Literature DB >> 17516666

Polymer encapsulation within giant lipid vesicles.

Lisa M Dominak1, Christine D Keating.   

Abstract

We report encapsulation of polymers and small molecules within individual giant lipid vesicles (GVs; 3-80 microm), as determined by confocal fluorescence microscopy. Polymer-bound or free dyes were encapsulated within GVs by including these molecules in the aqueous solution during vesicle formation via gentle hydration. Encapsulation efficiencies of individual GVs (EE(ind)) were determined from the fluorescence intensity ratio inside vs outside the vesicle. EE(ind) varied considerably from vesicle to vesicle, with interior solute concentrations for GVs within the same batch ranging from much less than to slightly more than the initial concentration. The majority of GVs had high internal concentrations of polymer or small-molecule encapsulants equal to or slightly greater than the external concentration. EE(ind) decreased for high molecular weight polymers (e.g., dextran 500 000), but was relatively insensitive to the GV diameter, membrane composition, or incubation temperature in our experiments. Knowledge of EE(ind) is important for quantitative evaluation of reactions occurring within GVs (e.g., enzymatic processes) and for optimizing encapsulation conditions.

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Year:  2007        PMID: 17516666     DOI: 10.1021/la063687v

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  16 in total

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Review 2.  Spontaneous encapsulation and concentration of biological macromolecules in liposomes: an intriguing phenomenon and its relevance in origins of life.

Authors:  Tereza Pereira de Souza; Alfred Fahr; Pier Luigi Luisi; Pasquale Stano
Journal:  J Mol Evol       Date:  2014-11-22       Impact factor: 2.395

3.  Encapsulation of Nucleic Acids into Giant Unilamellar Vesicles by Freeze-Thaw: a Way Protocells May Form.

Authors:  Hai Qiao; Na Hu; Jin Bai; Lili Ren; Qing Liu; Liaoqiong Fang; Zhibiao Wang
Journal:  Orig Life Evol Biosph       Date:  2016-11-02       Impact factor: 1.950

4.  Liquid-liquid phase separation in artificial cells.

Authors:  Charles D Crowe; Christine D Keating
Journal:  Interface Focus       Date:  2018-08-17       Impact factor: 3.906

5.  Encapsulation of ferritin, ribosomes, and ribo-peptidic complexes inside liposomes: insights into the origin of metabolism.

Authors:  Tereza Pereira de Souza; Pasquale Stano; Frank Steiniger; Erica D'Aguanno; Emiliano Altamura; Alfred Fahr; Pier Luigi Luisi
Journal:  Orig Life Evol Biosph       Date:  2012-10-19       Impact factor: 1.950

6.  Selective cavitand-mediated endocytosis of targeted imaging agents into live cells.

Authors:  Yoo-Jin Ghang; Michael P Schramm; Fan Zhang; Roger A Acey; Clement N David; Emma H Wilson; Yinsheng Wang; Quan Cheng; Richard J Hooley
Journal:  J Am Chem Soc       Date:  2013-04-30       Impact factor: 15.419

7.  Gel-assisted formation of giant unilamellar vesicles.

Authors:  Andreas Weinberger; Feng-Ching Tsai; Gijsje H Koenderink; Thais F Schmidt; Rosângela Itri; Wolfgang Meier; Tatiana Schmatko; André Schröder; Carlos Marques
Journal:  Biophys J       Date:  2013-07-02       Impact factor: 4.033

8.  Polymeric crowding agents improve passive biomacromolecule encapsulation in lipid vesicles.

Authors:  Lisa M Dominak; Donna M Omiatek; Erica L Gundermann; Michael L Heien; Christine D Keating
Journal:  Langmuir       Date:  2010-08-17       Impact factor: 3.882

9.  Electrically addressable vesicles: tools for dielectrophoresis metrology.

Authors:  Salil P Desai; Michael D Vahey; Joel Voldman
Journal:  Langmuir       Date:  2009-04-09       Impact factor: 3.882

10.  Hybrid capillary-microfluidic device for the separation, lysis, and electrochemical detection of vesicles.

Authors:  Donna M Omiatek; Michael F Santillo; Michael L Heien; Andrew G Ewing
Journal:  Anal Chem       Date:  2009-03-15       Impact factor: 6.986

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