Pharmacokinetics and Physiologically Based Pharmacokinetic Modeling of Mycobacteriophages: Insights into Pulmonary Distribution and Clearance

Abstract Bacteriophage therapy is being explored as an alternate therapeutic approach for treating drug-resistant bacteria, including mycobacteria. However, rational phage dosing remains limited by scarce pharmacokinetic (PK) data and an incomplete understanding of tissue distribution. We performed dose-ranging studies in mice of three therapeutic mycobacteriophages (BPsΔ, ZoeJΔ, Muddy) after intravenous (IV) and intratracheal (IT) administration. All phages behaved similarly. IV dosing produced biphasic kinetics with nonproportional exposure and declining tissue-to-plasma ratios, indicating saturable uptake and elimination. IT delivery yielded monophasic profiles with ∼390-fold higher lung exposure and ∼490-fold lower plasma exposure, supporting inhaled therapy for pulmonary mycobacterial infections. Using BPsΔ data, we developed a mechanistic PBPK model incorporating transcytosis, saturable host clearance, plasma elimination, and lymphatic transport. The model accurately predicted ZoeJΔ and Muddy PK, enabled cross-species extrapolation, and showed that phage morphology influences disposition. This framework advances phage therapy toward model-informed, exposure-guided dose and route selection for multidrug-resistant bacterial infections.

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Publication Details

Journal
Molecular Pharmaceutics
Published
2026-09-17
DOI
https://doi.org/10.1021/acs.molpharmaceut.6c00604
Primary Topic
Bacteriophages and microbial interactions
Type
article
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article

Pharmacokinetics and Physiologically Based Pharmacokinetic Modeling of Mycobacteriophages: Insights into Pulmonary Distribution and Clearance

Alan A. Schmalstig, Sara E. Maloney, Saikumar Matcha, Pradeep Neupane et al.
Molecular Pharmaceutics
Bacteriophages and microbial interactions
article

Pharmacokinetics and Physiologically Based Pharmacokinetic Modeling of Mycobacteriophages: Insights into Pulmonary Distribution and Clearance

Alan A. Schmalstig, Sara E. Maloney, Saikumar Matcha, Pradeep Neupane, Ramya Mahadevan, Hunter S. Talley, Gauri G. Rao, Rajnikant Sharma, Chunfu Cheng, Sai Divyash, Anthony J. Hickey, Shekhar Yeshwante, Miriam Braunstein, Graham F. Hatfull
article en

Abstract

Abstract Bacteriophage therapy is being explored as an alternate therapeutic approach for treating drug-resistant bacteria, including mycobacteria. However, rational phage dosing remains limited by scarce pharmacokinetic (PK) data and an incomplete understanding of tissue distribution. We performed dose-ranging studies in mice of three therapeutic mycobacteriophages (BPsΔ, ZoeJΔ, Muddy) after intravenous (IV) and intratracheal (IT) administration. All phages behaved similarly. IV dosing produced biphasic kinetics with nonproportional exposure and declining tissue-to-plasma ratios, indicating saturable uptake and elimination. IT delivery yielded monophasic profiles with ∼390-fold higher lung exposure and ∼490-fold lower plasma exposure, supporting inhaled therapy for pulmonary mycobacterial infections. Using BPsΔ data, we developed a mechanistic PBPK model incorporating transcytosis, saturable host clearance, plasma elimination, and lymphatic transport. The model accurately predicted ZoeJΔ and Muddy PK, enabled cross-species extrapolation, and showed that phage morphology influences disposition. This framework advances phage therapy toward model-informed, exposure-guided dose and route selection for multidrug-resistant bacterial infections.

Molecular Pharmaceutics
University of North Carolina at Chapel Hill (US), University of Southern California (US), University of Pittsburgh (US), RTI International (US), Colorado State University (US)
Good health and well-being
Openalex Percentile: Top 10%
Bacteriophages and microbial interactions
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