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February 19, 2026Pharmaceutics2 citationsOpen Access

Advancing Dry Powder Inhalers: A Complete Workflow for Carrier-Based Formulation Development

RARodrigo AmorimNSNavneet SharmaMGMolly Gallagher

Key Points

  • The aim is to establish a Quality-by-Design (QbD) strategy for developing carrier-based dry powder inhaler formulations that link particle engineering and manufacturing.
  • Optimized jet milling for API particle size distributions.
  • Used phenytoin as a model API to study formulation-performance relationships.
  • Conducted a design of experiments to assess impacts on aerodynamic performance and processability.
  • Compared high-shear and low-shear blending techniques.
  • Developed a V-shell blending scale-up methodology.
  • Optimized jet milling produced inhalation grade particles with controlled amorphous content.
  • Design space identified for maximizing aerosolization with Dv90 of 2.9–4.5 µm and lactose <96%.
  • Low-shear blending resulted in superior lung delivery (FPF 62.6 ± 1.7%) compared to high-shear.
  • The scale-up strategy achieved consistent fine particle fraction and content uniformity across scales.

Abstract

Background/Objectives: Carrier-based dry powder inhaler (DPI) formulations remain the predominant platform for respiratory drug delivery. However, integrated development frameworks that align upstream particle engineering with downstream manufacturing are underdeveloped. This study aimed to develop a comprehensive Quality-by-Design (QbD) strategy that systematically connects jet milling, formulation design, and blending scale-up for carrier-based DPI products containing micronized crystalline active pharmaceutical ingredient (API). Methods: Phenytoin was selected as a model API to investigate process–formulation–performance relationships. Jet milling parameters were optimized to generate three distinct API particle size distributions while monitoring solid-state integrity. A design of experiments (DoE) evaluated the impact of API particle size and lactose fines level on aerodynamic performance (fine particle fraction, FPF) and powder processability (flowability, compressibility). High-shear and low-shear blending techniques were compared, and a novel V-shell blending scale-up methodology was developed based on maintaining particle fall velocity and total strain across multiple scales (one-, two-, and eight-quart). Results: Optimized jet milling produced inhalation grade API particles with controlled amorphous content localized to high-energy processes. DoE analysis identified a design space in which API Dv90 of 2.9–4.5 µm and coarse lactose <96% maximized both aerosolization and blend flowability. Low-shear blending achieved superior lung delivery (FPF 62.6 ± 1.7%) compared with high-shear micing (50.1 ± 1.5%). The particle-velocity-based scale up strategy produced statistically equivalent FPF and ED across all scales (p < 0.01), with content uniformity (RSD ≤ 5%) and variability comparable to commercial DPIs. Conclusions: This integrated QbD framework demonstrates that the co-optimization of particle size engineering, formulation composition, and blending dynamics is essential for achieving robust and scalable DPI products. The approach offers a material-sparing, efficient pathway from API characterization through commercial scale manufacturing and is broadly applicable to respiratory drug development.

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Cite This Study

Amorim et al. (2026) studied this question.

synapsesocial.com/papers/6996a798ecb39a600b3ed65chttps://doi.org/10.3390/pharmaceutics18020246
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Developing Dry Powder Inhaler Formulations2024 · 4 citations
  2. 2Design, development, and technical considerations for dry powder inhaler devices2024 · 15 citations
  3. 3Inhalation Performance Analysis of Dry Powder Inhaler2025
  4. 4Revealing Airflow–Particle Dynamics in Dry Powder Inhalers2026
  5. 5PHARMACEUTICAL CHARACTERISTICS OF DRY POWDER INHALER DESIGN: A COMPREHENSIVE REVIEW2025