The Journal of Light Scattering, Volume. 32, Issue 4, 343(2020)
Study on self-assembly behavior of sodium cholate by Small-angle X-ray scattering
[1] [1] Mukhopadhyay S, Maitra U. Nice review considering the different aspects of bile salts, ranging from chemistry to medicine[J]. Chemistry and biology of bile acids. Curr Sci 2004;87:1666-83.
[2] [2] Garland F, Christian SD. Thermoynamic and kinetic model of sequential nucleoside base aggregation in aqueous solution[J]. J Phys Chem 1975;79:1247-52.
[3] [3] Israelachvili J N. Intermolecular and Surface Forces[J]. Academic Press, 2011.
[4] [4] Small D M. The Physical Chemistry of Cholanic Acids. In The Bile Acids Chemistry, Physiology, and Metabolism; Springer US: Boston, MA, 1971; pp 249-356.
[5] [5] Kratohvil J P, Hsu W P, Kwok D I. How Large Are the Micelles of Di-α-Hydroxy Bile Salts at the Critical Micellization Concentrations in Aqueous Electrolyte Solutions? Results for Sodium Taurodeoxycholate and Sodium Deoxycholate[J]. Langmuir 1986, 2 (2), 256-258.
[6] [6] D′Archivio A A, Galantini L, Tettamanti E. Study on Intermicellar Interactions and Micellar Size in Aqueous Solutions of Sodium Taurocholate by Measurements of Collective Diffusion and Self-Diffusion Coefficients[J]. J. Phys. Chem. B 2000, 104 (39), 9255-9259.
[7] [7] Galantini L, Giampaolo S M, Mannina L, Pavel N V, Viel S. Study of Intermicellar Interactions and Micellar Sizes in Ionic Micelle Solutions by Comparing Collective Diffusion and Self-Diffusion Coefficients[J]. J. Phys. Chem. B 2004, 108 (15), 4799-4805.
[8] [8] Galantini L, Giglio E, Leonelli A, Pavel N V. An Integrated Study of Small-Angle X-Ray Scattering and Dynamic Light Scattering on Cylindrical Micelles of Sodium Glycodeoxycholate[J]. J. Phys. Chem. B 2004, 108 (9), 3078-3085.
[9] [9] Kiselev M A, Janich M, Hildebrand A, et al. Structural transition in aqueous lipid/bile salt [DPPC/NaDC] supramolecular aggregates: SANS and DLS study[J]. Chemical Physics, 2013, 424(4):93-99.
[10] [10] Pillai S A, Patel V I, Ray D, et al. Microstructural micellar transition in bile salt-ionic liquid mixed systems in water: a DLS and SANS study[J]. RSC Adv, 2016, 6(110):108488-108497.
[11] [11] J. T. Mang & R. P. Hjelm. Sans Investigation of the Pressure- and Temperature-Dependent Structure of the Bile Salt/Lecithin System[J]. Molecular Crystals and Liquid Crystals Science and Technology. Section A. Molecular Crystals and Liquid Crystals, 1997.
[12] [12] Flanagan, Bernadine, M, et al. Molecular interactions of a model bile salt and porcine bile with (1,3:1,4)-beta-glucans and arabinoxylans probed by C-13 NMR and SAXS[J]. Food Chemistry, 2016.
[13] [13] Felippe A C, Bellettini I C, Eising R, et al. Supramolecular complexes formed by the association of poly(ethyleneimine) (PEI), sodium cholate (NaC) and sodium dodecyl sulfate (SDS)[J]. Journal of the Brazilian Chemical Society, 2011, 22(8):1539-1548.
[14] [14] Marcelo, Christoff, Nadya, et al. Fluorescence and Light Scattering Studies on the Aggregation of Sodium Cholate in the Presence of Low Molecular Weight Poly(ethylene oxide)[J]. Langmuir, 2001.
[15] [15] Kotlarchyk M, Chen S H . Analysis of small angle neutron scattering spectra from polydisperse interacting colloids[J]. Journal of Chemical Physics, 1983, 79(5):2461-0.
[16] [16] Hayter J B, Penfold J . An analytic structure factor for macroion solutions[J]. Molecular Physics, 1981, 42(1):109-118.
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LI Bonan, LI Tianfu, LIU Rongdeng, WANG Zijun, LIU Yuntao, CHEN Dongfeng. Study on self-assembly behavior of sodium cholate by Small-angle X-ray scattering[J]. The Journal of Light Scattering, 2020, 32(4): 343
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Received: Jun. 25, 2020
Accepted: --
Published Online: Apr. 12, 2021
The Author Email: Bonan LI (bonanli@126.com)