Literature DB >> 25297714

Pulmonary biodistribution and cellular uptake of intranasally administered monodisperse particles.

Timothy M Brenza1, Latrisha K Petersen, Yanjie Zhang, Lucas M Huntimer, Amanda E Ramer-Tait, Jesse M Hostetter, Michael J Wannemuehler, Balaji Narasimhan.   

Abstract

PURPOSE: For the rational design of nanovaccines against respiratory pathogens, careful selection of optimal particle size and chemistry is paramount. This work investigates the impact of these properties on the deposition, biodistribution, and cellular interactions of nanoparticles within the lungs.
METHOD: In this work, biodegradable poly(sebacic anhydride) (poly(SA)) nanoparticles of multiple sizes were synthesized with narrow particle size distributions. The lung deposition and retention as well as the internalization by phagocytic cells of these particles were compared to that of non-degradable monodisperse polystyrene nanoparticles of similar sizes.
RESULTS: The initial deposition of intranasally administered particles in the lungs was dependent on primary particle size, with maximal deposition occurring for the 360-470 nm particles, regardless of chemistry. Over time, both particle size and chemistry affected the frequency of particle-positive cells and the specific cell types taking up particles. The biodegradable poly(SA) particles associated more closely with phagocytic cells and the dynamics of this association impacted the clearance of these particles from the lung.
CONCLUSIONS: The findings reported herein indicate that both size and chemistry control the fate of intranasally administered particles and that the dynamics of particle association with phagocytic cells in the lungs provide important insights for the rational design of pulmonary vaccine delivery vehicles.

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Year:  2014        PMID: 25297714     DOI: 10.1007/s11095-014-1540-y

Source DB:  PubMed          Journal:  Pharm Res        ISSN: 0724-8741            Impact factor:   4.200


  58 in total

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3.  Role of particle size in phagocytosis of polymeric microspheres.

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Review 5.  Nanoparticle vaccines against respiratory syncytial virus.

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6.  Vectorization by nanoparticles decreases the overall toxicity of airborne pollutants.

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7.  Liposomal nanoparticle-based conserved peptide influenza vaccine and monosodium urate crystal adjuvant elicit protective immune response in pigs.

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8.  Encapsulated Carbenoxolone Reduces Lung Metastases.

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9.  A single dose polyanhydride-based nanovaccine against paratuberculosis infection.

Authors:  Akanksha Thukral; Kathleen Ross; Chungyi Hansen; Yashdeep Phanse; Balaji Narasimhan; Howard Steinberg; Adel M Talaat
Journal:  NPJ Vaccines       Date:  2020-02-14       Impact factor: 7.344

Review 10.  Respiratory nanoparticle-based vaccines and challenges associated with animal models and translation.

Authors:  Gourapura J Renukaradhya; Balaji Narasimhan; Surya K Mallapragada
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  10 in total

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