Plant fructans stabilize phosphatidylcholine liposomes during freeze-drying

被引:100
|
作者
Hincha, DK [1 ]
Hellwege, EM
Heyer, AG
Crowe, JH
机构
[1] Max Planck Inst Mol Pflanzenphysiol, D-14424 Potsdam, Germany
[2] Free Univ Berlin, Inst Pflanzenphysiol & Mikrobiol, D-1000 Berlin, Germany
[3] Univ Calif Davis, Sect Mol & Cellular Biol, Davis, CA 95616 USA
来源
EUROPEAN JOURNAL OF BIOCHEMISTRY | 2000年 / 267卷 / 02期
关键词
Fourier transform infrared spectroscopy; freeze-drying; fructans; liposomes; polysaccharides;
D O I
10.1046/j.1432-1327.2000.01028.x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Fructans have been implicated as protective agents in the drought and freezing tolerance of many plant species. A direct proof of their ability to stabilize biological structures under stress conditions, however, is still lacking. Here we show that inulins (linear fructose polymers) isolated from chicory roots and dahlia tubers stabilize egg phosphatidylcholine large unilamellar vesicles during freeze-drying, while another polysaccharide, hydroxyethyl starch, was completely ineffective. Liposome stability was assessed after rehydration by measuring retention of the soluble fluorescent dye carboxyfluorescein and bilayer fusion. Inulin was an especially effective stabilizer in combination with glucose. Analysis by HPLC showed that the commercial inulin preparations used in our study contained no low molecular mass sugars that could be responsible for the observed stabilizing effect of the fructans. Fourier transform infrared spectroscopy showed a reduction of the gel to liquid-crystalline phase transition temperature of dry egg PtdCho by more than 20 degrees C in the presence of inulin. A direct interaction of inulin with the phospholipid in the dry state was also indicated by dramatic differences in the phosphate asymmetric stretch region of the infrared spectrum between samples with and without the polysaccharide.
引用
收藏
页码:535 / 540
页数:6
相关论文
共 50 条
  • [21] Freeze-drying of liposomes with cryoprotectants and its effect on retention rate of encapsulated ftorafur and vitamin A
    Hua, ZZ
    Li, BG
    Liu, ZJ
    Sun, DW
    DRYING TECHNOLOGY, 2003, 21 (08) : 1491 - 1505
  • [22] Freeze-Drying Investigations of Antlers
    Liu, Jun
    Zhang, Shiwei
    Zhang, Zhijun
    MECHANICAL ENGINEERING AND INTELLIGENT SYSTEMS, PTS 1 AND 2, 2012, 195-196 : 441 - +
  • [23] Freeze-Drying Technology in Foods
    Prosapio, Valentina
    Lopez-Quiroga, Estefania
    FOODS, 2020, 9 (07)
  • [24] Monitoring of the Secondary Drying in Freeze-Drying of Pharmaceuticals
    Fissore, Davide
    Pisano, Roberto
    Barresi, Antonello A.
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2011, 100 (02) : 732 - 742
  • [25] Effect of cycloinulohexaose with additives on the freeze-drying of liposome
    Ozaki, K
    Hayashi, M
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 1998, 160 (02) : 219 - 227
  • [26] The Influence of Local Microstructure Inhomogeneities on Local Drying Kinetics during Freeze-Drying
    Gruber, Sebastian
    Thomik, Maximilian
    Vorhauer-Huget, Nicole
    Hans, Lukas
    Tsotsas, Evangelos
    Foerst, Petra
    PHARMACEUTICS, 2022, 14 (10)
  • [27] A Mathematical Model for Freeze-Drying
    涂伟萍
    陈孟林
    杨卓如
    陈焕钦
    Chinese Journal of Chemical Engineering, 2000, (02) : 28 - 32
  • [28] Synergistic Effects of Surfactants and Sugars on Lipoplex Stability During Freeze-Drying and Rehydration
    Yu, Jinxiang
    Anchordoquy, Thomas J.
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2009, 98 (09) : 3319 - 3328
  • [29] The effect of freeze-drying parameters and formulation composition on IgG stability during drying
    Heljo, V. P.
    Harju, H.
    Hatanpaa, T.
    Yohannes, G.
    Juppo, A. M.
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2013, 85 (03) : 752 - 755
  • [30] Exploring the Superiorities of Restructured Peaches During Freeze-Drying and Storage
    Xie, Yitong
    Bi, Jinfeng
    Jin, Xin
    FOOD AND BIOPROCESS TECHNOLOGY, 2025, 18 (05) : 4529 - 4540