Amylopectin molecular structure reflected in macromolecular organization of granular starch

被引:94
作者
Vermeylen, R
Goderis, B
Reynaers, H
Delcour, JA
机构
[1] Katholieke Univ Leuven, Food Chem Lab, B-3001 Heverlee, Belgium
[2] Katholieke Univ Leuven, Lab Macromol Struct Chem, B-3001 Heverlee, Belgium
关键词
D O I
10.1021/bm0499132
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
For lintners with negligible amylose retrogradation, crystallinity related inversely to starch amylose content and, irrespective of starch source, incomplete removal of amorphous material was shown. The latter was more pronounced for B-type than for A-type starches. The two predominant lintner populations, with modal degrees of polymerization (DP) of 13-15 and 23-27, were best resolved for amylose-deficient and A-type starches. Results indicate a more specific hydrolysis of amorphous lamellae in such starches. Small-angle X-ray scattering showed a more intense 9-nm scattering peak for native amylose-deficient A-type starches than for their regular or B-type analogues. The experimental evidence indicates a lower contrasting density within the "crystalline" shells of the latter starches. A higher density in the amorphous lamellae, envisaged by the lamellar helical model, explains the relative acid resistance of linear amylopectin chains with DP > 20, observed in lintners of B-type starches. Because amylopectin chain length distributions were similar for regular and amylose-deficient starches of the same crystal type, we deduce that the more dense (and ordered) packing of double helices into lamellar structures in amylose-deficient starches is due to a different amylopectin branching pattern.
引用
收藏
页码:1775 / 1786
页数:12
相关论文
共 94 条
[1]  
Baldwin PM, 2001, STARCH-STARKE, V53, P475, DOI 10.1002/1521-379X(200110)53:10<475::AID-STAR475>3.0.CO
[2]  
2-E
[3]   From glycogen to amylopectin: A model for the biogenesis of the plant starch granule [J].
Ball, S ;
Guan, HP ;
James, M ;
Myers, A ;
Keeling, P ;
Mouille, G ;
Buleon, A ;
Colonna, P ;
Preiss, J .
CELL, 1996, 86 (03) :349-352
[4]  
BILIADERIS CG, 1981, CEREAL CHEM, V58, P502
[5]   The molecular deposition of transgenically modified starch in the starch granule as imaged by functional microscopy [J].
Blennow, A ;
Hansen, M ;
Schulz, A ;
Jorgensen, K ;
Donald, AM ;
Sanderson, J .
JOURNAL OF STRUCTURAL BIOLOGY, 2003, 143 (03) :229-241
[6]   MODELS FOR SMALL-ANGLE X-RAY-SCATTERING FROM HIGHLY DISPERSED LAMELLAE [J].
BLUNDELL, DJ .
POLYMER, 1978, 19 (11) :1258-1266
[7]   The effect of mutant genes at the r, rb, rug3, rug4, rug5 and lam loci on the granular structure and physico-chemical properties of pea seed starch [J].
Bogracheva, TY ;
Cairns, P ;
Noel, TR ;
Hulleman, S ;
Wang, TL ;
Morris, VJ ;
Ring, SG ;
Hedley, CL .
CARBOHYDRATE POLYMERS, 1999, 39 (04) :303-314
[8]   Details of the crystalline ultrastructure of C-starch granules revealed by synchrotron microfocus mapping [J].
Buleon, A ;
Gerard, C ;
Riekel, C ;
Vuong, R ;
Chanzy, H .
MACROMOLECULES, 1998, 31 (19) :6605-6610
[9]   COMPARISON OF X-RAY-DIFFRACTION PATTERNS AND SORPTION PROPERTIES OF THE HYDROLYZED STARCHES OF POTATO, WRINKLED AND SMOOTH PEA, BROAD BEAN AND WHEAT [J].
BULEON, A ;
BIZOT, H ;
DELAGE, MM ;
PONTOIRE, B .
CARBOHYDRATE POLYMERS, 1987, 7 (06) :461-482
[10]   Starch granules: structure and biosynthesis [J].
Buleon, A ;
Colonna, P ;
Planchot, V ;
Ball, S .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 1998, 23 (02) :85-112