219
Views
3
CrossRef citations to date
0
Altmetric
Research Article

The influence of bile salts on the response of liposomes to ultrasound

, &
Pages 87-95 | Received 13 Nov 2014, Accepted 11 Feb 2015, Published online: 31 Mar 2015

References

  • Almgren M. (2000). Mixed micelles and other structures in the solubilization of bilayer lipid membranes by surfactants. Biochim Biophys Acta 1508:146–63
  • Apfel RE, Holland CK. (1991). Gauging the likelihood of cavitation from short-pulse, low-duty cycle diagnostic ultrasound. Ultrasound Med Biol 17:179–85
  • Armstrong MJ, Carey MC. (1982). The hydrophobic-hydrophilic balance of bile salts: inverse correlation between reverse-phase high performance liquid chromatographic mobilities and micellar cholesterol-solubilizing capacities. J Lipid Res 23:70–80
  • Boekhoven J, van Rijn P, van Esch JH. (2012). Self-assembly of facial amphiphiles in water. In: Steed JW, Gale PA, eds. Supramolecular chemistry. UK: John Wiley & Sons, Ltd
  • Cevc G, Gebauer D, Stieber J, et al. (1998). Ultraflexible vesicles, transfersomes, have an extremely low pore penetration resistance and transport therapeutic amounts of insulin across the intact mammalian skin. Biochim Biophys Acta 1368:201–15
  • Dähnke S, Swamy KM, Keil FJ. (1999). A comparative study on the modeling of sound pressure field distributions in a sonoreactor with experimental investigation. Ultrason Sonochem 6:221–6
  • Dai Y, Zhou R, Liu L, et al. (2013). Liposomes containing bile salts as novel ocular delivery systems for tacrolimus (FK506): in vitro characterization and improved corneal permeation. Int J Nanomed 8:1921–33
  • Davis JH. (1983). The description of membrane lipid conformation, order and dynamics by 2H-NMR. Biochim Biophys Acta 737:117–71
  • Dong AW, Pascual-Izarra C, Dong YD, et al. (2008). Positron annihilation lifetime spectroscopy (PALS) and small angle X-ray scattering (SAXS) of self-assembled amphiphiles. Proceedings of SPIE, The International Society for Optical Engineering, Strasbourg, France
  • Drinkwater BW, Wilcox PD. (2006). Ultrasonic arrays for non-destructive evaluation: a review. NDT&E Int 39:525–41
  • Enden G, Schroeder A. (2009). A mathematical model of drug release from liposomes by low frequency ultrasound. Ann Biomed Eng 37:2640–5
  • Evjen JT. (2011). Sonosensitive liposomes for ultrasound-mediated drug delivery [dissertation]. Department of Pharmacy, University of Tromsø
  • Evjen TJ, Hupfeld S, Barnert S, et al. (2013). Physicochemical characterization of liposomes after ultrasound exposure – mechanisms of drug release. J Pharm Biomed Anal 78–79:118–22
  • Evjen TJ, Nilssen EA, Barnert S, et al. (2011). Ultrasound-mediated destabilization and drug release from liposomes comprising dioleoylphosphatidylethanolamine. Eur J Pharm Sci 42:380–6
  • Evjen TJ, Nilssen EA, Rögnvaldsson S, et al. (2010). Distearoylphosphatidylethanolamine-based liposomes for ultrasound-mediated drug delivery. Eur J Pharm Biopharm 75:327–33
  • Funasaki N, Fukuba M, Hattori T, et al. (2006). Micelle formation of bile salts and zwitterionic derivative as studied by two-dimensional NMR spectroscopy. Chem Phys Lipids 142:43–57
  • Heerklotz, H, Seelig J. (2000). Correlation of membrane/water partition coefficients of detergents with the critical micelle concentration. Biophys J 78:2435–40
  • Hu S, Niu M, Hu F, et al. (2013). Integrity and stability of oral liposomes containing bile salts studied in simulated and ex vivo gastrointestinal media. Int J Pharm 441:693–700
  • Israelachvili JN, Mitchell DJ. (1975). A model for the packing of lipids in bilayer membranes. Biochim Biophys Acta 389:13–19
  • Johnsson M, Bergstrand N. (2004). Phase behavior of DOPE/TritonX100 (reduced) in dilute aqueous solution: aggregate structure and pH-dependence. Colloids Surf 34:69–76
  • Johnsson M, Edwards K. (2001). Phase behavior and aggregate structure in mixtures of dioleoylphosphatidylethanolamine and poly(ethylene glycol)-lipids. Biophys J 80:313–23
  • Kokkona M, Kallinteri P, Fatouros D, et al. (2000). Stability of SUV liposomes in the presence of cholate salts and pancreatic lipases: effect of lipid composition. Eur J Pharm Sci 9:245–52
  • Komura S, Andelman D. (2014). Physical aspects of heterogeneities in multi-component lipid membranes. Adv Colloid Interface Sci 208:34–46
  • Liu TY, Huang TC. (2011). A novel drug vehicle capable of ultrasound-triggered release with MRI functions. Acta Biomater 7:3927–34
  • Mason TJ, Lorimer JP, Bates DM, et al. (1994). Dosimetry in sonochemistry: the use of aqueous terephthalate ion as a fluorescence monitor. Ultrason Sonochem 1:S91–5
  • Matsuoka K, Moroi Y. (2002). Micelle formation of sodium deoxycholate and sodium ursodeoxycholate (Part 1). Biochim Biophys Acta 1580:189–99
  • Mohapatra M, Mishra AK. (2011). Effect of submicellar concentrations of conjugated and unconjugated bile salts on the lipid bilayer membrane. Langmuir 27:13461–7
  • Needham D, Anyarambhatla G, Kong G, et al. (2000). A new temperature-sensitive liposome for use with mild hyperthermia: characterization and testing in a human tumor xenograft model. Cancer Res 60:1197–201
  • Ninomiya K, Kawabata S, Tashita H, et al. (2014). Ultrasound-mediated drug delivery using liposomes modified with a thermosensitive polymer. Ultrason Sonochem 21:310–16
  • OConnor CJ, Wallace RG, Iwamoto K, et al. (1985). Bile salt damage of egg phosphatidylcholine liposomes. Biochim Biophys Acta 817:95–102
  • Pandit SA, Vasudevan S, Chiu SW, et al. (2004). Sphingomyelin-cholesterol domains in phospholipid membranes: atomistic simulation. Biophys J 87:1092–100
  • Roda A, Minutello A, Angellotti MA, et al. (1990). Bile acid structure-activity relationship: evaluation of bile acid lipophilicity using 1-octanol/water partition coefficient and reverse phase HPLC. J Lipid Res 31:1433–43
  • Rodriguez-Devora JI, Ambure S, Shi ZD, et al. (2012). Physically facilitating drug-delivery systems. Therap Deliv 3:125–39
  • Schroeder A, Kost J, Barenholz Y. (2009). Ultrasound, liposomes, and drug delivery: principles for using ultrasound to control the release of drugs from liposomes. Chem Phys Lipids 162:1–16
  • Sharma R, Long A, Gilmer JF. (2011). Advances in bile acid medicinal chemistry. Curr Med Chem 18:4029–52
  • Shaw R, Elliott WH, Barisas BG. (1991). Estimation of critical micelle concentrations of bile acids by reversed-phase high performance liquid chromatography. Mikrochim Acta 105:137–45
  • Siegel RA, Rathbone MJ. (2012). Overview of controlled release mechanisms. In: Siepmann J, Siegel RA, Rathbone MJ, eds. Fundamentals and applications of controlled release drug delivery. USA: Springer, 19–43
  • Somaglino L, Bouchoux G, Mestas JL, et al. (2011). Validation of an acoustic cavitation dose with hydroxyl radical production generated by inertial cavitation in pulsed mode: application to in vitro drug release from liposomes. Ultrason Sonochem 18:577–88
  • Stepniewski M, Pasenkiewicz-Gierula M, Rog T, et al. (2011). Study of PEGylated lipid layers as a model for PEGylated liposome surfaces: molecular dynamics simulation and langmuir monolayer studies. Langmuir 27:7788–98
  • Strebhardt K, Ullrich A. (2008). Paul Ehrlichs magic bullet concept: 100 years of progress. Nat Rev Cancer 8:473–80
  • Uchino K. (1998). Piezoelectric ultrasonic motors: overview. Smart Mater Struct 7:273–85
  • Wüstner D, Herrmann A, Müller P. (2000). Head group-independent interaction of phospholipids with bile salts: a fluorescence and EPR study. J Lipid Res 41:395–404
  • Yang L. (2010). Effect of bile salts on drug delivery to the brain [dissertation]. School of Pharmacy. Dunedin, University of Otago
  • Yang L, Fawcett JP, Østergaard J, et al. (2012). Mechanistic studies of the effect of bile salts on rhodamine 123 uptake into RBE4 cells. Mol Pharm 9:29–36
  • Yang L, Feng F, Paul Fawcett J, et al. (2015). Kinetic and equilibrium studies of bile salt–liposome interactions. J Liposome Res 25:58–66
  • Yang L, Zhang H, Mikov M, et al. (2009). Physicochemical and biological characterization of monoketocholic acid: a novel permeability enhancer. Mol Pharm 6:448–56
  • Yatvin MB, Weinstein JN, Dennis WH, et al. (1978). Design of liposomes for enhanced local release of drugs by hyperthermia. Science 202:1290–3

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.