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Quantitative membrane loading of polymer vesicles.

Publication ,  Journal Article
Ghoroghchian, PP; Lin, JJ; Brannan, AK; Frail, PR; Bates, FS; Therien, MJ; Hammer, DA
Published in: Soft matter
October 2006

We utilize a series of structurally homologous, multi-porphyrin-based, fluorophores (PBFs) in order to explore the capacity of polymer vesicles (polymersomes) to stably incorporate large hydrophobic molecules, non-covalently within their thick lamellar membranes. Through aqueous hydration of dry, uniform thin-films of amphiphilic polymer and PBF species deposited on Teflon, self-assembled polymersomes are readily generated incorporating the hydrophobic fluorophores in prescribed molar ratios within their membranes. The size-dependent spectral properties of the PBFs allow for ready optical verification ( steady-state absorption and emission spectroscopy) of the extent of vesicle membrane loading and enable delineation of intermembranous molecular interactions. The resultant effects of PBF membrane-loading on polymersome thermodynamic and mechanical stability are further assessed by cryogenic transmission electron microscopy (cryo-TEM) and micropipet aspiration, respectively. We demonstrate that polymersomes can be loaded at up to 10 mol/wt% concentrations, with hydrophobic molecules that possess sizes comparable to those of large pharmaceutical conjugates ( ranging 1.4-5.4 nm in length and = 0.7-5.4 kg mol), without significantly compromising the robust thermodynamic and mechanical stabilities of these synthetic vesicle assemblies. Due to membrane incorporation, hydrophobic encapsulants are effectively prevented from self-aggregation, able to be highly concentrated in aqueous solution, and successfully shielded from deleterious environmental interactions. Together, these studies present a generalized paradigm for the generation of complex multi-functional materials that combine both hydrophilic and hydrophobic agents, in mesoscopic dimensions, through cooperative self-assembly.

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Published In

Soft matter

DOI

EISSN

1744-6848

ISSN

1744-683X

Publication Date

October 2006

Volume

2

Issue

11

Start / End Page

973 / 980

Related Subject Headings

  • Chemical Physics
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences
 

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Ghoroghchian, P. P., Lin, J. J., Brannan, A. K., Frail, P. R., Bates, F. S., Therien, M. J., & Hammer, D. A. (2006). Quantitative membrane loading of polymer vesicles. Soft Matter, 2(11), 973–980. https://doi.org/10.1039/b604212k
Ghoroghchian, P Peter, John J. Lin, Aaron K. Brannan, Paul R. Frail, Frank S. Bates, Michael J. Therien, and Daniel A. Hammer. “Quantitative membrane loading of polymer vesicles.Soft Matter 2, no. 11 (October 2006): 973–80. https://doi.org/10.1039/b604212k.
Ghoroghchian PP, Lin JJ, Brannan AK, Frail PR, Bates FS, Therien MJ, et al. Quantitative membrane loading of polymer vesicles. Soft matter. 2006 Oct;2(11):973–80.
Ghoroghchian, P. Peter, et al. “Quantitative membrane loading of polymer vesicles.Soft Matter, vol. 2, no. 11, Oct. 2006, pp. 973–80. Epmc, doi:10.1039/b604212k.
Ghoroghchian PP, Lin JJ, Brannan AK, Frail PR, Bates FS, Therien MJ, Hammer DA. Quantitative membrane loading of polymer vesicles. Soft matter. 2006 Oct;2(11):973–980.
Journal cover image

Published In

Soft matter

DOI

EISSN

1744-6848

ISSN

1744-683X

Publication Date

October 2006

Volume

2

Issue

11

Start / End Page

973 / 980

Related Subject Headings

  • Chemical Physics
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences