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May 20, 2026American Journal of Respiratory and Critical Care Medicine0 citations

A76-17 Physical Attributes and Tissue Deposition of Aerosolized Delivery of Exosome Particles via Inhaled Route in Spontaneous Breathing Mice

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IKI KhanSWS WangBEB E Erickson

Key Points

  • This study aims to characterize the physical properties and deposition patterns of aerosolized exosome particles in mouse lungs.
  • Utilized a Marple cascade impactor to analyze aerosol particle size and tissue deposition.
  • Nebulized platelet-derived exosomes using a vibrating mesh nebulizer at a flow rate of 2 L/min.
  • Assessed intrapulmonary distribution using confocal microscopy with DiR-labeled exosomes.
  • Achieved 3.5 mg of aerosol deposition, representing 13.6% of the total nebulized exosome mass.
  • 74% of aerosolized particles were ≤1µm and deposited in deep lung regions.
  • Confocal imaging confirmed distribution of exosomes deep in the alveoli of all lung lobes.

Abstract

Abstract Introduction The inhalation of aerosolized therapeutics is a promising strategy for the targeted delivery of drugs and biologics to the lungs. We have previously demonstrated the efficacy and feasibility of nebulized exosomes using a platelet-derived exosome product (PEP: Rion, Inc.), which significantly attenuated emphysema in a murine model (PMID: 38325750). However, the PEP aerosol’s physical properties—such as size, tissue deposition, anatomic location, and stability remain incompletely characterized. To address this, we utilized a cascade impactor to define aerosol particle size and deposition patterns and employed immunofluorescence staining to assess the regional and anatomic localization of nebulized PEP within the murine lung. Methods PEP particle size and tissue deposition were determined by passing the aerosol through a Marple cascade impactor (CI, DSI), which was connected to an inhalation tower (DSI). PEP aerosols were generated by a vibrating mesh nebulizer (Aerogen, Cat No AG-AL1100) at a controlled velocity and humidity and delivered to the CI at a flow rate of 2L/min. Aerosols were separated by size and allowed to deposit at the corresponding stages as they passed through the pinholes of the stage, by design. The stages were weighed after nebulization, and the percentage of aerosol deposition was calculated to simulate the human respiratory tree, according to the manufacturer’s specifications. In parallel, fluorescence DiR-labeled PEP was nebulized to spontaneously breathing mice, and confocal microscopy was used to determine intrapulmonary distribution. Results A total of 2.25 mL of PEP reconstituted in 0.9% normal saline (11.4 mg/mL final concentration) was nebulized for 35 minutes at a flow rate of 2 L/min, yielding 3.5 mg of total aerosol deposition, which is 13.6% of the total PEP mass (25.65mg) being nebulized, across the CI stages. Of this, 74% of the aerosolized particles with a particle size ≤ 1µm and deposited in Stages 7, 8 & F, corresponding to the deep regions of the lungs, specifically regions beyond the alveolar ducts and within the alveoli. In vivo 3D confocal imaging corroborated these findings, revealing abundant DiR-labeled PEP deep into the alveolar space within the peripheral regions of all lung lobes. Conclusion The study result demonstrates the feasibility and capability of delivering aerosolized PEP deeply into the alveolar regions of the lung at the given pressure, humidity, flow rate and nebulizer settings. This study establishes a methodological framework for characterizing and optimizing aerosolized exosome therapeutics for precise, region-specific delivery within the respiratory tract. This abstract is funded by: Department of Defense, Mayo Clinic Funding

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Khan et al. (2026) studied this question.

synapsesocial.com/papers/6a0d5114f03e14405aa9d5dchttps://doi.org/10.1093/ajrccm/aamag162.5361
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