Literature DB >> 11741228

Light scattering investigations on dilute nonionic oil-in-water microemulsions.

W Warisnoicharoen1, A B Lansley, M J Lawrence.   

Abstract

Dilute 3-component nonionic oil-in-water microemulsions formulated with either a polyoxyethylene surfactant (C18:1E10 or C12E10) or the alkylamine-N-oxide surfactant, DDAO (C12AO), and containing either a triglyceride or an ethyl ester oil have been examined using dynamic and static light-scattering techniques. Analysis of the results showed distinct differences in the tested oil's mode of incorporation into the microemulsion droplets, with both the molecular volume of the oil and the hydrophobic chain length of the surfactant being important. For example, microemulsions formulated by C18:1E10 and containing one of the larger molecular volume oils (that is, either a triglyceride, Miglyol 812, or soybean oil) or the ethyl ester of fatty acid oil, ethyl oleate, exhibited first a decrease and then an increase in hydrodynamic size and surfactant aggregation number, suggesting that the asymmetric C18:1E10 micelles became spherical upon the addition of a small amount of oil and grew thereafter because of further oil being incorporated into the core of the spherical microemulsion droplet. A similar conclusion of sphericity could not be drawn for microemulsions stabilized by C18:1E10 and containing one of the oils smaller in molecular volume (namely tributyrin, ethyl butyrate, or ethyl caprylate) where neither the aggregation number nor the hydrodynamic radius changed much upon the addition of oil. This result suggested that these oils were preferentially located in the interfacial surfactant monolayer, behaving in much the same way as a cosurfactant. A different trend of results, however, was seen for microemulsions prepared using C12E10 and C12AO, most likely because these surfactants produced approximately spherical micelles. In this case, the microemulsions containing the oils larger in molecular volume tended to exhibit an increase in surfactant aggregation number and hydrodynamic size, suggesting the growth of spherical micelles, while the smaller oils (in particular ethyl butyrate) caused a significant decrease in surfactant aggregation number incompatible with their being incorporated into the centre of the droplet, suggesting that the oils were being located in the interfacial surfactant monolayer. These results suggest that the various oils are incorporated into the microemulsions in very different ways.

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Year:  2000        PMID: 11741228      PMCID: PMC2751026          DOI: 10.1208/ps020212

Source DB:  PubMed          Journal:  AAPS PharmSci        ISSN: 1522-1059


  5 in total

1.  Nonionic oil-in-water microemulsions: the effect of oil type on phase behaviour.

Authors:  W Warisnoicharoen; A B Lansley; M J Lawrence
Journal:  Int J Pharm       Date:  2000-03-30       Impact factor: 5.875

2.  A comparison of the incorporation of model steroids into non-ionic micellar and microemulsion systems.

Authors:  C Malcolmson; M J Lawrence
Journal:  J Pharm Pharmacol       Date:  1993-02       Impact factor: 3.765

3.  The influence of heptane-1,2,3-triol on the size and shape of LDAO micelles. Implications for the crystallisation of membrane proteins.

Authors:  P A Timmins; J Hauk; T Wacker; W Welte
Journal:  FEBS Lett       Date:  1991-03-11       Impact factor: 4.124

4.  Effect of oil on the level of solubilization of testosterone propionate into nonionic oil-in-water microemulsions.

Authors:  C Malcolmson; C Satra; S Kantaria; A Sidhu; M J Lawrence
Journal:  J Pharm Sci       Date:  1998-01       Impact factor: 3.534

5.  Aggregation and surface properties of synthetic double-chain non-ionic surfactants in aqueous solution.

Authors:  M J Lawrence; S M Lawrence; D J Barlow
Journal:  J Pharm Pharmacol       Date:  1997-06       Impact factor: 3.765

  5 in total
  7 in total

1.  Formulation development and optimization using nanoemulsion technique: a technical note.

Authors:  Sheikh Shafiq-un-Nabi; Faiyaz Shakeel; Sushma Talegaonkar; Javed Ali; Sanjula Baboota; Alka Ahuja; Roop K Khar; Mushir Ali
Journal:  AAPS PharmSciTech       Date:  2007-04-06       Impact factor: 3.246

2.  Effect of lipolysis on drug release from self-microemulsifying drug delivery systems (SMEDDS) with different core/shell drug location.

Authors:  Jianbin Zhang; Yan Lv; Shan Zhao; Bing Wang; Mingqian Tan; Hongguo Xie; Guojun Lv; Xiaojun Ma
Journal:  AAPS PharmSciTech       Date:  2014-02-20       Impact factor: 3.246

3.  Modulation of plasma membrane Ca2+-ATPase by neutral phospholipids: effect of the micelle-vesicle transition and the bilayer thickness.

Authors:  María Florencia Pignataro; Martín M Dodes-Traian; F Luis González-Flecha; Mauricio Sica; Irene C Mangialavori; Juan Pablo F C Rossi
Journal:  J Biol Chem       Date:  2015-01-20       Impact factor: 5.157

4.  Formulation Development and Toxicity Assessment of Triacetin Mediated Nanoemulsions as Novel Delivery Systems for Rapamycin.

Authors:  Hamideh Sobhani; Parastoo Tarighi; Seyed Nasser Ostad; Alireza Shafaati; Nastaran Nafissi-Varcheh; Reza Aboofazeli
Journal:  Iran J Pharm Res       Date:  2015       Impact factor: 1.696

5.  Development of a Microemulsion Formulation for Antimicrobial SecA Inhibitors.

Authors:  Jiahuai Hu; Nagaraju Akula; Nian Wang
Journal:  PLoS One       Date:  2016-03-10       Impact factor: 3.240

6.  Rapamycin-Loaded, CapryolTM 90 and Oleic Acid Mediated Nanoemulsions: Formulation Development, Characterization and Toxicity Assessment.

Authors:  Hamideh Sobhani; Parastoo Tarighi; Seyed Nasser Ostad; Alireza Shafaati; Nastaran Nafissi-Varcheh; Reza Aboofazeli
Journal:  Iran J Pharm Res       Date:  2018       Impact factor: 1.696

Review 7.  An Overview of Micro- and Nanoemulsions as Vehicles for Essential Oils: Formulation, Preparation and Stability.

Authors:  Lucia Pavoni; Diego Romano Perinelli; Giulia Bonacucina; Marco Cespi; Giovanni Filippo Palmieri
Journal:  Nanomaterials (Basel)       Date:  2020-01-12       Impact factor: 5.076

  7 in total

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