Structure and stability of polynucleotide-(1,3)-β-D-glucan complexes

被引:9
|
作者
Sletmoen, Marit [1 ]
Naess, Stine Nalum [1 ]
Stokke, Bjorn T. [1 ]
机构
[1] Norwegian Univ Sci & Technol, Dept Phys Biophys & Med Technol, NTNU, NO-7491 Trondheim, Norway
关键词
Scleroglucan; Poly(C); DSC; AFM; SEC-MALLS; Polymer complexes; SCHIZOPHYLLUM-COMMUNE POLYSACCHARIDE; AQUEOUS SODIUM-HYDROXIDE; TRIPLE-HELICAL STRUCTURE; ATOMIC-FORCE MICROSCOPY; SINGLE-STRANDED RNA; DILUTE-SOLUTION; POLYNUCLEOTIDE COMPLEXES; CONFORMATIONAL TRANSITIONS; ANTISENSE OLIGONUCLEOTIDES; NATURAL POLYSACCHARIDE;
D O I
10.1016/j.carbpol.2008.10.035
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The structure and stability of complexes formed between (1,3)-beta-D-glucans and the polynucletide poly(C) are investigated using differential scanning calorimetry (DSC), atomic force microscopy (AFM) and size exclusion chromatography (SEC). DSC revealed the melting transition of the complexes at 55 degrees C and an endothermic transition for renatured scleroglucan in the interval 30-40 degrees C. AFM topographs support the interpretations that the latter transition is due to melting of associated polymer sequences positioned in between structural defects in renatured triplexes. The complexes form between poly(C) and single stranded or renatured scleroglucan, but not with annealed scleroglucan. The complex formation thus seems to require single strands, but the short single stranded stretches present in renatured scleroglucan are sufficient. and full dissociation into single strands is not required. No differences were observed between complexes formed by adding poly(C) to renatured triple helical or denatured single stranded (1,3)- beta-D-glucans. Implications of this insight on proposed structural models are discussed. (C) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:389 / 399
页数:11
相关论文
共 50 条
  • [1] Fungal β(1,3)-D-glucan synthesis
    Douglas, CM
    MEDICAL MYCOLOGY, 2001, 39 : 55 - 66
  • [2] Quantitative Characterization of the Amount and Length of (1,3)-β-D-glucan for Functional and Mechanistic Analysis of Fungal (1,3)-β-D-glucan Synthase
    Chhetri, Abhishek
    Loksztejn, Anna
    Yokoyama, Kenichi
    BIO-PROTOCOL, 2021, 11 (08):
  • [3] Structural stability of (1→3)-β-D-glucan macrocycles
    Falch, BH
    Stokke, BT
    CARBOHYDRATE POLYMERS, 2001, 44 (02) : 113 - 121
  • [4] Interference of (1→3)-β-D-glucan Administration in the Measurement of Plasma (1→3)-β-D-glucan
    Ishizuka, Y
    Tsukada, H
    Gejyo, F
    INTERNAL MEDICINE, 2004, 43 (02) : 97 - 101
  • [5] No interference of the 1,3-β-D-glucan containing nutritional supplement ImunixX with the 1,3-β-D-glucan serum test
    Spriet, Isabel
    Desmet, Stephanie
    Willems, Ludo
    Lagrou, Katrien
    MYCOSES, 2011, 54 (05) : E352 - E353
  • [6] Serum (1,3)-β-D-Glucan for Screening of Neonatal Fungemia
    Kamirul Islam
    Nazima Khatun
    Ujjal Mondal
    Kuntalkanti Das
    Kaustav Nayek
    Indian Pediatrics, 2022, 59 : 499 - 500
  • [7] Serum (1,3)-β-D-Glucan for Screening of Neonatal Fungemia
    Islam, Kamirul
    Khatun, Nazima
    Mondal, Ujjal
    Das, Kuntalkanti
    Nayek, Kaustav
    INDIAN PEDIATRICS, 2022, 59 (06) : 499 - 500
  • [8] 1,3-β-D-glucan in cryptococcal meningitis
    Rhein, Joshua
    Boulware, David R.
    Bahr, Nathan C.
    LANCET INFECTIOUS DISEASES, 2015, 15 (10): : 1136 - 1137
  • [9] Detection of (1,3)-β-D-Glucan in Cerebrospinal Fluid in Histoplasma Meningitis
    Myint, Thein
    Chow, Felicia C.
    Bloch, Karen C.
    Raymond-Guillen, Luke
    Davis, Thomas E.
    Wright, Patty W.
    Woc-Colburn, Laila
    Khairy, Raed N.
    Street, Alan C.
    Yamamoto, Tomotaka
    Albers, Amanda
    Wheat, L. Joseph
    Hage, Chadi A.
    JOURNAL OF CLINICAL MICROBIOLOGY, 2018, 56 (10)
  • [10] Analysis of the (1,3)-β-D-glucan synthase gene family of barley
    Schober, Michael S.
    Burton, Rachel A.
    Shirley, Neil J.
    Jacobs, Andrew K.
    Fincher, Geoffrey B.
    PHYTOCHEMISTRY, 2009, 70 (06) : 713 - 720