Literature DB >> 12696977

Production and characterization of O/W emulsions containing cationic droplets stabilized by lecithin-chitosan membranes.

Satoshi Ogawa1, Eric A Decker, D Julian McClements.   

Abstract

Oil-in-water emulsions containing cationic droplets stabilized by lecithin-chitosan membranes were produced using a two-stage process. A primary emulsion was prepared by homogenizing 5 wt % corn oil with 95 wt % aqueous solution (1 wt % lecithin, 100 mM acetic acid, pH 3.0) using a high-pressure valve homogenizer. This emulsion was diluted with aqueous chitosan solutions to form secondary emulsions with varying compositions: 1 wt % corn oil, 0.2 wt % lecithin, 100 mM acetic acid, and 0-0.04 wt % chitosan (pH 3.0). The particle size distribution, particle charge, and creaming stability of the primary and secondary emulsions were measured. The electrical charge on the droplets increased from -49 to +54 mV as the chitosan concentration was increased from 0 to 0.04 wt %, which indicated that chitosan adsorbed to the droplet surfaces. The mean particle diameter of the emulsions increased dramatically and the emulsions became unstable to creaming when the chitosan concentration exceeded 0.008 wt %, which was attributed to charge neutralization and bridging flocculation effects. Sonication, blending, or homogenization could be used to disrupt flocs formed in secondary emulsions containing droplets with high positive charges, leading to the production of emulsions with relatively small particle diameters (approximately 1 microm). These emulsions had good stability to droplet aggregation at low pH (< or =5) and ionic strengths (<500 mM). The interfacial engineering technology utilized in this study could lead to the creation of food emulsions with improved stability to environmental stresses.

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Year:  2003        PMID: 12696977     DOI: 10.1021/jf020590f

Source DB:  PubMed          Journal:  J Agric Food Chem        ISSN: 0021-8561            Impact factor:   5.279


  8 in total

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2.  Immunoadjuvant chemotherapy of visceral leishmaniasis in hamsters using amphotericin B-encapsulated nanoemulsion template-based chitosan nanocapsules.

Authors:  Shalini Asthana; Anil K Jaiswal; Pramod K Gupta; Vivek K Pawar; Anuradha Dube; Manish K Chourasia
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3.  Potential biological fate of emulsion-based delivery systems: lipid particles nanolaminated with lactoferrin and β-lactoglobulin coatings.

Authors:  Tanushree Tokle; Yingyi Mao; David Julian McClements
Journal:  Pharm Res       Date:  2013-03-06       Impact factor: 4.200

4.  Layered nanoemulsions as mucoadhesive buccal systems for controlled delivery of oral cancer therapeutics.

Authors:  Amy Gavin; Jimmy Th Pham; Dawei Wang; Bill Brownlow; Tamer A Elbayoumi
Journal:  Int J Nanomedicine       Date:  2015-02-23

5.  Formation of Food Grade Microemulsion with Rice Glycosphingolipids to Enhance the Oral Absorption of Coenzyme Q10.

Authors:  Hiromasa Uchiyama; Jisoon Chae; Kazunori Kadota; Yuichi Tozuka
Journal:  Foods       Date:  2019-10-15

6.  Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment.

Authors:  Kifayatullah Shah; Lai Wah Chan; Tin Wui Wong
Journal:  Drug Deliv       Date:  2017-11       Impact factor: 6.419

7.  Spherical Granule Production from Micronized Saltwort (Salicornia herbacea) Powder as Salt Substitute.

Authors:  Myung-Gon Shin; Gyu-Hee Lee
Journal:  Prev Nutr Food Sci       Date:  2013-03

8.  Preparation, characterization, and evaluation of antitumor effect of Brucea javanica oil cationic nanoemulsions.

Authors:  Ting-Ting Liu; Li-Qiu Mu; Wei Dai; Chuan-Bang Wang; Xin-Yi Liu; Da-Xiong Xiang
Journal:  Int J Nanomedicine       Date:  2016-06-02
  8 in total

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