Read full paper at:
http://www.scirp.org/journal/PaperInformation.aspx?PaperID=53166#.VLXiSsnQrzE
http://www.scirp.org/journal/PaperInformation.aspx?PaperID=53166#.VLXiSsnQrzE
Affiliation(s)
1Institute of Chemical Technology of Food, Technical University of Lodz, Lodz, Poland.
2Laboratory of Lipids and Liposomes, Faculty of Biotechnology, University of Wroclaw, Wroclaw, Poland.
2Laboratory of Lipids and Liposomes, Faculty of Biotechnology, University of Wroclaw, Wroclaw, Poland.
ABSTRACT
An
attempt was made to demonstrate the usefulness of pre-knowledge of the
quality and quantity analysis of non-carbohydrate components of starch
surface, such as proteins and lipids, in starch isolated from wheat with
varying degrees of hardness, for receiving glucose hydrolysates. The
chemical composition of starches isolated from wheat grains of different
hardness was examined. The amount of protein fraction (surface
proteins, puroindolins and internal proteins), total and surface lipids,
apparent amylose, phosphorous and pentosans contents were evaluated. It
was found that starches, depending on the hardness of wheat grain, have
a different chemical composition. A clear influence of wheat hardness
on lipid and proteins content on the surface of starch grains and on
apparent amylose was proved. It was showed that the presence of polar
lipids (glyco and phospholipids) on the surface of starch was connected
with their role in binding of surface proteins fraction (friabilins) to
starch grains. There was a clear positive correlation between the amount
of lipid fraction on starch surface and the amount of protein fraction,
depending on wheat hardness. Starches from soft wheat varieties were
characterized by higher amounts of proteins and lipids on their surface.
In addition, it was determined that basing on the knowledge of
mechanical properties of wheat grains, namely its hardness and initial
starch chemical content analysis, one may predict its further directions
of processing, including evaluation, whether the starch from a given
wheat variety would be appropriate for obtaining hydrolysates with good
physicochemical properties.
Cite this paper
References
Kwaśniewska-Karolak,
I. , Rosicka-Kaczmarek, J. , Nebesny, E. and Stasiuk, M. (2015)
Non-Carbohydrate Components on the Surface of Starch Granules According
to the Hardness of Wheat. Food and Nutrition Sciences, 6, 112-123. doi: 10.4236/fns.2015.61012.
| [1] | Konopka,
I., Rotkiewicz, D. and Tańska, M. (2005) Wheat Endosperm Hardness. Part
II. Relationships to Content and Composition of Flour Lipids. European
Food Research and Technology, 220, 20-24. http://dx.doi.org/10.1007/s00217-004-1038-7 |
| [2] | Buleon,
A., Colonna, P., Planchot, V. and Ball, S. (1998) Starch Granules:
Structure and Biosynthesis. International Journal of Biological
Macromolecules 23, 85-112. http://dx.doi.org/10.1016/S0141-8130(98)00040-3 |
| [3] | Ellis,
R.P., Cochrane, M.P., Dale, M.F.B., Duffus, C.M., Lynn, A. and
Morrison, I.M. (1998) Starch Production and Industrial Use. Journal of
Science of Food and Agriculture, 77, 289-311. http://dx.doi.org/10.1002/(SICI)1097-0010(199807)77:3<289::AID-JSFA38>3.0.CO;2-D |
| [4] | Finnie,
S.M., Jeanuette, R., Morris, C.F. and Faubion, J.M. (2010) Variation in
Polar Lipid Composition among Near Isogenic Wheat Lines Possessing
Different Puroindoline Haplotypes. Journal of Cereal Science, 51, 66-72. http://dx.doi.org/10.1016/j.jcs.2009.09.006 |
| [5] | Finnie,
S.M. and Faubion, J.M. (2009) Quantitative Characterization of Polar
Lipids from Wheat Whole Meal, Flour and Starch. Cereal Chemistry, 86,
637-645. http://dx.doi.org/10.1094/CCHEM-86-6-0637 |
| [6] | Putaux,
J.L., Nishiyama, Y., Mazean, K., Morin, M., Kardoso, M.B. and Chauzy,
H. (2011) Helical Conformation in Crystalline Inclusion Complexes of
V-Amylose: A Historical Perspective. Macromolecular Symposia, 303, 1-9. http://dx.doi.org/10.1002/masy.201150501 |
| [7] | Baldwin, P.M. (2001) Starch Granule-Associated Proteins and Polypeptides: A Review. Starch/Starke, 53, 475-503. http://dx.doi.org/10.1002/1521-379X(200110)53:10<475::AID-STAR475>3.0.CO;2-E |
| [8] | Giroux,
M.J. and Morris, C.F. (1998) Wheat Grain Hardness Results from Highly
Conserved Mutations in the Friabilin Components Puroindoline a and b.
Proceedings of the National Academy of Sciences of the United States of
America, 95, 6262-6266. http://dx.doi.org/10.1073/pnas.95.11.6262 |
| [9] | Douliez,
J.P., Michon, T., Elmorjani, K. and Marion, D. (2000) Structure,
Biological and Technological Functions of Lipid Transfer Proteins and
Indolines, the Major Lipid Binding Proteins from Cereal Kernels. Journal
of Cereal Science, 32, 1-20. http://dx.doi.org/10.1006/jcrs.2000.0315 |
| [10] | Bhave,
M. and Morris, C.F. (2008) Molecular Genetics of Puroindolines and
Related Genes: Allelic Diversity in Wheat and Other Grasses. Plant
Molecular Biology, 66, 205-219. http://dx.doi.org/10.1007/s11103-007-9263-7 |
| [11] | Greenblatt, G.A., Bettge, A.D. and Morris, C.F. (1995) The Relationship among Endosperm Texture, Friabilin Occurrence, and Bound Polar Lipids on Wheat Starch. Cereal Chemistry, 72, 172-176. |
| [12] | Dubreil,
L., Compoint, J.P. and Marion, D. (1997) Interaction of Puroindolines
with Wheat Flour Lipids Determines Their Foaming Properties. Journal of
Agriculture and Food Chemistry, 45, 108-116. http://dx.doi.org/10.1021/jf960402j |
| [13] | Oda, S. and Schofield, J.D. (1997) Characterization of Friabilin Polypeptides. Journal of Cereal Science, 26, 29-36. http://dx.doi.org/10.1006/jcrs.1996.0113 |
| [14] | Kooijman,
M., Orsel, R., Hessing, M., Hamer, R.J. and Bekkes, A.C.A.P. (1997)
Spectroscopic Characterization of the Lipid-Binding Properties of Wheat
Puroindolines. Journal of Cereal Science, 26, 145-159. http://dx.doi.org/10.1006/jcrs.1997.0115 |
| [15] | Morrison,
W.R., Law, C.N., Wylie, L.J. and Coventry, J. (1989) Seekings: The
Effect of the Group 5-Chromosomes on the Free Polar Lipids and Bread
Making Quality of Wheat. Journal of Cereal Science, 9, 41-51. http://dx.doi.org/10.1016/S0733-5210(89)80020-7 |
| [16] | Morrison,
W.R. and Laignelet, B. (1983) An Improved Colorimetric Procedure for
Determining Apparent and Total Amylose in Cereal and Other Starches.
Journal of Cereal Science, 1, 9-20. http://dx.doi.org/10.1016/S0733-5210(83)80004-6 |
| [17] | Nebesny,
E., Rosicka-Kaczmarek, J. and Tkaczyk, M. (2005) Influence of Selected
Parameters of Starch Gelatinization and Hydrolysis on Stability of
Amylose-Lipid Complexes. Starch/Starke, 57, 325-331. http://dx.doi.org/10.1002/star.200400375 |
| [18] | Kerr, R.W. (1950) Chemistry and Industry of Starch. Academic Press Inc. Publishers, New York. |
| [19] | (1996) PN-84/A-74706: Processed Starch. Methods of Test for Starch. |
| [20] | AACC International Approved Methods of the American Association of Cereal Chemist, AACC Method 46-12.01, Crude Protein—Kjeldahl Method, Boric Acid Modification. |
| [21] | Gazza,
L., Corona, V., Boggini, G. and Pogna, N.E. (2001) Variation in
Friabilin Composition as Determined by A-PAGE Fractionation and PCR
Amplification, and Its Relationship to Grain Hardness in Bread Wheat.
Journal of Cereal Science, 34, 243-250. http://dx.doi.org/10.1006/jcrs.2000.0416 |
| [22] | AACC International Approved Methods of the American Association of Cereal Chemist, AACC Method 40-75.01 Determination of Minerals by Inductively Coupled Plasma Spectroscopy. |
| [23] | Hashimoto, S., Shogren, M.D. and Pomeranaz, Y. (1987) Cereal Pentosans: Their Estimation and Significance. I. Pentosans in Wheat and Milled Wheat Product. Cereal Chemistry, 64, 30-34. |
| [24] | Higgins, J.A. (1987) Separation and Analysis of Membrane Lipid Components. In: Findlay, J.B.C. and Evans, W.H., Eds., Biological Membranes: A Practical Approach, IRL Press, Oxford, 103-137. |
| [25] | Marinetti, G.V. (1964) Chromatographic Analysis of Polar Lipids on Silica Acid Impregnated Paper. In: James, A.T., Ed., New Biochemical Separations, Van Nostrand, London. |
| [26] | Pasciak,
M., Holst, O., Mierzchala, M., Grzegorzewicz, A., Mordarska, H. and
Gamian, A. (2004) Structural and Serological Characterization of the
Major Glycolipid from Rothia mucilaginosa. Biochimica et Biophysica
Acta, 1675, 54-61. http://dx.doi.org/10.1016/j.bbagen.2004.08.004 |
| [27] | Lowry, R.R. (1968) Ferric Chloride Spray Detector for Cholesterol and Cholesterol Esters on Thin-Layer Chromatograms. Journal of Lipid Research, 9, 397. |
| [28] | Laemmli, U.K. (1970) Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4. Nature, 227, 680-685. http://dx.doi.org/10.1038/227680a0 |
| [29] | Gromova, I. and Celis, J.E. (2004) Protein Detection in Gels by Silver Staining: A Procedure Compatible with Mass Spectrometry. In: Celis, J.E., Carter, N., Hunter, T., Shotton, D., Simons, K. and Small, J.V., Eds., Cell Biology, a Laboratory Handbook, Elsevier, San Diego, 219-223. |
| [30] | Feiz,
L., Wanjugi, H.W., Melnyk, C.W., Altosaar, I., Martin, J.M. and Giroux,
M.J. (2009) Puroindolines Co-Localize to the Starch Granule Surface and
Increase Seed Bound Polar Lipid Content. Journal of Cereal Science, 50,
91-98. http://dx.doi.org/10.1016/j.jcs.2009.03.004 |
| [31] | Wanjugi,
H.W., Hogg, A.C., Martin, J.M. and Giroux, M.J. (2007) The Role of
Puroindoline A and B Individually and in Combination on Grain Hardness
and Starch Association. Crop Science, 47, 67-76. http://dx.doi.org/10.2135/cropsci2006.05.0310 eww150114lx |
评论
发表评论