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Degree of Unsaturation and Backbone Orientation of Amphiphilic Macromolecules Influence Local Lipid Properties in Large Unilamellar Vesicles.
Moretti, Alysha; Zhang, Bin; Lee, Bernice; Dutt, Meenakshi; Uhrich, Kathryn E.
Afiliación
  • Moretti A; Department of Chemistry and Chemical Biology, Rutgers University , 610 Taylor Road, Piscataway, New Jersey 08854, United States.
  • Zhang B; Department of Chemical Engineering Rutgers University , 98 Brett Road, Piscataway, New Jersey 08854, United States.
  • Lee B; Department of Pharmacy, Rutgers University , 160 Frelinhuysen Road, Piscataway, New Jersey 08854, United States.
  • Dutt M; Department of Chemical Engineering Rutgers University , 98 Brett Road, Piscataway, New Jersey 08854, United States.
  • Uhrich KE; Department of Chemistry and Chemical Biology, Rutgers University , 610 Taylor Road, Piscataway, New Jersey 08854, United States.
Langmuir ; 33(51): 14663-14673, 2017 12 26.
Article en En | MEDLINE | ID: mdl-29144759
ABSTRACT
Liposomes have become increasingly common in the delivery of bioactive agents due to their ability to encapsulate hydrophobic and hydrophilic drugs with excellent biocompatibility. While commercial liposome formulations improve bioavailability of otherwise quickly eliminated or insoluble drugs, tailoring formulation properties for specific uses has become a focus of liposome research. Here, we report the design, synthesis, and characterization of two series of amphiphilic macromolecules (AMs), consisting of acylated polyol backbones conjugated to poly(ethylene glycol) (PEG) that can serve as the sole additives to stabilize and control hydrophilic molecule release rates from distearoylphosphatidylcholine (DSPC)-based liposomes. As compared to DSPC alone, all AMs enable liposome formation and stabilize their colloidal properties at low incorporation ratios, and the AM's degree of unsaturation and hydrophobe conformation have profound impacts on stability duration. The AM's chemical structures, particularly hydrophobe unsaturation, also impact the rate of hydrophilic drug release. Course-grained molecular dynamics simulations were utilized to better understand the influence of AM structure on lipid properties and potential liposomal stabilization. Results indicate that both hydrophobic domain structure and PEG density can be utilized to fine-tune liposome properties for the desired application. Collectively, AMs demonstrate the potential to simultaneously stabilize and control the release profile of hydrophilic cargo.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Liposomas Unilamelares Idioma: En Revista: Langmuir Asunto de la revista: QUIMICA Año: 2017 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Liposomas Unilamelares Idioma: En Revista: Langmuir Asunto de la revista: QUIMICA Año: 2017 Tipo del documento: Article País de afiliación: Estados Unidos
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