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Antimicrobial Agents and Chemotherapy

American Society for Microbiology

All preprints, ranked by how well they match Antimicrobial Agents and Chemotherapy's content profile, based on 187 papers previously published here. The average preprint has a 0.14% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.

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Understanding emergence of antimycobacterial dose dependent resistance.

Kloprogge, F.; Ortiz Canseco, J.; Phee, L.; Sadouki, Z.; Kipper, K.; Witney, A. A.; Stoker, N.; McHugh, T. D.

2022-09-04 pharmacology and toxicology 10.1101/2022.09.02.506358 medRxiv
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Concentration dependency of phenotypic and genotypic isoniazid-rifampicin resistance emergence was investigated to obtain a mechanistic understanding on how anti-mycobacterial drugs facilitate the emergence of bacterial populations that survive throughout treatment. Using static kill curve experiments, observing two evolution cycles, it was demonstrated that rifampicin resistance was the result of non-specific mechanisms and not associated with accumulation of drug resistance encoding SNPs. Whereas, part of isoniazid resistance could be accounted for by accumulation of specific SNPs, which was concentration dependent. Using a Hollow Fibre Infection Model it was demonstrated that emergence of genotypic resistance only occurs when antibiotic levels fall below MIC although MICs are typically maintained following clinical dosing provided that adherence to the regimen is good. This study showed that disentangling and quantifying concentration dependent emergence of resistance provides improved rational for drug and dose selection although further work on understanding underlying mechanisms is needed to improve the drug development pipeline. One Sentence SummaryDisentangling and quantifying concentration dependent emergence of resistance will contribute to better informed drug and dose selection for anti-mycobacterial combination therapy.

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Direct inhibitors of InhA with efficacy similar or superior to isoniazid in novel drug regimens for tuberculosis

Encinas, L.; Li, S.-Y.; Rullas-Trincado, J.; Tasneen, R.; TYAGI, S.; Soni, H.; garcia-perez, a.; Lee, J.; Gonzalez del Rio, R.; De Mercado, J.; Sousa, V.; Sosi?, I.; Gobec, S.; Mendoza-Losana, A.; Converse, P. J.; Mdluli, K.; Fotouhi, N.; BARROS-AGUIRRE, D.; Nuermberger, E. L.

2024-03-14 pharmacology and toxicology 10.1101/2024.03.08.584126 medRxiv
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Isoniazid is an important first-line medicine to treat tuberculosis (TB). Isoniazid resistance increases the risk of poor treatment outcomes and development of multidrug resistance, and is driven primarily by mutations involving katG, encoding the pro-drug activating enzyme, rather than its validated target, InhA. The chemical tractability of InhA has fostered efforts to discover direct inhibitors of InhA (DIIs). During the past five years, successful target engagement and in vivo efficacy have been demonstrated by diverse DIIs. In this study, we bridge the gap in understanding the potential contribution of DIIs to novel combination regimens and demonstrate a clear distinction of DIIs, like GSK693 and the newly described GSK138, from isoniazid, based on activity against clinical isolates and contribution to novel drug regimens. The results presented increase the understanding of DII mechanism of action and provide further impetus to continue exploiting InhA as a promising target for TB drug development.

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Zidovudine multi-combos with last-line fosfomycin, ceftazidime-avibactam, colistin and tigecycline against Multi-Drug Resistant Klebsiella pneumoniae

Gomara-Lomero, M.; Lopez-Calleja, A. I.; Rezusta, A.; Ainsa, J. A.; Ramon-Garcia, S.

2022-05-17 microbiology 10.1101/2022.05.17.492182 medRxiv
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Drug repurposing is a novel strategy for the development of new therapies against antibiotic-resistant bacteria. Zidovudine, an antiviral largely used in the HIV-therapy, exerts antibacterial activity against Gram-negative bacteria. Zidovudine was identified in a previous drug repurposing synergy screening as fosfomycin enhancer against Klebsiella pneumoniae ATCC 13883. Our aim was to evaluate the antibacterial in vitro activity of zidovudine-based combinations with last-line antibiotics against MDR/XDR K. pneumoniae isolates. We validated the zidovudine/fosfomycin combination against a collection of 12 MDR K. pneumoniae isolates by the checkerboard assay (CBA). In addition, we performed time-kill assays (TKA) to analyze synergistic and bactericidal activities of zidovudine paired combinations with fosfomycin, ceftazidime-avibactam, colistin and tigecycline. These were compared with frequent clinical combinations in the treatment of MDR Enterobacteriaceae. The potential of the triple zidovudine/fosfomycin/colistin was also assessed by TKA. CBA synergy confirmation rate between zidovudine/fosfomycin was 83.33%. TKA yielded synergy confirmation rates of 83.3% for zidovudine/ceftazidime-avibactam, 75% for zidovudine/fosfomycin, 75% for zidovudine/colistin and 66.6% for zidovudine/tigecycline with potent killing activities. Frequent clinical combinations displayed synergy rates of 41.6% for meropenem/ertapenem, 33.33% for meropenem/colistin, 75% for fosfomycin/colistin and 66.6% for fosfomycin/tigecycline with lower bactericidal efficacy than zidovudine-based combinations. The triple zidovudine/fosfomycin/colistin combination exhibited activities similar to fosfomycin/colistin and fosfomycin/zidovudine. As conclusion, zidovudine is an effective partner in in vitro combinations with existing antibiotics against MDR K. pneumoniae, especially with ceftazidime-avibactam, fosfomycin or colistin. Further studies are needed to elucidate the clinical potential of zidovudine as a repurposed drug in the antibacterial therapy.

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Ethambutol and Meropenem/Clavulanate Synergy Promotes Enhanced Extracellular and Intracellular Killing of Mycobacterium tuberculosis

Olivenca, F.; Pires, D.; Silveiro, C.; Gama, B.; Holtreman, F.; Anes, E.; Catalao, M. J.

2023-10-26 microbiology 10.1101/2023.10.24.563807 medRxiv
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Increasing evidence supports the repositioning of beta-lactams for tuberculosis (TB) therapy. However, additional research on the interaction of these drugs with conventional anti-TB agents is still warranted. Since the complex cell envelope of Mycobacterium tuberculosis (Mtb) may pose an additional obstacle to the diffusion of beta-lactams, an improved activity upon combination with drugs that inhibit the synthesis of outer cell wall elements is particularly relevant. In this context, we aimed to determine potential synergies between beta-lactams and the antimycobacterial drugs ethambutol and isoniazid. This was followed by experiments that aimed to confirm if the increased antimicrobial effects remained within the intracellular milieu and if they promoted heightened immune responses. Results of checkerboard assays with H37Rv and eight clinical isolates, including four drug-resistant Mtb strains, exposed that only the treatments containing ethambutol and beta-lactams achieved synergistic effects, while the standard ethambutol and isoniazid association failed to produce synergy in any of the tested isolates. In Mtb-infected THP-1 macrophages, combinations of ethambutol with increasing meropenem concentrations consistently displayed superior killing activities over the individual antibiotics. Flow cytometry with BODIPY FL vancomycin, which binds directly to the peptidoglycan, confirmed an increased exposure of this layer after co-treatment. This was reinforced by the high IL-1{beta} secretion levels found in infected macrophages after incubation with concentrations of meropenem above 5 mg/L, which indicated an exposure of the host innate response sensors to pathogen-associated molecular patterns in the PG. Our findings show that the proposed impaired access of beta-lactams to periplasmic transpeptidases is counteracted by concomitant administration with ethambutol. The efficiency of this combination may be attributed to the synchronized inhibition of arabinogalactan and peptidoglycan synthesis, two key cell wall components. Given that beta-lactams exhibit a time-dependent bactericidal activity, a more effective pathogen recognition and killing prompted by this association may be highly beneficial to optimize TB regimens containing carbapenems.

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Profiling the in vitro and in vivo activity of streptothricin-F against carbapenem-resistant Enterobacterales: a historic scaffold with a novel mechanism of action

Smith, K. P.; Kang, Y.-S.; Green, A. B.; Dowgiallo, M. G.; Miller, B. C.; Chiaraviglio, L.; Truelson, K. A.; Zulauf, K. E.; Rodriguez, S.; Manetsch, R.; Kirby, J. E.

2021-06-15 microbiology 10.1101/2021.06.14.448463 medRxiv
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Streptothricins are components of the natural product, nourseothricin; each containing identical streptolidine and gulosamine aminosugar moieties attached to varying numbers of linked {beta}-lysines. Nourseothricin was discovered by Waksman and colleagues in the early 1940s, generating intense interest because of excellent Gram-negative activity. However, the natural product mixture was associated with toxicity, and subsequent exploration was limited. Here, we establish the activity spectrum of nourseothricin and its main components, streptothricin-F (S-F, one lysine) and streptothricin D (S-D, three lysines), purified to homogeneity, against highly drug-resistant, carbapenem-resistant Enterobacterales (CRE). The MIC50 and MIC90 for S-F and S-D were 2 and 4 {micro}M, and 0.25 and 0.5 {micro}M, respectively. S-F and nourseothricin showed rapid, bactericidal activity. S-F and S-D both showed approximately 40-fold greater selectivity for prokaryotic than eukaryotic ribosomes in in vitro translation assays. There was >10-fold in vitro selectivity of S-F compared with S-D on LLC-PK1 and J774 cell lines. In vivo, delayed renal toxicity occurred at >10-fold higher doses of S-F compared with S-D. Substantial treatment effect of S-F in the murine thigh model was observed against the otherwise pandrug-resistant, NDM-1-expressing Klebsiella pneumoniae Nevada strain at dosing levels without observable or minimal toxicity. Resistance mutations obtained in single ribosomal operon E. coli identify novel interactions with 16S rRNA helix 34, i.e., C1504A and A1196G/C conferred high level resistance to nourseothricin. Based on promising, unique activity, we suggest that the streptothricin scaffold deserves further pre-clinical exploration as a potential therapeutic for the treatment of CRE and potentially other multidrug-resistant, gram-negative pathogens. IMPORTANCEStreptothricins are a historic class of antibiotics discovered by Waksman and colleagues in the 1940s. Toxicities associated with the streptothricin natural product mixture, also known as nourseothricin, discouraged further development. However, we found that a component of nourseothricin, streptothricin-F, retained potent activity against contemporary carbapenem-resistant Enterobacterales with significant selectivity in in vitro and in vivo assays. This included demonstration of rapid bactericidal activity in vitro and substantial therapeutic effect in the murine thigh model against a pandrug-resistant Klebsiella pneumoniae isolate at non-toxic concentrations. Through resistance mutation analysis, we identified helix 34 of 16S rRNA in the prokaryotic ribosome, and specifically bases C1054 and A1196, as critical for streptothricins activity. The mechanism of action is distinct from other known translation inhibitors. Based on promising and unique activity, we believe the streptothricin scaffold deserves further pre-clinical exploration as a potential therapeutic for the treatment of CRE and potentially other multidrug-resistant, Gram-negative pathogens.

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Predicting early bactericidal activity of tuberculosis drug combinations using a translational pharmacokinetic-pharmacodynamic modeling approach

de Castro Suarez, N.; Nuermberger, E. L.; Ernest, J.; Savic, R. M.

2026-02-02 pharmacology and toxicology 10.64898/2026.01.29.702705 medRxiv
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Phase IIa pulmonary tuberculosis (TB) trials typically assess the early bactericidal activity (EBA) of monotherapy for over 14 days. However, few studies have evaluated drug combinations, even though optimal monotherapy doses may not directly translate to combinations. Translational pharmacokinetic-pharmacodynamic (PK-PD) modeling has shown promise in predicting human treatment responses based on preclinical monotherapy data; however, its application in drug combinations remains limited. This study aimed to extend and validate our previously developed translational monotherapy PK-PD modeling platform to predict the EBA of two-drug combinations. Interactions between bedaquiline, pretomanid, linezolid, and pyrazinamide were characterized using two modeling approaches: the empirical SUPER method and the mechanistic General Pharmacodynamic Interaction model. Both approaches were independently linked to our translational platform and validated using mouse data and Phase IIa clinical results from the NC-001 study. Both modeling methods identified consistent interaction patterns, including antagonistic interactions when bedaquiline was combined with either pretomanid or linezolid. Pyrazinamide has emerged as the most effective companion for both bedaquiline and pretomanid. Our platform reasonably predicted 14-day clinical sputum colony-forming unit counts for multiple two-drug combinations, with most observations falling within the 95% prediction intervals, supporting its use in accelerating regimen development. Our study demonstrated that the translational PK-PD platform reliably predicts both short- and long-term outcomes for combinations, regardless of the interaction model. This supports its application across drug development stages to inform dose selection and effective companion drugs for anti-TB therapies.

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CWHM-974 is a fluphenazine derivative with improved antifungal activity against Candida albicans due to reduced susceptibility to multidrug transporter-mediated resistance mechanisms

Miron-Ocampo, A.; Beattie, S. R.; Guin, S.; Conway, T. P.; Meyers, M. J.; Moye-Rowley, W. S.; Krysan, D. J.

2023-05-01 microbiology 10.1101/2023.05.01.538946 medRxiv
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Multidrug resistance (MDR) transporters such as ATP Binding Cassette (ABC) and Major Facilitator Superfamily (MFS) proteins are important mediators of antifungal drug resistance, particularly with respect to azole class drugs. Consequently, identifying molecules that are not susceptible to this mechanism of resistance is an important goal for new antifungal drug discovery. As part of a project to optimize the antifungal activity of clinically used phenothiazines, we synthesized a fluphenazine derivative (CWHM-974) with 8-fold higher activity against Candida spp. compared to the fluphenazine and with activity against Candida spp. with reduced fluconazole susceptibility due to increased multidrug resistance transporters. Here, we show that the improved C. albicans activity is because fluphenazine induces its own resistance by triggering expression of CDR transporters while CWHM-974 induces expression but does not appear to be a substrate for the transporters or is insensitive to their effects through other mechanisms. We also found that fluphenazine and CWHM-974 are antagonistic with fluconazole in C. albicans but not in C. glabrata, despite inducing CDR1 expression to high levels. Overall, CWHM-974 represents a unique example of a medicinal chemistry-based conversion of chemical scaffold from MDR-sensitive to MDR-resistant and, hence, active against fungi that have developed resistance to clinically used antifungals such as the azoles.

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Next-generation diarylquinolines improve sterilizing activity of regimens with pretomanid and the novel oxazolidinone TBI-223 in a mouse tuberculosis model

Li, S.-Y.; Converse, P. J.; Betoudji, F.; Lee, J.; Mdluli, K.; Upton, A.; Fotouhi, N.; Nuermberger, E.

2023-01-11 microbiology 10.1101/2023.01.10.523519 medRxiv
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A regimen comprised of bedaquiline, pretomanid and linezolid (BPaL) is the first oral 6-month regimen approved by the US Food and Drug Administration and recommended by the World Health Organization for treatment of extensively drug-resistant tuberculosis. We used a well-established BALB/c mouse model of tuberculosis to evaluate the treatment-shortening potential of replacing bedaquiline with either of two new, more potent diarylquinolines in early clinical trials, TBAJ-587 and TBAJ-876. We also evaluated the effect of replacing linezolid with a new oxazolidinone, TBI-223, exhibiting a larger safety margin with respect to mitochondrial toxicity in preclinical studies. Replacing bedaquiline with TBAJ-587 at the same 25 mg/kg dose significantly reduced the proportion of mice relapsing after 2 months of treatment, while replacing linezolid with TBI-223 at the same 100 mg/kg dose did not significantly change the proportion of mice relapsing. Replacing linezolid or TBI-223 with sutezolid in combination with TBAJ-587 and pretomanid significantly reduced the proportion of mice relapsing. In combination with pretomanid and TBI-223, TBAJ-876 at 6.25 mg/kg was equipotent to TBAJ-587 at 25 mg/kg. We conclude that replacement of bedaquiline with these more efficacious and potentially safer diarylquinolines and replacement of linezolid with potentially safer and at least as efficacious oxazolidinones in the clinically successful BPaL regimen may lead to superior regimens capable of treating both drug-susceptible and drug-resistant TB more effectively and safely.

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Fusidic acid-based drug combinations exhibit enhanced activity against Mycobacterium tuberculosis

Omollo, C. O.; Warner, D. F.; Moosa, A.; Chibale, K.

2023-01-20 microbiology 10.1101/2023.01.19.524834 medRxiv
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Tuberculosis (TB) imposes a major burden on global public health which is exacerbated by the escalating number of multidrug-resistant (MDR)-TB cases. There is consequently an urgent need for new anti-TB drugs and combination regimens. We have investigated the natural product antibiotic fusidic acid (FA) for repurposing against Mycobacterium tuberculosis, the causative agent of TB. Here, we report the results of synergy screens combining FA with a panel of approved anti-TB agents. Checkerboard and time-kill kinetics assays identified seven compounds from different chemical classes that synergized with FA in inhibiting the growth of M. tuberculosis in vitro: rifampicin (RIF), a rifamycin and frontline anti-TB drug; the macrolides, erythromycin (ERY), clarithromycin (CLR), and roxythromycin (ROX); the oxazolidinone, linezolid (LZD); the aminoglycoside, streptomycin (STR); and the aminocyclitol, spectinomycin (SPC). Among these, the strongest synergies were observed where FA was combined with SPC and ERY. Moreover, the FA-RIF combination was cidal, while all other FA combinations were bacteriostatic. These results provide in vitro evidence of the potential utility of FA-containing combinations against M. tuberculosis.

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Elucidating effects of single and multiple resistance mechanisms on bacterial response to meropenem by quantitative and systems pharmacology modeling and population genomics

Fuhs, D. T.; Cortes-Lara, S.; Tait, J. R.; Rogers, K. E.; Lopez-Causape, C.; Lee, W. L.; Shackleford, D. M.; Nation, R. L.; Oliver, A.; Landersdorfer, C. B.

2024-02-17 microbiology 10.1101/2024.02.17.579784 medRxiv
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Meropenem is commonly used against Pseudomonas aeruginosa. Traditionally, the time unbound antibiotic concentration exceeds the MIC (fT>MIC) is used to select carbapenem regimens. We aimed to: characterize the effects of different baseline resistance mechanisms on bacterial killing and resistance emergence; evaluate whether fT>MIC can predict these effects; and, develop a novel quantitative and systems pharmacology (QSP) model to describe effects of baseline resistance mechanisms on the time-course of bacterial response. Seven isogenic P. aeruginosa strains with a range of resistance mechanisms and MICs were used in 10-day hollow-fiber infection model studies. Meropenem pharmacokinetic profiles were simulated for various regimens (t1/2,meropenem=1.5h). All viable counts on drug-free, 3xMIC and 5xMIC meropenem-containing agar across all strains, five regimens and control (n=90 profiles) were simultaneously subjected to QSP modeling. Whole genome sequencing was completed for total population samples and emergent resistant colonies at 239h. Regimens achieving [≥]98%fT>1xMIC suppressed resistance emergence of the mexR knockout strain. Even 100%fT>5xMIC failed to achieve this against the strain with OprD loss and the ampD and mexR double-knockout strain. Baseline resistance mechanisms affected bacterial outcomes, even for strains with the same MIC. Genomic analysis revealed that pre-existing resistant subpopulations drove resistance emergence. During meropenem exposure, mutations in mexR were selected in strains with baseline oprD mutations, and vice versa, confirming these as major mechanisms of resistance emergence. Secondary mutations occurred in lysS or argS, coding for lysyl and arginyl tRNA synthetases, respectively. The QSP model well characterized all bacterial outcomes of the seven strains simultaneously, which fT>MIC could not.

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Ultrashort treatment with telacebec alone and with companion drugs in immunocompetent and immunosuppressed mouse footpad models of Buruli ulcer

Converse, P. J.; Komm, O.; Almeida, D.; Omansen, T. F.; Nuermberger, E.

2021-06-23 microbiology 10.1101/2021.06.22.449542 medRxiv
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The antimicrobial treatment of Mycobacterium ulcerans infection, or Buruli ulcer (BU), has a long duration and is therefore burdensome and linked to indirect costs for affected patients. The new antimycobacterial drug telacebec (Q203) has previously shown promising treatment-shortening potential in mouse models of BU. In the present study, we investigated the potential of Q203 to reduce the treatment duration further. The first experiment investigated the possibility of cure by one, three or five doses of Q203 (2 mg/kg) with or without a companion drug (bedaquiline, BDQ, clofazimine, CFZ, or clarithromycin, CLR) in immunocompetent BALB/c mice. The second experiment assessed the effect of five doses of Q203 with or without BDQ or CFZ on Mycobacterium ulcerans infection of immunocompromised SCID-beige mice with the aim to evaluate the contribution of host immunity to treatment efficacy. In BALB/c mice, a treatment duration as short as 3 days was sufficient to prevent relapse in nearly all footpads and a single dose of Q203 with or without BDQ or CFZ prevented relapse in approximately 50% of footpads. Unlike in BALB/c mice, a small percentage of SCID-beige mouse footpads were culture-positive after a treatment duration of five days, highlighting an important role of host immunity for M. ulcerans clearance. Our results confirm the marked potency and prolonged bactericidal and sterilizing effects of Q203, even in immunocompromised SCID-beige mice.

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OPTIKA, a new high content kill-kinetic assay to longitudinally assess in vitro drug combinations against Mycobacterium tuberculosis

Arenaz-Callao, M. P.; Gamallo, P.; Mendoza-Losana, A.; Ferrer-Bazaga, S.; Gonzalez del Rio, R.; Ramon-Garcia, S.

2026-05-10 microbiology 10.64898/2026.05.10.724062 medRxiv
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In vitro methods to characterize drug combinations typically involve phenotypic screenings using checkerboard assays (CBA) or, more recently, DiaMOND. Such approaches rely on the Fractional Inhibitory Concentration Index (FICI), a fixed-time measurement of growth inhibition that, nonetheless, necessitates secondary validation by time-kill assays (TKA). Longitudinal time-kinetics of bacterial killing are considered the gold standard in vitro proxy for antimicrobial activity, but they required increased assay complexity, particularly against the slow growing Mycobacterium tuberculosis. Here, we developed a new methodology named OPTIKA (Optimized Time Kill Assays) that enhances the capacity of traditional TKA by over 1000-fold. This allows for easy and dynamic examination of n-way drug interactions by simultaneously monitoring bactericidal and sterilizing capacities in a longitudinal manner. We then replicated previous DiaMOND studies and performed comparisons using CBA and OPTIKA methodologies. We demonstrate that selection of the efficacy parameters (either routed on bacteriostatic, bactericidal or sterilizing properties) affects the interpretation of in vitro drug interactions and, consequently, its potential translational value. The increased assay throughput provided by OPTIKA offers a novel framework for developing tuberculosis treatment regimens. TeaserOPTIKA is a new methodology that increases time-kill assay performance against Mycobacterium tuberculosis by over 1,000-fold

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HIV-1 Reverse Transcriptase interactions with Long-acting NNRTI, Depulfavirine (VM1500A)

Snyder, A. A.; Kaufman, I. L.; Risener, C. J.; Kirby, K. A.; Sarafianos, S. G.

2026-04-07 biochemistry 10.64898/2026.04.06.715899 medRxiv
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Non-nucleoside reverse transcriptase inhibitors (NNRTIs) are key components of combination antiretroviral therapy (ART) for the treatment of human immunodeficiency virus type 1 (HIV-1) infection, binding an allosteric pocket of reverse transcriptase (RT) and inhibiting viral replication. Although second-generation NNRTIs have improved potency and resistance profiles compared to first-generation NNRTIs, the continued emergence of resistant viral strains and the need for long-acting therapeutic options underscore the importance of developing next-generation compounds. Depulfavirine (VM1500A) is a potent NNRTI being developed as a long-acting formulation. Its prodrug, elsulfavirine (ESV), is approved for HIV-1 treatment in Eurasian countries as a once-daily oral regimen and has demonstrated favorable antiviral efficacy, pharmacokinetics, and tolerability in clinical studies. Here, we report the 2.4 [A] crystal structure of HIV-1 RT in complex with depulfavirine, revealing an extended binding conformation within the NNRTI pocket that reaches from the back of the binding pocket to the entrance. These interactions may shed light on mechanisms of resistance to the F227C mutation, with and without V106 substitution, and Y188L. Notably, depulfavirine maintains potent inhibition of common NNRTI-resistant RT variants, including K103N and Y181C. Combination studies of ESV with antivirals from diverse inhibitor categories demonstrated additive or near-synergistic activity with islatravir (ISL), cabotegravir (CAB), lenacapavir (LEN), and tenofovir (TDF). These findings highlight the broad resistance profile and potential of the depulfavirine combination.

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Regimen comprising clarithromycin, clofazimine and bedaquiline is more efficacious than monotherapy in a mouse model of chronic Mycobacterium avium lung infection

Rimal, B.; Howe, R. A.; Panthi, C. M.; Lamichhane, G.

2024-12-11 microbiology 10.1101/2024.12.11.627976 medRxiv
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Mycobacterium avium, a leading non-tuberculous mycobacterium (NTM) pathogen, causes chronic pulmonary infections, particularly in individuals with underlying lung conditions or immunosuppression. Current treatments involve prolonged multi-drug regimens with poor outcomes and significant side effects, highlighting the urgent need for improved therapies. Using a BALB/c mouse model of chronic M. avium pulmonary disease, we evaluated the efficacy of individual antibiotics-- clarithromycin, clofazimine, and rifabutin--and combination regimens including clarithromycin+bedaquiline and clarithromycin+clofazimine+bedaquiline. Clarithromycin demonstrated potent bactericidal activity, reducing lung bacterial burden by 2.2 log10 CFU, while clofazimine transitioned from bacteriostatic to bactericidal, achieving a 1.7 log10 CFU reduction. Rifabutin was bacteriostatic against M. avium MAC 101 but ineffective against MAC 104. The triple-drug regimen of clarithromycin+clofazimine+bedaquiline was the most effective, achieving a 3.3 log10 CFU reduction in bacterial load, with 98% clearance within the first week and continued efficacy over eight weeks. Gross pathology confirmed these results, with granulomatous lesions observed only in untreated or rifabutin-treated mice. Combination therapy demonstrated enhanced efficacy compared to monotherapy. The findings underscore the potential of oral clarithromycin+clofazimine+bedaquiline or clarithromycin+clofazimine regimen as a promising therapeutic strategy for M. avium pulmonary disease.

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Extended blood stage sensitivity profiles of Plasmodium vivax to doxycycline and tafenoquine using Plasmodium cynomolgi as a model

Christensen, P.; Cinzah, R.; Suwanarusk, R.; Chua, A. C. Y.; Kaneko, O.; Kyle, D. E.; Aung, H. L.; Matheson, J.; Bifani, P.; Renia, L.; Cook, G. M.; Snounou, G.; Russell, B. M.

2024-02-28 microbiology 10.1101/2024.02.23.581752 medRxiv
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Testing Plasmodium vivax antimicrobial sensitivity is limited to ex vivo schizont maturation assays, which precludes determining the IC50s of delayed action antimalarials such as doxycycline. Using Plasmodium cynomolgi as a model for P. vivax, we determined the physiologically significant delayed death effect induced by doxycycline (IC50(96h), 1401 {+/-} 607 nM). As expected, IC50(96 h) to chloroquine (20.4 nM), piperaquine (12.6 {micro}M) and tafenoquine (1424 nM) were not affected by extended exposure.

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Same class, different activity: Delamanid and pretomanid have comparable bactericidal activity but pretomanid potently inhibits Mycobacterium tuberculosis ribosomal rRNA synthesis

Reichlen, M. J.; Musisi, E.; Tabor, S. T.; Nielson, H.; Gerwing, A. M.; Kaya, F.; Zimmerman, M.; Voskuil, M. I.; Robertson, G. T.; Walter, N. D.

2025-12-30 microbiology 10.64898/2025.12.30.697025 medRxiv
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BackgroundThe nitroimidazoles delamanid and pretomanid play an important role in contemporary tuberculosis treatment. It is unclear whether delamanid and pretomanid have meaningfully different activity since both reduce Mycobacterium tuberculosis colony forming units (CFU) similarly in animal models. The RS ratio is a pharmacodynamic marker of ongoing rRNA synthesis that has been associated with treatment-shortening (i.e., sterilizing) activity. MethodsUsing Mycobacterium tuberculosis Erdman, we conducted dose-ranging studies in aerobic axenic culture and in the conventional BALB/c mouse high-dose aerosol infection model to compare bactericidal and RS ratio activity of delamanid and pretomanid. ResultsIn vitro concentration-response curves showed that delamanid and pretomanid had similar RS ratio effect at maximal concentration but pretomanid was more potent, achieving 90% of the maximal effect (RS-EC90) at a lower concentration (390 ng/mL) than delamanid (810 ng/mL). In mice, delamanid and pretomanid had similar effects on CFU. Human-equivalent doses of delamanid (6 mg/kg) and pretomanid (50 mg/kg) resulted in plasma Cmax concentrations well below (210 ng/mL) and well above (7,825 ng/mL) the RS-EC90, respectively. Delamanid displayed no discernable RS ratio response, even at 16-times the human-equivalent dose. Higher pretomanid doses resulted in significantly greater RS ratio effects. ConclusionsWe found that delamanid and pretomanid have similar bactericidal activity but pretomanid has superior RS ratio activity. Meaningful differences between drugs within the same class were not captured by conventional CFU-based pharmacodynamics, supporting the value of measuring orthogonal drug effects such as the RS ratio. LAY SUMMARYAntibiotics in the nitroimidazole class are used in treatment of drug-resistant tuberculosis. There are two approved nitroimidazole antibiotics: delamanid and pretomanid. For decades, it has been unclear whether delamanid and pretomanid are interchangeable or whether they affect the bacterium M. tuberculosis differently. Most studies of the effect of antibiotics count the number of bacterial colonies that form on a culture plate. "Colony forming units" tell us about change in bacterial burden but does not give information about bacterial health. A new way of thinking about antibiotic effect is the RS ratio. The RS ratio is a test that measures how much ribosomal RNA synthesis is ongoing. Ribosomal RNA synthesis is a "vital sign" of bacterial health and activity. The key finding of this study is that although the two nitroimdazole antibiotics look the same in terms of their effect on bacterial burden, they have different effects on bacterial health. This information deepens understanding of differences between two clinically important antibiotics. It also shows that antibiotics testing should consider not only bacterial burden but also new tests of bacterial health.

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A new in vitro checkerboard-parasite reduction ratio interaction assay for early de-risk of clinical development of antimalarial combinations

Demarta-Gatsi, C.; Wicha, S.; Walz, A.; Cherkaoui-Rbati, M. H.; Gumpp, C.; Gobeau, N.; Möhrle, J. J.; Rottmann, M.

2022-04-21 microbiology 10.1101/2022.04.19.488858 medRxiv
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The development and spread of drug resistant phenotypes substantially threaten malaria control efforts. Combination therapies have the potential to minimize the risk of resistance development but require intensive preclinical studies to determine optimal combination and dosing regimens. To support the selection of new combinations, we developed a novel in vitro-in silico combination approach to help identify the pharmacodynamic interactions of the two antimalarial drugs which can be plugged into a pharmacokinetic/pharmacodynamic model built with human monotherapies parasitological data to predict the parasitological endpoints of the combination. This allows to optimally select drug combinations and doses for the clinical development of antimalarials. With this assay, we successfully predicted the endpoints of two phase 2 clinical trials in patients with the artefenomel - piperaquine and artefenomel - ferroquine drug combinations. Besides, the predictive performance of our novel in vitro model was equivalent to the humanized mouse model outcome. Lastly, our more granular in vitro combination assay provided additional insights into the pharmacodynamic drug interactions compared to the in vivo systems, e.g. a concentration-dependent change in the Emax and the EC50 values of piperaquine or artefenomel or a directional reduction of the EC50 of ferroquine by artefenomel and a directional reduction of Emax of ferroquine by artefenomel. Overall, this novel in vitro-in silico-based technology will significantly improve and streamline the economic development of new drug combinations in malaria and potentially also in other therapeutic areas.

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Synergistic Effects of Sulopenem in Combination with Cefuroxime or Durlobactam against Mycobacterium abscessus

Dousa, K. M.; Shin, E.; Kurz, S. G.; Plummer, M.; Nantongo, M.; Bethel, C. R.; Taracila, M. A.; Nguyen, D. C.; Kreiswith, B. N.; Daley, C. L.; Remy, K. E.; Holland, S.; Bonomo, R. A.

2023-12-15 microbiology 10.1101/2023.12.15.571879 medRxiv
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Mycobacterium abscessus (Mab) affects patients with immunosuppression, Cystic Fibrosis (CF), or underlying structural lung diseases. Additionally, Mab poses clinical challenges due to its resistance to multiple antibiotics. Herein, we investigated the synergistic effect of dual {beta}-lactams [sulopenem and cefuroxime (CXM)] or the combination of sulopenem and CXM with a {beta}-lactamase inhibitors [BLI; avibactam (AVI) or durlobactam (DUR)]. The sulopenem-CXM combination yielded low minimum inhibitory concentration MIC values for 54 clinical Mab isolates and ATCC19977 (MIC50 and MIC90 [≤] 0.25 g/mL). Similar synergistic effects were observed in time-kill studies conducted at concentrations achievable in clinical settings. Sulopenem-CXM outperformed monotherapy, yielding [~]1.5 Log10 CFU/mL reduction during 10 days. Addition of BLIs enhanced this antibacterial effect, resulting in additional reduction of CFUs ([~]3 Log10 for sulopenem-CXM and AVI and [~]4 Log10 for sulopenem-DUR). Exploration of the potential mechanisms of the synergy focused on their interactions with L,D-transpeptidases (LDTs; LDTMab1-LDTMab4), Penicillin-Binding-Protein B (PBP-B), and D,D-Carboxypeptidase (DDC). Acyl complexes identified via mass spectrometry analysis, demonstrated the binding of sulopenem with LdtMab2-LdtMab4, DDC, and PBP B, and CXM with LdtMab2 and PBP-B. Molecular docking suggested formation of a covalent adduct between sulopenem and LdtMab2 after the nucleophilic attack of the cysteine residue at the {beta}-lactam carbonyl carbon, leading to the cleavage of the {beta}-lactam ring, and the establishment of a thioester bond linking the LdtMab2 with sulopenem. In conclusion, we demonstrated the biochemical basis of the synergy of sulopenem-CXM with or without BLI. These findings potentially broaden selection of oral therapeutic agents to combat Mab.

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Novel regimens for treatment of Mycobacterium avium lung disease based on advanced in vitro systems and the mathematics of basis functions

Srivastava, S.; Singh, S.; Boorgula, G. D.; McShane, P. J.; Gumbo, T.

2026-03-31 microbiology 10.64898/2026.03.30.715241 medRxiv
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Azithromycin plus ethambutol plus rifabutin (azithromycin-ethambutol-rifabutin) is the standard-of-care (SOC) for Mycobacterium avium-complex lung disease. The SOC achieves sustained sputum culture conversion in only 43-53% of patients, after an average of 18 months of therapy. Recent quantitative analyses ranked omadacycline, ceftriaxone, and minocycline highest for microbial kill. Azithromycin-minocycline-ethambutol, azithromycin-omadacycline-ethambutol, epetraborole-omadacycline-ethambutol, ceftriaxone-omadacycline-rifabutin, and the SOC were compared in the intracellular hollow fiber system model of M. avium lung disease (HFS-MAC). HFS-MAC units were treated once daily for 28 days to mimic the intrapulmonary pharmacokinetics of each drug. The ceftriaxone concentrations measured in the HFS-MAC were only 1% of those achieved in the lung by standard clinical doses. Changes in the bacterial burden were described using basis functions (BF). For liquid cultures, BF 1 (BF1) was described by a linear regression-based slope, with steepest kill slope (95% Confidence interval) of 7.87 (1.52 to14.23) by ceftriaxone-omadacycline-rifabutin versus 1.04 (-0.84 to 2.92) for SOC. For the CFU/mL readout, the BF1 steepest non-linear kill slope was for ceftriaxone-omadacycline-rifabutin of 0.55 (0.35 to 0.98) log10 CFU/mL/day versus 0.16 (0.07 to 0.25) log10 CFU/mL/day for the SOC. Thus, ceftriaxone-omadacycline-rifabutin is potentially better than the SOC, even though further ceftriaxone dose optimization is required. BF2 described rebound growth and drug-resistant subpopulation growth, and demonstrated that contrary to popular belief, SOC rebound was best explained by ethambutol-resistance (r2>0.99, p=0.01) and not by azithromycin-resistance (r2=0.27, p=0.32), questioning ethambutols role in the SOC. The BF framework is potentially easy to adapt for modeling other anti-infective agents across many infectious diseases.

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A modeling-based framework to evaluate forgiveness of TB drug combinations in a BALB/c relapsing mouse model.

Sordello, S.; Brock, L.; Tagliavini, A.; Federico, D.; Boulenc, X.; Pergher, M.; Huc Claustre, E.; Metcalf, D.; Walter, N. D.; Robertson, G. T.; Clary, J.; Berg, A.; Mdluli, K.; Hermann, D. J.; Hanna, D.; Upton, A. M.

2025-08-11 pharmacology and toxicology 10.1101/2025.08.07.668704 medRxiv
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Tuberculosis (TB) remains a leading cause of death due to an infectious agent. Adherence to long and complex TB treatments is supported by methods including directly observed therapy. The negative impact of missed drug doses on clinical outcomes is well-established, highlighting both the importance of adherence support and methods to quantify the ability of a regimen to continue exerting a biologic effect, during gaps in dosing known as "forgiveness" property. To explore the value of the BALB/c Relapsing Mouse Model of TB in evaluating treatment forgiveness, we assessed the impact of weekend dose holidays on the bactericidal, including RS ratio(R), and sterilizing efficacy of RHZE/RH and BPaMZ in perspective of each drug exposure. The cure/relapse data from this study plus multiple historical studies were used to identify a nonlinear mixed-effects Emax model that was used to estimate time to cure 50% and derive time to cure 90% mice (T90). Expected time-dependent bactericidal activity and reductions in RS ratio were observed for both treatments, with more rapid decreases for the BPaMZ groups. The weekend dosing holiday significantly decreased reductions in lung CFU and RS ratio earlier in RHZE/RH treatment, but no such effect was observed for BPaMZ. Similarly, the predicted T90 was significantly greater for RHZE/RH (but not BPaMZ), with weekend doses omitted. No major drug exposure difference was observed between the 2 dosing schedules. Our results suggest BPaMZ is more forgiving of missed doses than RHZE/RH and suggests utility of this methodology to support evaluation of TB treatment forgiveness.