gene. For these isolates, the MICs of the rifampicin combination remained high (>32 mg / L).

[0067] Overall, our results demonstrate that colistin can improve rifabutin activity against A. baumannii strains with elevated MICs to rifabutin, colistin, or both (and vice versa). However, unlike rifampicin, there was unexpected activity of rifabutin in combination with colistin against isolates that harbored mutations in the rpoB gene and were otherwise resistant to these antibiotics.

[0068] Incorporation by Reference References and citations to other documents (e.g., patents, patent applications, patent publications, journals, books, articles, web content) are made throughout this disclosure. All such documents are incorporated herein by reference in their entirety for all purposes.

[0069] equivalent Various modifications of the invention and many further embodiments thereof, in addition to those shown and described herein, will become apparent to those skilled in the art from the entire contents of this document, including reference to the scientific and patent literature cited herein. The subject matter herein contains important information, exemplification, and guidance that can be adapted to the practice of this invention in its various embodiments and equivalents thereof. In certain embodiments, for example, the following are provided: (Item 1) Item 2: A method for treating an A. baumannii infection in a subject, the method comprising providing to a subject infected with A. baumannii rifabutin and a second antibiotic selected from the group consisting of colistin and cefiderocol. 10. The method of claim 1, wherein the subject is infected with a strain of A. baumannii that is resistant to rifabutin. (Item 3) 2. The method of claim 1, wherein the subject is infected with a strain of A. baumannii that is resistant to the second antibiotic. (Item 4) 2. The method of claim 1, wherein the second antibiotic is colistin. (Item 5) 2. The method of claim 1, wherein the second antibiotic is cefiderocol. (Item 6) 2. The method of claim 1, wherein the rifabutin is administered intravenously. (Item 7) 10. The method of claim 1, wherein the rifabutin is administered by inhalation. (Item 8) 10. The method of claim 1, wherein the rifabutin and the second antibiotic are provided in a single formulation. (Item 9) 2. The method of claim 1, wherein the rifabutin and the second antibiotic are provided separately. (Item 10) 2. The method of claim 1, wherein the A. baumannii comprises an rpoB mutation. (Item 11) A combination therapy comprising a second antibiotic selected from the group consisting of colistin and cefiderocol, wherein said combination therapy comprises rifabutin and said second antibiotic in therapeutically effective amounts to treat an A. baumannii infection in a subject. (Item 12) 12. The combination therapy of item 11, wherein the subject is infected with a strain of A. baumannii that is resistant to rifabutin. (Item 13) 12. The combination therapy of item 11, wherein the subject is infected with a strain of A. baumannii that is resistant to the second antibiotic. (Item 14) 12. The combination therapy of claim 11, wherein the second antibiotic is colistin. (Item 15) 12. The combination therapy of claim 11, wherein the second antibiotic is cefiderocol. (Item 16) 12. The combination therapy of item 11, wherein the rifabutin is administered intravenously. (Item 17) 12. The combination therapy of item 11, wherein the rifabutin is administered by inhalation. (Item 18) 12. The combination therapy of item 11, wherein the rifabutin and the second antibiotic are provided in a single formulation. (Item 19) 12. The combination therapy of item 11, wherein the rifabutin and the second antibiotic are provided separately. (Item 20) 12. The combination therapy of item 11, wherein the A. baumannii comprises an rpoB mutation.

Claims

1. A combination comprising rifabutin and a second antibiotic for use in a method for treating A. baumannii infection in a subject, wherein the second antibiotic is polymyxin.

2. The combination for use according to claim 1, wherein the subject is infected with a strain of A. baumannii that is resistant to rifabutin.

3. The combination for use according to claim 1, wherein the subject is infected with a strain of A. baumannii that is resistant to the second antibiotic.

4. The combination according to claim 1, wherein the second antibiotic is colistin.

5. The combination according to claim 1, wherein the second antibiotic is polymyxin B.

6. The combination for use according to claim 1, characterized in that the rifabutin is administered intravenously.

7. The combination for use according to claim 1, characterized in that the rifabutin is administered by inhalation.

8. The combination for use according to claim 1, characterized in that the rifabutin and the second antibiotic are provided in a single formulation.

9. The combination for use according to claim 1, characterized in that the rifabutin and the second antibiotic are provided separately.

10. The combination for use according to claim 1, wherein A. baumannii contains the rpoB mutation.

11. A composition comprising rifabutin for use in a method for treating A. baumannii infection in a subject, characterized in that the composition is administered in combination with polymyxin alone.

12. A composition comprising polymyxin for use in a method for treating A. baumannii infection in a subject, characterized in that the composition is administered in combination with rifabutin alone.