Isolation of a Raw Starch-Binding Fragment from Barley α-Amylase

被引:0
|
作者
Dominic W. S. Wong
Sarah B. Batt
Brian K. Tibbot
George H. Robertson
机构
[1] USDA-ARS,Western Regional Research Center
[2] USDA-ARS,Western Regional Research Center
来源
关键词
α-Amylase; barley α-amylase; raw starch binding; β-cyclodextrin;
D O I
暂无
中图分类号
学科分类号
摘要
Barley α-amylase was purified by ammonium sulfate fraction, ion-exchange, ultrafiltration, and gel filtration to homogeneity. The purified enzyme was partially digested with trypsin, and the reaction mixture was applied to a cyclohepta-amylose epoxy Sepharose 6B column. Bound fragments were eluted by free cyclohepta-amylose, lyophilized, and separated on Tricine gels. Four fragments were shown to interact with β-cyclodextrin. The fragment that could be identified on the gel with the lowest molecular weight (11 kDa) was electroblotted onto PVDF membrane for sequencing. The N-terminal sequence of this fragment was determined with the N-terminal amino acid corresponding to Ala283 in the whole protein. The trypsin cleavage was at Lys282/Ala283 and the C-terminal cleavage occurred at Lys354/Ile355 to give a fragment size of 11 kDa as estimated by SDS-PAGE. The fragment would be located at the C-terminal region, forming a majority of the antiparallel β-sheets in domain C and the α7-and α8-helices of the (α/β)8 domain.
引用
收藏
页码:373 / 377
页数:4
相关论文
共 50 条
  • [21] Acarbose binding at the surface of Saccharomycopsis fibuligera glucoamylase suggests the presence of a raw starch-binding site
    Gasperík, J
    Hostinová, E
    Sevcík, J
    BIOLOGIA, 2005, 60 : 167 - 170
  • [22] The roles of histidine residues at the starch-binding site in streptococcal-binding activities of human salivary amylase
    Tseng, CC
    Miyamoto, M
    Ramalingam, K
    Hemavathy, KC
    Levine, MJ
    Ramasubbu, N
    ARCHIVES OF ORAL BIOLOGY, 1999, 44 (02) : 119 - 127
  • [23] Expression in Aspergillus niger of the starch-binding domain of glucoamylase Comparison with the proteolytically produced starch-binding domain
    Le, Gal-Coeffet, M.-F.
    Jacks, A. J.
    Sorimachi, K.
    Williamson, M. P.
    European Journal of Biochemistry, 233 (02):
  • [24] Synergistic action of barley α-amylase and Lentinula edodes glucoamylase on raw starch hydrolysis
    Wong, D
    Robertson, G
    Lee, C
    Wagschal, K
    FASEB JOURNAL, 2006, 20 (04): : A42 - A42
  • [25] Carbohydrate-binding module 74 is a novel starch-binding domain associated with large and multidomain α-amylase enzymes
    Valk, Vincent
    van Bueren, Alicia Lammerts
    van der Kaaij, Rachel M.
    Dijkhuizen, Lubbert
    FEBS JOURNAL, 2016, 283 (12) : 2354 - 2368
  • [26] The evolution of putative starch-binding domains
    Machovic, Martin
    Janecek, Stefan
    FEBS LETTERS, 2006, 580 (27) : 6349 - 6356
  • [27] The activity of barley α-amylase on starch granules is enhanced by fusion of a starch binding domain from Aspergillus niger glucoamylase
    Juge, N
    Nohr, J
    Le Gal-Coëffet, MF
    Kramhoft, B
    Furniss, CSM
    Planchot, V
    Archer, DB
    Williamson, G
    Svensson, B
    BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2006, 1764 (02): : 275 - 284
  • [28] A single residue mutation abolishes attachment of the CBM26 starch-binding domain from Lactobacillus amylovorus α-amylase
    Rodriguez-Sanoja, Romina
    Oviedo, N.
    Escalante, L.
    Ruiz, B.
    Sanchez, S.
    JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2009, 36 (03) : 341 - 346
  • [29] EXPRESSION IN ASPERGILLUS-NIGER OF THE STARCH-BINDING DOMAIN OF GLUCOAMYLASE - COMPARISON WITH THE PROTEOLYTICALLY PRODUCED STARCH-BINDING DOMAIN
    LEGALCOEFFET, MF
    JACKS, AJ
    SORIMACHI, K
    WILLIAMSON, MP
    WILLIAMSON, G
    ARCHER, DB
    EUROPEAN JOURNAL OF BIOCHEMISTRY, 1995, 233 (02): : 561 - 567
  • [30] Effects of Salt and Ligand Concentrations on the Thermal Unfolding and Refolding of Halophilic Starch-Binding Domain from Kocuria varians Amylase
    Yamaguchi, Rui
    Arakawa, Tsutomu
    Tokunaga, Hiroko
    Ishibashi, Matsujiro
    Tokunaga, Masao
    PROTEIN AND PEPTIDE LETTERS, 2012, 19 (03): : 326 - 332