90
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Prognosticating the effect of temperature and pH parameters on size and stability of the nanoliposome system based on thermodynamic modeling

, , , , , , , , & show all
Pages 392-409 | Received 18 Aug 2021, Accepted 28 Aug 2022, Published online: 12 May 2023

References

  • Abreu, A.S., et al., 2016. Interaction of fluorescent quinolin-2-one and coumarin derivatives including dipeptides with lipid bilayers. RSC advances, 6 (76), 72141–72148.
  • Aisha, A.F., Majid, A.M.S.A., and Ismail, Z., 2014. Preparation and characterization of nano liposomes of Orthosiphon stamineusethanolic extract in soybean phospholipids. BMC biotechnology, 14 (1), 1–11.
  • Aleandri, S., et al., 2013. Fusion of gemini based cationic liposomes with cell membrane models: implications for their biological activity. Biochimica et Biophysica Acta, 1828 (2), 382–390.
  • Barba, A., et al., 2014. Ultrasonic energy in liposome production: process modelling and size calculation. Soft matter, 10 (15), 2574–2581.
  • Barnadas-Rodríguez, R., and Sabes, M., 2001. Factors involved in the production of liposomes with a high-pressure homogenizer. International journal of pharmaceutics, 213 (1-2), 175–186.
  • Berger, N., et al., 2001. Filter extrusion of liposomes using different devices: comparison of liposome size, encapsulation efficiency, and process characteristics. International journal of pharmaceutics, 223 (1-2), 55–68.
  • Chibowski, E., and Szcześ, A., 2016. Zeta potential and surface charge of DPPC and DOPC liposomes in the presence of PLC enzyme. Adsorption, 22 (4-6), 755–765.
  • Daghastanli, K.R., et al., 2004. Lipid composition-dependent incorporation of multiple membrane proteins into liposomes. Colloids and Surfaces. B, Biointerfaces, 36 (3-4), 127–137.
  • Daraee, H., et al., 2016. Application of liposomes in medicine and drug delivery. Artificial cells, nanomedicine, and biotechnology, 44 (1), 381–391.
  • Dehghan, A., Pastor, K.A., and Shi, A.C., 2015. Line tension of multicomponent bilayer membranes. Physical review. E, statistical, nonlinear, and soft matter physics, 91 (2), 022713.
  • Domingo, J.L., and Gómez, M., 2016. Vanadium compounds for the treatment of human diabetes mellitus: a scientific curiosity? A review of thirty years of research. Food and chemical toxicology : an international journal published for the British industrial biological research association, 95, 137–141.
  • Draffehn, S.R., et al., 2016. Insight into the modification of polymeric micellar and liposomal nanocarriers by fluorescein-labeled lipids and uptake-mediating lipopeptides. Langmuir : The ACS Journal of Surfaces and Colloids, 32 (27), 6928–6939.
  • Graca, J., et al., 2014. Amperometric glucose biosensor based on layer-by-layer films of microperoxidase-11 and liposome-encapsulated glucose oxidase. Bioelectrochemistry (Amsterdam, Netherlands), 96, 37–42.
  • Guo, H., and Kim, J.-C., 2015. Upper critical solution temperature behavior of cinnamic acid and polyethyleneimine mixture and its effect on temperature-dependent release of liposome. International Journal of Pharmaceutics, 494 (1), 172–179.
  • Hammouda, B., 2013. Temperature effect on the nanostructure of SDS micelles in water. Journal of research of the national institute of standards and technology, 118, 151–167.
  • Israelachvili, J. N., 2011. Intermolecular and surface forces, Academic press.
  • Jiang, L., et al., 2015. Overcoming drug-resistant lung cancer by paclitaxel loaded dual-functional liposomes with mitochondria targeting and pH-response. Biomaterials, 52, 126–139.
  • Khanniri, E., et al., 2016. Application of liposomes in some dairy products. Critical reviews in food science and nutrition, 56 (3), 484–493.
  • Kunastitchai, S., et al., 2006. Application of aerosol solvent extraction system (ASES) process for preparation of liposomes in a dry and reconstitutable form. International journal of pharmaceutics, 316 (1-2), 93–101.
  • Lasch, J., et al., 1990. Interaction of Triton X-100 and octyl glucoside with liposomal membranes at sublytic and lytic concentrations. Spectroscopic studies. Biochimica et Biophysica Acta, 1022 (2), 171–180.
  • Lasič, D.D., 1987. A general model of vesicle formation. Journal of theoretical biology, 124 (1), 35–41.
  • Lewicki, S., et al., 2017. Physical properties and biological interactions of liposomes developed as a drug carrier in the field of regenerative medicine. Journal of liposome research, 27 (2), 90–98.
  • Lin, Y.M., et al., 2007. Measurement of the second virial coefficient of DPPC-and DPPG-liposomes by isothermal titration calorimetry. Journal of the Chinese institute of chemical engineers, 38 (2), 103–106.
  • Lindgren, G., et al., 2016. Wound‐healing factors can prime head and neck cancer cells to increase their tumor‐forming capacity. The laryngoscope, 126 (6), E213–E217.
  • Liu, W., et al., 2013. Improved physical and in vitro digestion stability of a polyelectrolyte delivery system based on layer-by-layer self-assembly alginate–chitosan-coated nanoliposomes. Journal of agricultural and food chemistry, 61 (17), 4133–4144.
  • Maltseva, E., et al., 2006. Ionization state and structure of L-1, 2-dipalmitoylphosphatidylglycerol monolayers at the liquid/air interface. The journal of physical chemistry. B, 110 (2), 919–926.
  • Manca, M.L., et al., 2015. Development of curcumin loaded sodium hyaluronate immobilized vesicles (hyalurosomes) and their potential on skin inflammation and wound restoring. Biomaterials, 71, 100–109.
  • Mortazavi, S.M., et al., 2007. Preparation of liposomal gene therapy vectors by a scalable method without using volatile solvents or detergents. Journal of biotechnology, 129 (4), 604–613.
  • Mura, P., et al., 2007. Development, characterization and in vivo evaluation of benzocaine-loaded liposomes. European journal of pharmaceutics and biopharmaceutics : official journal of arbeitsgemeinschaft fur pharmazeutische verfahrenstechnik e.V, 67 (1), 86–95.
  • Nii, T., et al., 2003. Factors affecting physicochemical properties of liposomes prepared with hydrogenated purified egg yolk lecithins by the microencapsulation vesicle method. Colloids and surfaces B: biointerfaces, 27 (4), 323–332.
  • Padamwar, M.N., and Pokharkar, V.B., 2006. Development of vitamin loaded topical liposomal formulation using factorial design approach: drug deposition and stability. International journal of pharmaceutics, 320 (1-2), 37–44.
  • Ping, Z., et al., 2016. Anti-hepatoma activity of the stiff branched β-d-glucan and effects of molecular weight. Journal of materials chemistry. B, 4 (26), 4565–4573.
  • Quemeneur, F., et al., 2007. Large and giant vesicles “decorated” with chitosan: Effects of pH, salt or glucose stress, and surface adhesion. Biomacromolecules, 8 (8), 2512–2519.
  • Quemeneur, F., et al., 2010. Decoration of lipid vesicles by polyelectrolytes: mechanism and structure. Soft matter., 6 (18), 4471–4481.
  • Roy, B., et al., 2016. Influence of lipid composition, pH, and temperature on physicochemical properties of liposomes with curcumin as model drug. Journal of oleo science, 65 (5), 399–411.
  • Sabín, J., et al., 2012. Double charge inversion in polyethylenimine-decorated liposomes. Langmuir : The ACS journal of surfaces and colloids, 28 (28), 10534–10542.
  • Sainakham, M., et al., 2016. Potent in vivo anticancer activity and stability of liposomes encapsulated with semi-purified Job’s tear (Coix lacryma-jobi Linn.) extracts on human colon adenocarcinoma (HT-29) xenografted mice. Drug delivery, 23 (9), 3399–3407.
  • Sundar, S., and Tirumkudulu, M. S., 2015. Novel method for synthesizing monodisperse dispersion of nanometer liposomes. Nanoscale and Microscale Phenomena. 3–16. Springer.
  • Tavakoli, S., et al., 2020a. Excess iron ion reduction in a thalassemia model using silver nanoparticles modified by the tannin fraction of Myrtus communis extact. Nanomedicine research journal, 5, 355–363.
  • Tavakoli, S., et al., 2020b. Safety evaluation of nano iron zero valente green synthesized: a comparative study. Nanomedicine research journal, 5, 160–170.
  • Wang, M., and Kim, J.-C., 2014. Light-and temperature-responsive liposomes incorporating cinnamoyl Pluronic F127. International journal of pharmaceutics, 468 (1-2), 243–249.
  • Xi, A., and Bothun, G.D., 2014. Centrifugation-based assay for examining nanoparticle–lipid membrane binding and disruption. The Analyst, 139 (5), 973–981.
  • Yandrapati, R.K., 2012. Effect of lipid composition on the physical properties of liposomes: a light scattering study.
  • Zook, J.M., and Vreeland, W.N., 2010. Effects of temperature, acyl chain length, and flow-rate ratio on liposome formation and size in a microfluidic hydrodynamic focusing device. Soft matter., 6 (6), 1352–1360.
  • Zumbuehl, O., and Weder, H.G., 1981. Liposomes of controllable size in the range of 40 to 180 nm by defined dialysis of lipid/detergent mixed micelles. Biochimica et Biophysica Acta, 640 (1), 252–262.

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.