Literature DB >> 27157508

Hyaluronic Acid Molecular Weight Determines Lung Clearance and Biodistribution after Instillation.

Christopher Kuehl, Ti Zhang, Lisa M Kaminskas1, Christopher J H Porter1, Neal M Davies2, Laird Forrest, Cory Berkland.   

Abstract

Hyaluronic acid (HA) has emerged as a versatile polymer for drug delivery. Multiple commercial products utilize HA, it can be obtained in a variety of molecular weights, and it offers chemical handles for cross-linkers, drugs, or imaging agents. Previous studies have investigated multiple administration routes, but the absorption, biodistribution, and pharmacokinetics of HA after delivery to the lung is relatively unknown. Here, pharmacokinetic parameters were investigated by delivering different molecular weights of HA (between 7 and 741 kDa) to the lungs of mice. HA was labeled with either a near-infrared dye or with iodine-125 conjugated to HA using a tyrosine linker. In initial studies, dye-labeled HA was instilled into the lungs and fluorescent images of organs were collected at 1, 8, and 24 h post administration. Data suggested longer lung persistence of higher molecular weight HA, but signal diminished for all molecular weights at 8 h. To better quantitate pharmacokinetic parameters, different molecular weights of iodine-125 labeled HA were instilled and organ radioactivity was determined after 1, 2, 4, 6, and 8 h. The data showed that, after instillation, the lungs contained the highest levels of HA, as expected, followed by the gastrointestinal tract. Smaller molecular weights of HA showed more rapid systemic distribution, while 67 and 215 kDa HA showed longer persistence in the lungs. Lung exposure appeared to be optimum in this size range due to the rapid absorption of <67 kDa HA and the poor lung penetration and mucociliary clearance of viscous solutions of HA > 215 kDa. The versatility of HA molecular weight and conjugation chemistries may, therefore, provide new opportunities to extend pulmonary drug exposure and potentially facilitate access to lymph nodes draining the pulmonary bed.

Entities:  

Keywords:  biodistribution; haluronic acid; pharmacokinetics; pulmonary delivery; pulmonary transport; radiolabeled

Mesh:

Substances:

Year:  2016        PMID: 27157508      PMCID: PMC5200957          DOI: 10.1021/acs.molpharmaceut.6b00069

Source DB:  PubMed          Journal:  Mol Pharm        ISSN: 1543-8384            Impact factor:   4.939


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Review 1.  Nanoparticle formulations in pulmonary drug delivery.

Authors:  Mark M Bailey; Cory J Berkland
Journal:  Med Res Rev       Date:  2009-01       Impact factor: 12.944

2.  Effect of increased interstitial fluid flux on fractional catabolic rate of high molecular weight [3H]hyaluronan injected in rabbit skin.

Authors:  R K Reed; U B Laurent; S King; J R Fraser; T C Laurent
Journal:  Acta Physiol Scand       Date:  1996-02

Review 3.  The structure and function of hyaluronan: An overview.

Authors:  T C Laurent; U B Laurent; J R Fraser
Journal:  Immunol Cell Biol       Date:  1996-04       Impact factor: 5.126

4.  Secondary and tertiary structures of hyaluronan in aqueous solution, investigated by rotary shadowing-electron microscopy and computer simulation. Hyaluronan is a very efficient network-forming polymer.

Authors:  J E Scott; C Cummings; A Brass; Y Chen
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5.  Removal rate of [3H]hyaluronan injected subcutaneously in rabbits.

Authors:  R K Reed; U B Laurent; J R Fraser; T C Laurent
Journal:  Am J Physiol       Date:  1990-08

Review 6.  Hyaluronic acid hydrogels for biomedical applications.

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9.  Seven percent hypertonic saline--0.1% hyaluronic acid in infants with mild-to-moderate bronchiolitis.

Authors:  Raffaella Nenna; Paola Papoff; Corrado Moretti; Daniela De Angelis; Massimo Battaglia; Stefano Papasso; Mariangela Bernabucci; Giulia Cangiano; Laura Petrarca; Serena Salvadei; Ambra Nicolai; Marianna Ferrara; Enea Bonci; Fabio Midulla
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10.  Catabolism of hyaluronan in rabbit skin takes place locally, in lymph nodes and liver.

Authors:  U B Laurent; L B Dahl; R K Reed
Journal:  Exp Physiol       Date:  1991-09       Impact factor: 2.969

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