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Norman A. Mazer - One of the best experts on this subject based on the ideXlab platform.

  • Cholesterol (Thermodynamic) Activity Determinations in Bile Salt–Lecithin–Cholesterol Systems and Cholesterol-Rich Liquid Crystalline Mesophase Formation
    Pharmaceutical Research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)–lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7α-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity ( A _T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt–lecithin–Ch systems. Using the silicone polymer uptake method developed in this laboratory, A _T was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A _T was proportional to Ch concentration almost up to A _T = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A _T behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A _T values. A _T measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy. However, it is suggested that, even in cases where Mesophase formation may not take place in the bulk solution phase, Mesophase formation may occur on ChM crystallite surfaces during micellar dissolution.

  • Cholesterol (thermodynamic) activity determinations in bile salt-lecithin-cholesterol systems and cholesterol-rich liquid crystalline Mesophase formation.
    Pharmaceutical research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)-lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7 alpha-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity (A(T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt-lecithin-Ch systems. Using the silicone polymer uptake method developed in this laboratory, A(T) was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A(T) was proportional to Ch concentration almost up to A(T) = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A(T) behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A(T) values. A(T) measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy.(ABSTRACT TRUNCATED AT 250 WORDS)

Uday K. Jain - One of the best experts on this subject based on the ideXlab platform.

  • Cholesterol (Thermodynamic) Activity Determinations in Bile Salt–Lecithin–Cholesterol Systems and Cholesterol-Rich Liquid Crystalline Mesophase Formation
    Pharmaceutical Research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)–lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7α-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity ( A _T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt–lecithin–Ch systems. Using the silicone polymer uptake method developed in this laboratory, A _T was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A _T was proportional to Ch concentration almost up to A _T = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A _T behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A _T values. A _T measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy. However, it is suggested that, even in cases where Mesophase formation may not take place in the bulk solution phase, Mesophase formation may occur on ChM crystallite surfaces during micellar dissolution.

  • Cholesterol (thermodynamic) activity determinations in bile salt-lecithin-cholesterol systems and cholesterol-rich liquid crystalline Mesophase formation.
    Pharmaceutical research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)-lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7 alpha-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity (A(T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt-lecithin-Ch systems. Using the silicone polymer uptake method developed in this laboratory, A(T) was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A(T) was proportional to Ch concentration almost up to A(T) = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A(T) behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A(T) values. A(T) measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy.(ABSTRACT TRUNCATED AT 250 WORDS)

Ömer Dag - One of the best experts on this subject based on the ideXlab platform.

  • A New, Highly Conductive, Lithium Salt/Nonionic Surfactant, Lyotropic Liquid‐Crystalline Mesophase and Its Application
    Chemistry: A European Journal, 2012
    Co-Authors: Cemal Albayrak, Atilla Cihaner, Ömer Dag
    Abstract:

    Highly conductive electrolyte materials are an essential part of many electrochemical systems, such as fuel cells, solar cells, batteries, electrochromic devices, and next-generation renewable-energy sources. The growing diversity in batteries and electrochemical cells increases the demand for novel electrolyte materials. For instance, in solar-cell applications, an electrolyte material with high viscosity and low volatility is desirable, together with high ionic conductivity. Electrolytes can be solids, gels, or liquids depending on the application. Gel electrolytes are advantageous when the conductivity in the solid form is not sufficient or the leakage or vaporization of the liquid electrolyte is a problem. Gel electrolytes can be aqueous or non-aqueous depending on the application type. While in some battery systems aqueous gel electrolytes have no use—for example, in Li ion batteries—they can be used in many rechargeable batteries, electrochemical capacitors, solar cells, and so on. Liquid-crystal gel electrolytes have also been investigated and are considered to be an important class of ordered materials for the above applications. A lyotropic Liquid-Crystalline (LLC) Mesophase is formed by two main constituents: an amphiphile and a solvent. Common solvents are water, organic liquids, or ionic liquids. LLC-based electrolytes offer many advantages, like rigidity and high ionic mobility and can be an alternative to polymer electrolytes. Solvent-free LC systems (thermotropic LC) usually have low ionic conductivities at room temperature, typically around 10 6 Scm , whereas solvent-containing LLC systems have room-temperature ionic conductivities around 10 3 Scm . Usually high ionic conductivity in solvent-free LC electrolyte systems is achieved at high temperatures, that is, 150 8C and above. Recently we have shown that transition-metal aqua complex salts ([M ACHTUNGTRENNUNG(H2O)6]X2; in which M is a transition-metal cation and X is a suitable counterion), which have melting points close to room temperature, can also be used as solvents in the self-assembly process of some surfactants. The LLC Mesophases of molten transition-metal-salt aqua complexes have important physical properties, such as high thermal stability (between 83 and 383 K), high ionic conductivity (room-temperature conductivities close to 2.0 10 4 Scm ), and nonvolatility. A highly concentrated aqueous electrolyte solution of an alkali metal salt can also act as a solvent in the assembly process of oligo(ethylene oxide) type surfactants, in which the highly concentrated electrolyte solution can be considered as an analogue of a molten salt. Their similarities arise due to strong ion–dipole (salt–water) interactions at high salt concentrations (highly concentrated refers to water/salt mole ratios of less than 8 in the case of lithium salts) and as a consequence, the heat of vaporization of water sharply increases. In this contribution, we have investigated the phase behavior and ionic conductivity of a new class of hydrated-salt/ surfactant Mesophase, namely; LiNO3–H2O–C12EO10, LiCl– H2O–C12EO10, and LiClO4–H2O–C12EO10 systems, in which C12EO10 is C12H25 ACHTUNGTRENNUNG(OCH2CH2)10OH. The Mesophase is a collaborative assembly of a hydrated salt species in the liquid phase and surfactant molecules. Earlier studies on salt– water–surfactant Mesophases focus on the effect of salts on the phase behavior of surfactants in dilute aqueous solutions (18–1, water/salt mole ratio). Here, we demonstrate that as little as two water molecules per molecule of lithium salt is sufficient to form a LLC Mesophase. At such a low water and high salt concentrations, the bulk properties of water are altered by the salt–water interactions and the salt– water couple collaboratively acts as the solvent in the LLC Mesophase. An important outcome of the salt–water interaction is that the LLC Mesophase is stable under ambient atmospheric conditions for years (see Supporting Information) and displays high ionic conductivity over a broad temperature range. The LLC samples were prepared by adding each ingredient: salt (LiNO3, LiCl, or LiClO4), surfactant (C12EO10), and water in the required amounts and the resulting mixture was then homogenized by constant shaking in a shaking water bath at 60–110 8C for 24 h. Under ambient conditions, the amount of water in the samples depends on the temperature, relative humidity, and the amount of salt in the Mesophase, but always enough water remains in the samples to [a] C. Albayrak, Prof. . Dag Department of Chemistry, Bilkent University 06800, Ankara (Turkey) Fax: (+90)312-266-4068 E-mail : dag@fen.bilkent.edu.tr [b] Prof. A. Cihaner Department of Chemical Engineering and Applied Chemistry Atilim University 06836, Ankara (Turkey) Supporting information for this article is available on the WWW under http://dx.doi.org/10.1002/chem.201103705.

  • Effects of Ions on the Liquid Crystalline Mesophase of Transition-Metal Salt:Surfactant (CnEOm)
    The Journal of Physical Chemistry B, 2004
    Co-Authors: Ömer Dag, And Selim Alayoǧlu, İshak Uysal
    Abstract:

    The transition-metal aqua complex salts [M(H2O)x]Y2 (where M is some of the first- and second-row transition-metal ions and Y is Cl-, NO3-, and ClO4- counteranions) form liquid crystalline (LC) Mesophases with oligo(ethylene oxide) nonionic surfactants (CnH2n+1(CH2CH2O)mOH, denoted as CnEOm). The structure of the [M(H2O)x]Y2:CnEOm Mesophase is usually 2D hexagonal in nitrate systems, cubic in perchlorate systems, and absent in the chloride systems. The solubility of the metal aqua complex salt follows the Hofmeister series in a [M(H2O)x]Y2:CnEOm Mesophase. However, the nitrate ion interacts with the metal center as a bidentate and/or unidentate ligand, therefore reducing the ion density (and/or ionic strength) of the LC medium and further enhancing the solubility of nitrate salt in the LC systems. The cobalt chloride salt is the only soluble chloride salt that undergoes ligand-exchange reactions in the [Co(H2O)6]Cl2:CnEOm system. In an LC Mesophase, anions have a greater influence on the hydrophilicity of...

William I. Higuchi - One of the best experts on this subject based on the ideXlab platform.

  • Cholesterol (Thermodynamic) Activity Determinations in Bile Salt–Lecithin–Cholesterol Systems and Cholesterol-Rich Liquid Crystalline Mesophase Formation
    Pharmaceutical Research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)–lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7α-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity ( A _T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt–lecithin–Ch systems. Using the silicone polymer uptake method developed in this laboratory, A _T was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A _T was proportional to Ch concentration almost up to A _T = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A _T behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A _T values. A _T measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy. However, it is suggested that, even in cases where Mesophase formation may not take place in the bulk solution phase, Mesophase formation may occur on ChM crystallite surfaces during micellar dissolution.

  • Cholesterol (thermodynamic) activity determinations in bile salt-lecithin-cholesterol systems and cholesterol-rich liquid crystalline Mesophase formation.
    Pharmaceutical research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)-lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7 alpha-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity (A(T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt-lecithin-Ch systems. Using the silicone polymer uptake method developed in this laboratory, A(T) was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A(T) was proportional to Ch concentration almost up to A(T) = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A(T) behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A(T) values. A(T) measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy.(ABSTRACT TRUNCATED AT 250 WORDS)

Chen L. Liu - One of the best experts on this subject based on the ideXlab platform.

  • Cholesterol (Thermodynamic) Activity Determinations in Bile Salt–Lecithin–Cholesterol Systems and Cholesterol-Rich Liquid Crystalline Mesophase Formation
    Pharmaceutical Research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)–lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7α-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity ( A _T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt–lecithin–Ch systems. Using the silicone polymer uptake method developed in this laboratory, A _T was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A _T was proportional to Ch concentration almost up to A _T = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A _T behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A _T values. A _T measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy. However, it is suggested that, even in cases where Mesophase formation may not take place in the bulk solution phase, Mesophase formation may occur on ChM crystallite surfaces during micellar dissolution.

  • Cholesterol (thermodynamic) activity determinations in bile salt-lecithin-cholesterol systems and cholesterol-rich liquid crystalline Mesophase formation.
    Pharmaceutical research, 1992
    Co-Authors: Uday K. Jain, William I. Higuchi, Chen L. Liu, Paul H. Lee, Norman A. Mazer
    Abstract:

    Previous in vitro studies have shown that tauroursodeoxycholate (TUDC)-lecithin (L) micellar solutions solubilize cholesterol (Ch) poorly compared to its 7 alpha-epimer, taurochenodeoxycholate (TCDC). However, in clinical studies ursodeoxycholic acid (UDC) has been found to be as effective as chenodeoxycholic acid (CDC) in Ch gallstone dissolution, and it has been suggested that, during UDC therapy, liquid crystalline Mesophase formation may be involved in enhancing micellar Ch dissolution and dispersion. The purpose of the present study was to investigate whether measurements of the Ch thermodynamic activity (A(T) would provide new insights into the problem of Ch solubilization and Mesophase formation in bile salt-lecithin-Ch systems. Using the silicone polymer uptake method developed in this laboratory, A(T) was measured as a function of Ch concentration in the TUDC-L-Ch and TCDC-L-Ch model bile systems. In the TCDC systems Henry's law was obeyed almost up to unit activity (i.e., A(T) was proportional to Ch concentration almost up to A(T) = 1.0). However, in many of the TUDC-containing systems negative deviations from Henry's law were observed well below unit activity and these systems became visibly turbid before saturation with respect to cholesterol monohydrate (ChM) was reached. The effects of varying the TCDC/TUDC ratio upon the A(T) behavior were also studied. With increasing TCDC/TUDC ratio, the onset of Mesophase formation was shifted to higher A(T) values. A(T) measurements were also conducted in BS-L-Ch mixtures simulating biles of patients undergoing UDC therapy. The results obtained suggest that Mesophase formation may not always occur in biles of patients undergoing UDC therapy.(ABSTRACT TRUNCATED AT 250 WORDS)