US20040092732A1 - Process for preparing dextrins - Google Patents
Process for preparing dextrins Download PDFInfo
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- US20040092732A1 US20040092732A1 US10/695,126 US69512603A US2004092732A1 US 20040092732 A1 US20040092732 A1 US 20040092732A1 US 69512603 A US69512603 A US 69512603A US 2004092732 A1 US2004092732 A1 US 2004092732A1
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- United States
- Prior art keywords
- starch
- dextrin
- amylose
- beta
- product
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
- 229920001353 Dextrin Polymers 0.000 title claims abstract description 77
- 239000004375 Dextrin Substances 0.000 title claims abstract description 77
- 235000019425 dextrin Nutrition 0.000 title claims abstract description 77
- 238000004519 manufacturing process Methods 0.000 title description 4
- OWEGMIWEEQEYGQ-UHFFFAOYSA-N 100676-05-9 Natural products OC1C(O)C(O)C(CO)OC1OCC1C(O)C(O)C(O)C(OC2C(OC(O)C(O)C2O)CO)O1 OWEGMIWEEQEYGQ-UHFFFAOYSA-N 0.000 claims description 27
- GUBGYTABKSRVRQ-PICCSMPSSA-N Maltose Natural products O[C@@H]1[C@@H](O)[C@H](O)[C@@H](CO)O[C@@H]1O[C@@H]1[C@@H](CO)OC(O)[C@H](O)[C@H]1O GUBGYTABKSRVRQ-PICCSMPSSA-N 0.000 claims description 27
- 238000000034 method Methods 0.000 claims description 12
- 238000001694 spray drying Methods 0.000 claims description 6
- 229920002472 Starch Polymers 0.000 abstract description 53
- 235000019698 starch Nutrition 0.000 abstract description 53
- 239000008107 starch Substances 0.000 abstract description 47
- 229920000856 Amylose Polymers 0.000 abstract description 40
- 102000004190 Enzymes Human genes 0.000 abstract description 15
- 108090000790 Enzymes Proteins 0.000 abstract description 15
- 108010019077 beta-Amylase Proteins 0.000 abstract description 15
- 238000000108 ultra-filtration Methods 0.000 abstract description 8
- 230000007071 enzymatic hydrolysis Effects 0.000 abstract description 7
- 238000006047 enzymatic hydrolysis reaction Methods 0.000 abstract description 7
- 238000011026 diafiltration Methods 0.000 abstract description 4
- 230000003301 hydrolyzing effect Effects 0.000 abstract 1
- 239000000047 product Substances 0.000 description 27
- 239000007787 solid Substances 0.000 description 21
- 239000000203 mixture Substances 0.000 description 19
- 239000008188 pellet Substances 0.000 description 15
- 229940088598 enzyme Drugs 0.000 description 14
- 239000000463 material Substances 0.000 description 14
- 150000001720 carbohydrates Chemical class 0.000 description 11
- 239000012528 membrane Substances 0.000 description 11
- 239000000243 solution Substances 0.000 description 10
- 235000002017 Zea mays subsp mays Nutrition 0.000 description 9
- 108090000637 alpha-Amylases Proteins 0.000 description 9
- 102000004139 alpha-Amylases Human genes 0.000 description 9
- 235000014633 carbohydrates Nutrition 0.000 description 9
- 239000012465 retentate Substances 0.000 description 8
- 239000002002 slurry Substances 0.000 description 8
- 239000012466 permeate Substances 0.000 description 7
- 235000000346 sugar Nutrition 0.000 description 7
- 229920002261 Corn starch Polymers 0.000 description 6
- VEXZGXHMUGYJMC-UHFFFAOYSA-N Hydrochloric acid Chemical compound Cl VEXZGXHMUGYJMC-UHFFFAOYSA-N 0.000 description 6
- 239000008120 corn starch Substances 0.000 description 6
- 238000001914 filtration Methods 0.000 description 6
- 238000000926 separation method Methods 0.000 description 6
- 241000482268 Zea mays subsp. mays Species 0.000 description 5
- 238000001471 micro-filtration Methods 0.000 description 5
- 238000002360 preparation method Methods 0.000 description 5
- 230000008569 process Effects 0.000 description 5
- 150000008163 sugars Chemical class 0.000 description 5
- 240000008042 Zea mays Species 0.000 description 4
- 239000013078 crystal Substances 0.000 description 4
- 230000002255 enzymatic effect Effects 0.000 description 4
- 230000007062 hydrolysis Effects 0.000 description 4
- 238000006460 hydrolysis reaction Methods 0.000 description 4
- 239000007921 spray Substances 0.000 description 4
- 229920000945 Amylopectin Polymers 0.000 description 3
- IAZDPXIOMUYVGZ-UHFFFAOYSA-N Dimethylsulphoxide Chemical compound CS(C)=O IAZDPXIOMUYVGZ-UHFFFAOYSA-N 0.000 description 3
- WQZGKKKJIJFFOK-GASJEMHNSA-N Glucose Natural products OC[C@H]1OC(O)[C@H](O)[C@@H](O)[C@@H]1O WQZGKKKJIJFFOK-GASJEMHNSA-N 0.000 description 3
- 235000005824 Zea mays ssp. parviglumis Nutrition 0.000 description 3
- 238000005119 centrifugation Methods 0.000 description 3
- 239000000919 ceramic Substances 0.000 description 3
- 238000006243 chemical reaction Methods 0.000 description 3
- 235000005822 corn Nutrition 0.000 description 3
- 238000005227 gel permeation chromatography Methods 0.000 description 3
- 239000008103 glucose Substances 0.000 description 3
- 230000004048 modification Effects 0.000 description 3
- 238000012986 modification Methods 0.000 description 3
- 229920001542 oligosaccharide Polymers 0.000 description 3
- 150000002482 oligosaccharides Chemical class 0.000 description 3
- 238000011282 treatment Methods 0.000 description 3
- 229920002245 Dextrose equivalent Polymers 0.000 description 2
- 235000007340 Hordeum vulgare Nutrition 0.000 description 2
- 240000005979 Hordeum vulgare Species 0.000 description 2
- 240000007594 Oryza sativa Species 0.000 description 2
- 235000007164 Oryza sativa Nutrition 0.000 description 2
- CDBYLPFSWZWCQE-UHFFFAOYSA-L Sodium Carbonate Chemical compound [Na+].[Na+].[O-]C([O-])=O CDBYLPFSWZWCQE-UHFFFAOYSA-L 0.000 description 2
- 238000010306 acid treatment Methods 0.000 description 2
- WQZGKKKJIJFFOK-VFUOTHLCSA-N beta-D-glucose Chemical compound OC[C@H]1O[C@@H](O)[C@H](O)[C@@H](O)[C@@H]1O WQZGKKKJIJFFOK-VFUOTHLCSA-N 0.000 description 2
- 230000015572 biosynthetic process Effects 0.000 description 2
- 235000013339 cereals Nutrition 0.000 description 2
- 230000007423 decrease Effects 0.000 description 2
- 238000001514 detection method Methods 0.000 description 2
- 230000002478 diastatic effect Effects 0.000 description 2
- 230000000694 effects Effects 0.000 description 2
- 230000007717 exclusion Effects 0.000 description 2
- 239000004615 ingredient Substances 0.000 description 2
- 239000007788 liquid Substances 0.000 description 2
- 235000009566 rice Nutrition 0.000 description 2
- 235000020357 syrup Nutrition 0.000 description 2
- 239000006188 syrup Substances 0.000 description 2
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 2
- 235000007319 Avena orientalis Nutrition 0.000 description 1
- 241000209763 Avena sativa Species 0.000 description 1
- 235000007558 Avena sp Nutrition 0.000 description 1
- OKTJSMMVPCPJKN-UHFFFAOYSA-N Carbon Chemical compound [C] OKTJSMMVPCPJKN-UHFFFAOYSA-N 0.000 description 1
- 240000003183 Manihot esculenta Species 0.000 description 1
- 235000016735 Manihot esculenta subsp esculenta Nutrition 0.000 description 1
- 229920000881 Modified starch Polymers 0.000 description 1
- 239000004368 Modified starch Substances 0.000 description 1
- 244000061456 Solanum tuberosum Species 0.000 description 1
- 235000002595 Solanum tuberosum Nutrition 0.000 description 1
- 235000021307 Triticum Nutrition 0.000 description 1
- 244000098338 Triticum aestivum Species 0.000 description 1
- 235000016383 Zea mays subsp huehuetenangensis Nutrition 0.000 description 1
- 238000005903 acid hydrolysis reaction Methods 0.000 description 1
- 230000002776 aggregation Effects 0.000 description 1
- 238000004220 aggregation Methods 0.000 description 1
- 238000013019 agitation Methods 0.000 description 1
- 229940024171 alpha-amylase Drugs 0.000 description 1
- GUBGYTABKSRVRQ-ASMJPISFSA-N alpha-maltose Chemical compound O[C@@H]1[C@@H](O)[C@H](O)[C@@H](CO)O[C@@H]1O[C@@H]1[C@@H](CO)O[C@H](O)[C@H](O)[C@H]1O GUBGYTABKSRVRQ-ASMJPISFSA-N 0.000 description 1
- 238000004458 analytical method Methods 0.000 description 1
- 239000007864 aqueous solution Substances 0.000 description 1
- GUBGYTABKSRVRQ-QUYVBRFLSA-N beta-maltose Chemical compound OC[C@H]1O[C@H](O[C@H]2[C@H](O)[C@@H](O)[C@H](O)O[C@@H]2CO)[C@H](O)[C@@H](O)[C@@H]1O GUBGYTABKSRVRQ-QUYVBRFLSA-N 0.000 description 1
- 239000004067 bulking agent Substances 0.000 description 1
- 239000006227 byproduct Substances 0.000 description 1
- 229910052799 carbon Inorganic materials 0.000 description 1
- 230000008859 change Effects 0.000 description 1
- 238000012512 characterization method Methods 0.000 description 1
- 238000005352 clarification Methods 0.000 description 1
- 235000008504 concentrate Nutrition 0.000 description 1
- 239000012141 concentrate Substances 0.000 description 1
- 238000007796 conventional method Methods 0.000 description 1
- 238000010411 cooking Methods 0.000 description 1
- 238000002425 crystallisation Methods 0.000 description 1
- 230000008025 crystallization Effects 0.000 description 1
- 238000009826 distribution Methods 0.000 description 1
- 238000001035 drying Methods 0.000 description 1
- 230000009977 dual effect Effects 0.000 description 1
- 238000005516 engineering process Methods 0.000 description 1
- 238000000605 extraction Methods 0.000 description 1
- 238000011010 flushing procedure Methods 0.000 description 1
- 230000004907 flux Effects 0.000 description 1
- ZZUFCTLCJUWOSV-UHFFFAOYSA-N furosemide Chemical compound C1=C(Cl)C(S(=O)(=O)N)=CC(C(O)=O)=C1NCC1=CC=CO1 ZZUFCTLCJUWOSV-UHFFFAOYSA-N 0.000 description 1
- 239000013628 high molecular weight specie Substances 0.000 description 1
- 239000012510 hollow fiber Substances 0.000 description 1
- 230000010354 integration Effects 0.000 description 1
- 239000013627 low molecular weight specie Substances 0.000 description 1
- 235000009973 maize Nutrition 0.000 description 1
- 235000019426 modified starch Nutrition 0.000 description 1
- 229920002492 poly(sulfone) Polymers 0.000 description 1
- 238000006116 polymerization reaction Methods 0.000 description 1
- 239000011148 porous material Substances 0.000 description 1
- 238000001556 precipitation Methods 0.000 description 1
- 238000011045 prefiltration Methods 0.000 description 1
- 238000010791 quenching Methods 0.000 description 1
- 230000000171 quenching effect Effects 0.000 description 1
- 230000035484 reaction time Effects 0.000 description 1
- 230000009257 reactivity Effects 0.000 description 1
- 230000000717 retained effect Effects 0.000 description 1
- 238000013341 scale-up Methods 0.000 description 1
- 229910000029 sodium carbonate Inorganic materials 0.000 description 1
- 235000017550 sodium carbonate Nutrition 0.000 description 1
- 239000007858 starting material Substances 0.000 description 1
- 239000000758 substrate Substances 0.000 description 1
- 239000003643 water by type Substances 0.000 description 1
Classifications
-
- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08B—POLYSACCHARIDES; DERIVATIVES THEREOF
- C08B30/00—Preparation of starch, degraded or non-chemically modified starch, amylose, or amylopectin
- C08B30/12—Degraded, destructured or non-chemically modified starch, e.g. mechanically, enzymatically or by irradiation; Bleaching of starch
- C08B30/18—Dextrin, e.g. yellow canari, white dextrin, amylodextrin or maltodextrin; Methods of depolymerisation, e.g. by irradiation or mechanically
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P19/00—Preparation of compounds containing saccharide radicals
- C12P19/04—Polysaccharides, i.e. compounds containing more than five saccharide radicals attached to each other by glycosidic bonds
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P19/00—Preparation of compounds containing saccharide radicals
- C12P19/22—Preparation of compounds containing saccharide radicals produced by the action of a beta-amylase, e.g. maltose
-
- C—CHEMISTRY; METALLURGY
- C13—SUGAR INDUSTRY
- C13K—SACCHARIDES OBTAINED FROM NATURAL SOURCES OR BY HYDROLYSIS OF NATURALLY OCCURRING DISACCHARIDES, OLIGOSACCHARIDES OR POLYSACCHARIDES
- C13K7/00—Maltose
Definitions
- This invention is in the field of oligosaccharides, and in particular, the invention pertains to the preparation of a high molecular weight dextrin product.
- beta-amylase enzymes are known to act on starch to produce low molecular weight species, typically maltose, and high molecular weight species, known as dextrins.
- dextrins high molecular weight species
- so-called waxy (corn) or glutinous (rice) starches most starches found in nature are composed of a mixture of amylopectin and amylose.
- Amylose is a linear molecule which is substantially completely hydrolyzed by beta-amylase enzymes into maltose and glucose.
- Amylopectin a branched molecule, is hydrolyzed into maltose and higher molecular weight dextrins, because the beta-amylase enzyme is unable to hydrolyze past the alpha 1-6- branch point in the amylodextrin molecule. If the enzymatic hydrolysis is allowed to proceed to its fullest extent, the remainder of the amylopectin molecule will exist as what is known as beta-limit dextrin.
- Retrograded amylose may be removed from the product mixture prior to ultrafiltration.
- the invention provides a method for preparing retrograded amylose. It is contemplated that this material is useful as “resistant” starch, which is not as digestible as other starches and which therefore may be used as a low- or non-caloric bulking agent.
- the dextrins thus prepared will have a number of desirable properties, including a high solubility and a high molecular weight, with low hazing in solution. Additionally, the dextrins have a very low dextrose equivalent value (DE), and thus are expected to be substantially more stable than carbohydrates of lower molecular weight. As such, it is contemplated that such dextrins may be used in applications such as viscosifiers or as spray drying aids for other carbohydrates (such as maltose). In accordance with another embodiment of the invention, the dextrin is added to maltose in an amount sufficient to assist in spray drying.
- DE dextrose equivalent value
- the invention contemplates the production of dextrins, such as beta-limit dextrin, from starch.
- Any suitable starch may be employed in connection with the invention, and thus, for instance, starches such as corn, rice, wheat, tapioca, maize, potato, barley, oat, and, more generally, any starch suitable for enzymatic hydrolysis may be used in connection with the invention. It is not necessary to use a so-called waxy or glutinous starch in connection with the invention, but to the contrary the starch can have any suitable amylose content, such as an amylose content of 10%, 15%, 20%, 25%, or a greater amylose content.
- the starch may be a partially derivatized or otherwise modified starch, or may be a starch that has been thinned or enzymatically treated.
- a starch that has been lightly oxidized may be employed.
- the starch should be liquefied via heat, enzymatic, or acid treatment prior to treatment with the beta-amylase enzyme.
- the starch is liquefied via acid treatment, although low amylose starches may require liquefaction only with heat and may be suitably liquefied at the operating temperature of the enzymatic hydrolysis.
- it is desirable to recover maltose from the beta-amylase hydrolysis product.
- the starch should be liquefied to an extent such that it would remain liquid at the operating temperature of the beta-amylase hydrolysis, but not liquefied to an extent such that the starch is converted to saccharides having so low a degree of polymerization that it is difficult to separate such saccharides from maltose via ultrafiltration.
- the degree of liquefaction should be such that, upon enzymatic hydrolysis with the beta-amylase enzyme, the combined content of glucose and oligosaccharides in the DP 3- 10 range does not exceed about 10%, and preferably does not exceed about 5%. It has been found acceptable to liquefy the starch to a dextrose equivalent (DE) value of about 2, as measured via conventional techniques.
- DE dextrose equivalent
- the DE of the starch should be kept below about 1, and thus the DE should range between 0 and about 1, although it may be difficult to measure the DE with precision in this range.
- the starch is liquefied in an aqueous solution at a liquefaction temperature ranging from about 220° F. to about 320° F., and for a time ranging from about 5 minutes to about 30 minutes.
- the starch solids level preferably ranges initially from about 5% to about 30%, more preferably, from about 15% to about 30%. While it is not intended to limit the invention to a particular theory of operation, it is believed that a lower solids content requires a lesser degree of liquefaction to attain the desired viscosity range. In the case of dent corn starch, it has been found that a viscosity window of between 25 and 45 centipoise (Norcross Shell Cup) is optimal. In the case of waxy starches, viscosities outside this range may be acceptable.
- the pH of the starch slurry should be adjusted to a level sufficient to provide controlled acid hydrolysis of the starch in the presence or absence of catalyzing alpha amylase enzymes; most preferably, under a given set of conditions, the variability of the slurry pH should be no more than +/ ⁇ 0.1 pH, with the precise pH value depending upon the starch source, the slurry solids, and the operational conditions of the liquefaction equipment employed. As a practical matter, the pH can vary more widely while still resulting in a satisfactory product.
- the starch liquefaction is monitored via viscosity and adjusted accordingly.
- the starch is liquefied with an alpha-amylase enzyme to reduce the molecular weight of the starch, thereby reducing the viscosity of the starch and thereby permitting processing at a higher solids level.
- Suitable commercial liquefying enzymes may be obtained from Genencor International, Inc. or from Novozymes A/S.
- the dosing level of the alpha-amylase enzyme depends upon the desired solids level and, when maltose is recovered as a co-product, on the desired maltose purity. Desirably, the dosing level ranges from about 0.005% to about 0.02% of a commercial strength enzyme by dry solids basis starch.
- the alpha-amylase enzyme preferably is quenched prior to saccharification via any suitable quenching procedure. For instance, when the starch is liquefied at a temperature less then 250° F. and 5 minutes residence, the alpha-amylase enzyme is quenched by reducing the liqefact pH to less than 4.0 and holding at a temperature of from 180 to 190° F. for at least about 15 minutes.
- the liquefact Upon liquefaction, the liquefact is immediately cooled and the pH is adjusted to the optimum conditions for beta-amylase activity.
- the starch then is treated with the enzyme under any conditions suitable to result in the hydrolysis of this liquefied starch to form dextrin, and preferably, to form beta-limit dextrin.
- a preferred enzyme is OPTIMALT BBA, available from Genencor International, Inc.
- the enzyme may be added in any amount sufficient to achieve this result, but generally, the dosing of the enzyme should be in excess of the minimum viscosity limited conversion of approximately two Genencor OPTIMALT BBA Diastatic Power units per kilogram of starch, the Diastatic Power units being defined as being the amount of enzyme contained in 0.1 ml of a 5% solution of the sample enzyme preparation that will provide sufficient reducing power to reduce 5 ml of Fehling's solution when the sample is incubated with 100 ml of substrate for one hour at 20° C.
- the enzymes should be allowed to act on the starch for any amount of time suitable to form the desired dextrin. Under the preferred reaction conditions discussed hereinabove, the enzymatic action generally is 90% complete within 4 hours.
- the optimum temperature and pH of the starch hydrolysis will vary depending on the particular beta-amylase enzyme employed, but typically the temperature will range from about 55° C. to about 65° C. and the pH will range from about 5.0 to about 6.0.
- the product mixture thus formed is clarified and decolored by any suitable procedure, such as carbon treatment, filtration, centrifugation, and or precipitation, before it is further processed.
- the dextrin content may be greater than about 20%, most of which will comprise beta-limit dextrin.
- the combined content of glucose and of oligosaccharides in the DP 3-10 range is below about 10%, and preferably is below 5%.
- Retrograded amylose may be found as a by-product of the enzymatic hydrolysis.
- at least some of the retrograded amylose is separated from the product mixture.
- the saccharified solution may be maintained at a temperature below about 14° F. to allow at least a portion of the retrograded amylose to crystallize.
- the crystallized amylose then may be separated from the saccharified starch mixture by any suitable technique, such as via microfiltration, by which is contemplated separation at a resolution sufficient to separate the retrograded amylose but not sufficient to separate dextrins from low molecular weight sugars in the product mixture.
- the retrograded amylose may be separated via centrifugation, using any technique known in the art or otherwise found to be suitable.
- the solution prepared upon enzymatic hydrolysis is centrifugated for at least 15 minutes at a relative g force of 3000.
- the amylose crystals will form a pellet, and the low molecular weight sugars and limit dextrin will remain in the clarified supernate.
- a dextrin is separated from the product mixture.
- a dextrin product is separated from the product mixture via ultrafiltration of the product mixture, by which is contemplated separation of the beta-limit dextrin from lower molecular weight carbohydrates using a membrane or other suitable separation medium that is effective for this purpose.
- a membrane having a molecular weight cut off (MWCO) of 10,000 or less, preferably a MWCO of 5000 or less is suitable.
- MWCO molecular weight cut off
- Suitable commercially available membranes are available from Syndar Filtration and from Osmonics De Sal.
- the retentate typically will include the desired dextrin and some retained low molecular weight sugar (typically maltose). If desired, the retentate may be diafiltered to recover additional maltose by flushing the filter with excess water.
- the product thus formed has numerous desirable properties, including a high molecular weight, for instance, a molecular weight of at least 30,000 Daltons and ranging up to 600,000 Daltons, in some cases higher, depending on the starch used as a starting material.
- the product further has a low DE (and hence a low reactivity and susceptibility to color change), and, surprisingly, a high degree of solubility with very low hazing, even at high molecular weights.
- Numerous commercial uses are contemplated, including use as a viscosifier. In such applications, the limit dextrin may be added to a product to be made more viscous, in any amount effective for this purpose.
- the dextrin prepared in accordance with the invention can be added to a solution of maltose or of another carbohydrate, or to a dry maltose or other carbohydrate product in an amount sufficient to enhance spray drying of the solution or dry product.
- the dextrin preferably is added in an amount ranging from about 5% to about 70% dry solids basis per dry weight of the maltose or other carbohydrate to form a mixture.
- the mixture may contain other ingredients besides the carbohydrate to be spray dried and limit dextrin, some of which ingredients also may function to enhance spray drying of the maltose.
- Carbohydrate percentages given herein are expressed on a dry solids basis per total carbohydrate weight.
- Starch from waxy corn was made to an aqueous slurry containing 12 to 15% solids and pH 6.0 to 7.0.
- the slurry was then liquefied by jet cooking through a Hydro Thermal Jet (Model #M103-030) at 300° F., 60 to 65 psi with a 5 minute residence time at 300° F., 50 to 55 psi.
- the liquefact was immediately cooled, the pH was adjusted to 5.5 with hydrochloric acid, and dosed with beta-amylase.
- beta-amylase enzyme Genencor OPTIMALT BBA
- dosing was 6.15 DP units per kilogram of starch or 0.05 wt.% grams of liquid enzyme per gram of dry starch.
- Saccharification was performed at 140° F. for 4 to 24 hours.
- the solution was then separated by ultrafiltration through a polysulfone 3000 MWCO membrane (Syndar Filtration).
- the permeate containing approximately 6% solids, was then evaporated to 70% solids which contained not less than 90% maltose. Beta-limit dextrin was recovered from the retentate.
- This Example illustrates the preparation of beta-limit dextrin from wet mill processed yellow dent corn starch under various liquefaction conditions.
- Dent corn starch was liquefied under various reaction conditions, as given in the following Table. Residence % Temp Time Example solids pH (F.) (min) 2A 15 3.5 300 5 2B 20 3.0 300 5 2C 20 2.75 300 5 2D 25 2.75 300 5 2E 25 3.0 300 20 2F 25 2.75 300 20 2G 30 3.0 300 20 2H 30 2.75 300 20 2I 30 3.0 300 20 2J 30 3.0 280 20
- This Example illustrates the liquefaction of wet mill processed yellow dent corn starch with an alpha-amylase enzyme.
- starch from wet mill processed yellow dent corn was adjusted to a solids content of 12 or 25% dry solids basis and the pH was adjusted to pH 5.50 with hydrochloric acid.
- Each starch slurry was then dosed with a liquefying alpha-amylase enzyme (Novo TERMANYL SC) to 0.005-0.02% dry solids basis.
- the slurries were then jet cooked at 230° to 290° F. with a 5 to 20 minute residence.
- the alpha-amylase then was quenched by reducing the liquefact pH to less than 4.0 and holding at 180and 190° F. for 15 minutes.
- the liquefacts then were saccharified with a beta-amylase enzyme, then filtered and evaporated as in Example. Limit dextrin products were obtained.
- This Example describes a scale-up pilot production of beta-limit dextrin.
- a commercial yellow dent starch available from Grain Processing Corporationof Muscatine, Iowa (B200) was slurried to a solids levels of 15% dsb and a pH of 3.5 with hydrochloric acid.
- the slurry was fed at a rate of 2 gpm through a Hydroheater jet Series M103 AS at a pressure of 60 psi and a temperature of 300° F.
- the post-jet residence time was 7.5 minutes resulting in a primary liquefact of a Shell Cup viscosity (Noreross Corp.) of 25 cp.
- the pH of the liquefact was continuouly adjusted to 5.5 with soda ash and cooled through a heat exchanger to 140° F.
- the liquefact was dosed with Spezyme BBA (Genencor International, Inc.) at a level of 0.05% dsb and converted at temperature through an 8-stage plug flow reactor with continuous agitation and a total residence time of eight hours.
- the saccharified product was clarified by passing the product through a NIRO Model-C ceramic filtration unit with a 19-element Memberlox, 0.8 ⁇ m ceramic bundle.
- the clarified permeate was them ultrafiltered through a NIRO Model-U ultrafiltration unit containing De Sal G-50 membranes. Beta-limit dextrin was recovered from ultrafilter retentate in each case.
- the saccharified solution proir to centrifugation from Example 2 was held at 130° F. for 18 to 24 hours. This hold time was necessary for the slow, complete formation of amylose crystals.
- This saccharified mixture was then pre-filtered through a minimal microfilter of porosity 0.1 of 0.8 micron (U.S. Filter ceramic membranes). The filtration was performed at temperatures not greater than 140 ° F. to meantain the insoluble retrograded amylose.
- the filter pore size was selected to produce maximum flux with minimum turbidity in the permeate. For a process using 15% dry solids starch feed at pH 3.5, a 0.8 micron filter will adequately clarify the feed material.
- the retentate from the pre-filtration was enriched in the amylose faction and the permeate contained maltose and beta-limit dextrin.
- Analysis of the amylose crystals were of a size between 1 and 20 microns. The crystal size distribution appears to broaden and decrease in size as the process increases in solids and decreases in pH. At a 25% solids content and pH of 3.0, a 0.1 micron filter is necessary for minimal clarification.
- This Example illustrates that various membranes may be used in the separation of limit dextrin from the product formed upon enzymatic saccharification.
- a beta-limit dextrin product was obtained from the retantate in each case.
- Maltose syrup was prepared as described in Example 2 using a 15% dsb starch feed. Three compositions were evaluated, including the ultrafilter feed material that contained 65% maltose and 35% limit dextrin (the “65/35 material”), the ultrafilter permeate material that contained 95% maltose and 5% limit dextrin (the “95/5 material”), and a blend of these materials that contained 90% maltose and 10% limit dextrin (the “ 90 / 10 material”). These solutions were spray dried on a Yamoto-Ohkawara Spray Dryer DL- 41 with a 2850-SS nozzle and a 65-5 SS orifice.
- the ultrafilter feed material that contained 65% maltose and 35% limit dextrin
- the ultrafilter permeate material that contained 95% maltose and 5% limit dextrin
- the 90 / 10 material a blend of these materials that contained 90% maltose and 10% limit dextrin
- Ultrafilter and microfilter retentates from Example 5 were diafiltered on an ultrafilter to remove all permeable material.
- Samples both the diafiltered retentates and the crude saccharified liquor were analyzed by aqueous gel permeation chromatography using a modification of the method taught in L.A. Bello-Parez et al., J. Cereal Sci ., 27 (1998) 267-68, which involves DMSO extraction.
- a Waters 515 pump connected to a # X PL-Aquagel-OH mixed 8 ⁇ m column with a separation range of 100 to 10,000,000 Daltons was used. Detection of separated material was done using a Viscotec T ⁇ circumflex over ( ) ⁇ Dual detector in parallel with a Water 2410127 detection. Data was analyzed with the Viscotec GPC TrisecTM software.
- Sample 8A was the crude non-microfiltered saccharified material.
- Sample 8B was the retentate from a 0.8 ⁇ m microfiltration with subsequent diafiltration on an ultrafilter.
- Sample 8C was the permeate from a 0.8 ⁇ m microfiltration, with subsequent diafiltration on a 3000 MWCO membranes.
- Sample # Mn Mw Mz Pd 8A 171000 1671000 4822000 9.77 8B 39000 51000 65100 1.3 8C 8630 28400 55800 3.29
- the invention provides a process for the preparation of dextrins from starch.
- the process of the invention can be simple and inexpensive to perform, and yields a dextrin with numerous desirable properties.
- the dextrins can have a high molecular weight.
- the dextrins are soluble and are stable to haze formation.
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Abstract
Dextrins are prepared by hydrolyzing starch with an enzyme that consists essentially of a beta-amylase enzyme. The product prepared thereby will include a dextrin, such as beta-limit dextrin. Upon ultrafiltration of this product, a dextrin-rich fraction may be recovered. If desired, the dextrin-rich fraction may be further purified via diafiltration. Retrograded amylose may be separated from the product of enzymatic hydrolysis.
Description
- This application claims priority to prior provisional application Serial No. 60/185,474, the entire contents of which are hereby incorporated by reference.
- This invention is in the field of oligosaccharides, and in particular, the invention pertains to the preparation of a high molecular weight dextrin product.
- Certain enzymes, known as beta-amylase enzymes, are known to act on starch to produce low molecular weight species, typically maltose, and high molecular weight species, known as dextrins. With the exception of so-called waxy (corn) or glutinous (rice) starches, most starches found in nature are composed of a mixture of amylopectin and amylose. Amylose is a linear molecule which is substantially completely hydrolyzed by beta-amylase enzymes into maltose and glucose. Amylopectin, a branched molecule, is hydrolyzed into maltose and higher molecular weight dextrins, because the beta-amylase enzyme is unable to hydrolyze past the alpha 1-6- branch point in the amylodextrin molecule. If the enzymatic hydrolysis is allowed to proceed to its fullest extent, the remainder of the amylopectin molecule will exist as what is known as beta-limit dextrin.
- Despite the potentially numerous commercial uses for such high molecular weight dextrins, it is believed that no such dextrins are sold commercially in bulk quantities. Present enzymatic processes yield a mixture of products from which it is difficult to resolve such dextrins. The present invention seeks to provide a process for preparing dextrins, such as beta-limit dextrin, in which this difficulty is overcome.
- It has now been found that the treatment of starch with an enzyme that consists essentially of a beta-amylase enzyme, and which is to the substantial exclusion or complete exclusion of alpha-amylase enzymes and de-branching enzymes, will yield a product mixture that includes a dextrin and one or more low molecular weight sugars. The low molecular weight sugar or sugars may be readily separated from the product mixture thus formed via ultrafiltration to yield a dextrin in the retentate. If desired, diafiltration may be used to separate substantially all of the low molecular weight sugars from the dextrin in the retentate.
- Retrograded amylose may be removed from the product mixture prior to ultrafiltration. In accordance with another embodiment, the invention provides a method for preparing retrograded amylose. It is contemplated that this material is useful as “resistant” starch, which is not as digestible as other starches and which therefore may be used as a low- or non-caloric bulking agent.
- The dextrins thus prepared will have a number of desirable properties, including a high solubility and a high molecular weight, with low hazing in solution. Additionally, the dextrins have a very low dextrose equivalent value (DE), and thus are expected to be substantially more stable than carbohydrates of lower molecular weight. As such, it is contemplated that such dextrins may be used in applications such as viscosifiers or as spray drying aids for other carbohydrates (such as maltose). In accordance with another embodiment of the invention, the dextrin is added to maltose in an amount sufficient to assist in spray drying.
- The invention contemplates the production of dextrins, such as beta-limit dextrin, from starch. Any suitable starch may be employed in connection with the invention, and thus, for instance, starches such as corn, rice, wheat, tapioca, maize, potato, barley, oat, and, more generally, any starch suitable for enzymatic hydrolysis may be used in connection with the invention. It is not necessary to use a so-called waxy or glutinous starch in connection with the invention, but to the contrary the starch can have any suitable amylose content, such as an amylose content of 10%, 15%, 20%, 25%, or a greater amylose content. It is contemplated that the starch may be a partially derivatized or otherwise modified starch, or may be a starch that has been thinned or enzymatically treated. For instance, a starch that has been lightly oxidized may be employed.
- The starch should be liquefied via heat, enzymatic, or acid treatment prior to treatment with the beta-amylase enzyme. Preferably, the starch is liquefied via acid treatment, although low amylose starches may require liquefaction only with heat and may be suitably liquefied at the operating temperature of the enzymatic hydrolysis. As disclosed in more detail in copending application serial no. , filed Feb. 28, 2001 by Richard L. Antrim and Clark P. Lee and assigned attorney docket number 203946 and hereby incorporated by reference, it is desirable to recover maltose from the beta-amylase hydrolysis product. Thus, in general, the starch should be liquefied to an extent such that it would remain liquid at the operating temperature of the beta-amylase hydrolysis, but not liquefied to an extent such that the starch is converted to saccharides having so low a degree of polymerization that it is difficult to separate such saccharides from maltose via ultrafiltration. In other words, the degree of liquefaction should be such that, upon enzymatic hydrolysis with the beta-amylase enzyme, the combined content of glucose and oligosaccharides in the DP 3- 10 range does not exceed about 10%, and preferably does not exceed about 5%. It has been found acceptable to liquefy the starch to a dextrose equivalent (DE) value of about 2, as measured via conventional techniques. Generally, the DE of the starch should be kept below about 1, and thus the DE should range between 0 and about 1, although it may be difficult to measure the DE with precision in this range. For corn starch, it is preferable that the starch is liquefied in an aqueous solution at a liquefaction temperature ranging from about 220° F. to about 320° F., and for a time ranging from about 5 minutes to about 30 minutes.
- The starch solids level preferably ranges initially from about 5% to about 30%, more preferably, from about 15% to about 30%. While it is not intended to limit the invention to a particular theory of operation, it is believed that a lower solids content requires a lesser degree of liquefaction to attain the desired viscosity range. In the case of dent corn starch, it has been found that a viscosity window of between 25 and 45 centipoise (Norcross Shell Cup) is optimal. In the case of waxy starches, viscosities outside this range may be acceptable. The pH of the starch slurry should be adjusted to a level sufficient to provide controlled acid hydrolysis of the starch in the presence or absence of catalyzing alpha amylase enzymes; most preferably, under a given set of conditions, the variability of the slurry pH should be no more than +/−0.1 pH, with the precise pH value depending upon the starch source, the slurry solids, and the operational conditions of the liquefaction equipment employed. As a practical matter, the pH can vary more widely while still resulting in a satisfactory product. Preferably, the starch liquefaction is monitored via viscosity and adjusted accordingly.
- In accordance with one embodiment of the invention, the starch is liquefied with an alpha-amylase enzyme to reduce the molecular weight of the starch, thereby reducing the viscosity of the starch and thereby permitting processing at a higher solids level. Suitable commercial liquefying enzymes may be obtained from Genencor International, Inc. or from Novozymes A/S. The dosing level of the alpha-amylase enzyme depends upon the desired solids level and, when maltose is recovered as a co-product, on the desired maltose purity. Desirably, the dosing level ranges from about 0.005% to about 0.02% of a commercial strength enzyme by dry solids basis starch. In this embodiment, the alpha-amylase enzyme preferably is quenched prior to saccharification via any suitable quenching procedure. For instance, when the starch is liquefied at a temperature less then 250° F. and 5 minutes residence, the alpha-amylase enzyme is quenched by reducing the liqefact pH to less than 4.0 and holding at a temperature of from 180 to 190° F. for at least about 15 minutes.
- Upon liquefaction, the liquefact is immediately cooled and the pH is adjusted to the optimum conditions for beta-amylase activity. The starch then is treated with the enzyme under any conditions suitable to result in the hydrolysis of this liquefied starch to form dextrin, and preferably, to form beta-limit dextrin. A preferred enzyme is OPTIMALT BBA, available from Genencor International, Inc. The enzyme may be added in any amount sufficient to achieve this result, but generally, the dosing of the enzyme should be in excess of the minimum viscosity limited conversion of approximately two Genencor OPTIMALT BBA Diastatic Power units per kilogram of starch, the Diastatic Power units being defined as being the amount of enzyme contained in 0.1 ml of a 5% solution of the sample enzyme preparation that will provide sufficient reducing power to reduce 5 ml of Fehling's solution when the sample is incubated with 100 ml of substrate for one hour at 20° C.
- The enzymes should be allowed to act on the starch for any amount of time suitable to form the desired dextrin. Under the preferred reaction conditions discussed hereinabove, the enzymatic action generally is 90% complete within 4 hours. The optimum temperature and pH of the starch hydrolysis will vary depending on the particular beta-amylase enzyme employed, but typically the temperature will range from about 55° C. to about 65° C. and the pH will range from about 5.0 to about 6.0. Optionally, but preferably, the product mixture thus formed is clarified and decolored by any suitable procedure, such as carbon treatment, filtration, centrifugation, and or precipitation, before it is further processed. If the enzyme is allowed to act under optimum conditions for an optimum reaction time, the dextrin content may be greater than about 20%, most of which will comprise beta-limit dextrin. The combined content of glucose and of oligosaccharides in the DP 3-10 range is below about 10%, and preferably is below 5%.
- Retrograded amylose may be found as a by-product of the enzymatic hydrolysis. In accordance with one embodiment of the invention, at least some of the retrograded amylose is separated from the product mixture. For instance, the saccharified solution may be maintained at a temperature below about 14° F. to allow at least a portion of the retrograded amylose to crystallize. The crystallized amylose then may be separated from the saccharified starch mixture by any suitable technique, such as via microfiltration, by which is contemplated separation at a resolution sufficient to separate the retrograded amylose but not sufficient to separate dextrins from low molecular weight sugars in the product mixture. Alternatively, the retrograded amylose may be separated via centrifugation, using any technique known in the art or otherwise found to be suitable. Preferably, the solution prepared upon enzymatic hydrolysis is centrifugated for at least 15 minutes at a relative g force of 3000. The amylose crystals will form a pellet, and the low molecular weight sugars and limit dextrin will remain in the clarified supernate.
- In accordance with one embodiment of the invention, a dextrin is separated from the product mixture. Most preferably, a dextrin product is separated from the product mixture via ultrafiltration of the product mixture, by which is contemplated separation of the beta-limit dextrin from lower molecular weight carbohydrates using a membrane or other suitable separation medium that is effective for this purpose. Generally, a membrane having a molecular weight cut off (MWCO) of 10,000 or less, preferably a MWCO of 5000 or less, is suitable. Suitable commercially available membranes are available from Syndar Filtration and from Osmonics De Sal. Upon ultrafiltration, the retentate typically will include the desired dextrin and some retained low molecular weight sugar (typically maltose). If desired, the retentate may be diafiltered to recover additional maltose by flushing the filter with excess water.
- The product thus formed has numerous desirable properties, including a high molecular weight, for instance, a molecular weight of at least 30,000 Daltons and ranging up to 600,000 Daltons, in some cases higher, depending on the starch used as a starting material. The product further has a low DE (and hence a low reactivity and susceptibility to color change), and, surprisingly, a high degree of solubility with very low hazing, even at high molecular weights. Numerous commercial uses are contemplated, including use as a viscosifier. In such applications, the limit dextrin may be added to a product to be made more viscous, in any amount effective for this purpose. It is further contemplated that the dextrin prepared in accordance with the invention can be added to a solution of maltose or of another carbohydrate, or to a dry maltose or other carbohydrate product in an amount sufficient to enhance spray drying of the solution or dry product. In this embodiment, the dextrin preferably is added in an amount ranging from about 5% to about 70% dry solids basis per dry weight of the maltose or other carbohydrate to form a mixture. The mixture may contain other ingredients besides the carbohydrate to be spray dried and limit dextrin, some of which ingredients also may function to enhance spray drying of the maltose.
- Carbohydrate percentages given herein are expressed on a dry solids basis per total carbohydrate weight.
- The following examples are provided to illustrate the invention, but should not be construed as limiting in scope.
- This example illustrates the preparation of limit dextrin from waxy corn starch.
- Starch from waxy corn was made to an aqueous slurry containing 12 to 15% solids and pH 6.0 to 7.0. The slurry was then liquefied by jet cooking through a Hydro Thermal Jet (Model #M103-030) at 300° F., 60 to 65 psi with a 5 minute residence time at 300° F., 50 to 55 psi. The liquefact was immediately cooled, the pH was adjusted to 5.5 with hydrochloric acid, and dosed with beta-amylase. Using a commercial barley beta-amylase enzyme (Genencor OPTIMALT BBA), dosing was 6.15 DP units per kilogram of starch or 0.05 wt.% grams of liquid enzyme per gram of dry starch. Saccharification was performed at 140° F. for 4 to 24 hours. The solution was then separated by ultrafiltration through a polysulfone 3000 MWCO membrane (Syndar Filtration). The permeate, containing approximately 6% solids, was then evaporated to 70% solids which contained not less than 90% maltose. Beta-limit dextrin was recovered from the retentate.
- This Example illustrates the preparation of beta-limit dextrin from wet mill processed yellow dent corn starch under various liquefaction conditions.
- Dent corn starch was liquefied under various reaction conditions, as given in the following Table.
Residence % Temp Time Example solids pH (F.) (min) 2A 15 3.5 300 5 2B 20 3.0 300 5 2C 20 2.75 300 5 2D 25 2.75 300 5 2E 25 3.0 300 20 2F 25 2.75 300 20 2G 30 3.0 300 20 2H 30 2.75 300 20 2I 30 3.0 300 20 2J 30 3.0 280 20 - The pH of the starch was adjusted where necessary, and then was saccharified with a beta-amylase enzyme as in Example 1. The product was centrifuged to remove retrograded amylose. Sample then were filtered through a 3000 MWCO membrane. Beta-limit dextrin was obtained in each case.
- This Example illustrates the liquefaction of wet mill processed yellow dent corn starch with an alpha-amylase enzyme.
- In two separate runs, starch from wet mill processed yellow dent corn was adjusted to a solids content of 12 or 25% dry solids basis and the pH was adjusted to pH 5.50 with hydrochloric acid. Each starch slurry was then dosed with a liquefying alpha-amylase enzyme (Novo TERMANYL SC) to 0.005-0.02% dry solids basis. The slurries were then jet cooked at 230° to 290° F. with a 5 to 20 minute residence. The alpha-amylase then was quenched by reducing the liquefact pH to less than 4.0 and holding at 180and 190° F. for 15 minutes. The liquefacts then were saccharified with a beta-amylase enzyme, then filtered and evaporated as in Example. Limit dextrin products were obtained.
- This Example describes a scale-up pilot production of beta-limit dextrin.
- A commercial yellow dent starch available from Grain Processing Corporationof Muscatine, Iowa (B200) was slurried to a solids levels of 15% dsb and a pH of 3.5 with hydrochloric acid. The slurry was fed at a rate of 2 gpm through a Hydroheater jet Series M103 AS at a pressure of 60 psi and a temperature of 300° F. The post-jet residence time was 7.5 minutes resulting in a primary liquefact of a Shell Cup viscosity (Noreross Corp.) of 25 cp. The pH of the liquefact was continuouly adjusted to 5.5 with soda ash and cooled through a heat exchanger to 140° F. The liquefact was dosed with Spezyme BBA (Genencor International, Inc.) at a level of 0.05% dsb and converted at temperature through an 8-stage plug flow reactor with continuous agitation and a total residence time of eight hours. The saccharified product was clarified by passing the product through a NIRO Model-C ceramic filtration unit with a 19-element Memberlox, 0.8 μm ceramic bundle. The clarified permeate was them ultrafiltered through a NIRO Model-U ultrafiltration unit containing De Sal G-50 membranes. Beta-limit dextrin was recovered from ultrafilter retentate in each case.
- This Example illustrates crystallization of retrograded amylose from the saccharified starch mixture.
- The saccharified solution proir to centrifugation from Example 2 was held at 130° F. for 18 to 24 hours. This hold time was necessary for the slow, complete formation of amylose crystals. This saccharified mixture was then pre-filtered through a minimal microfilter of porosity 0.1 of 0.8 micron (U.S. Filter ceramic membranes). The filtration was performed at temperatures not greater than 140 ° F. to meantain the insoluble retrograded amylose. The filter pore size was selected to produce maximum flux with minimum turbidity in the permeate. For a process using 15% dry solids starch feed at pH 3.5, a 0.8 micron filter will adequately clarify the feed material.
- The retentate from the pre-filtration was enriched in the amylose faction and the permeate contained maltose and beta-limit dextrin. Analysis of the amylose crystals were of a size between 1 and 20 microns. The crystal size distribution appears to broaden and decrease in size as the process increases in solids and decreases in pH. At a 25% solids content and pH of 3.0, a 0.1 micron filter is necessary for minimal clarification.
- The permeate from the microfiltration step was then ultrafiltered as previously described, yielding beta-limit dextrin.
- This Example illustrates that various membranes may be used in the separation of limit dextrin from the product formed upon enzymatic saccharification.
- Material was processed through the microfiltration steop as described in Examples 4 and 5. Laboratory scale samples were processed on a hollow fiber unit from A/G Technology Corp. (AGT UFP-3-C-4A 3000 NMWC). This filter was run with a Masterflex perisaltic pump (model 7553-70) with a Masterflex head (model 70 15-52) connected with Norprene tubing (model 6402-15). Recirculation rates were adjusted to maintain pressures between 10 psi and 20 psi.
- Large scale sample were tested on commercially available spiral wound elements installed and operated on a NIRO Inc. Model R16 Single Stage UF/RO Pilot Plant. Element evaluted were purchased from Syndar Filtration (PES 3000 MWCO VT2B3838) or Osmonics De Sal (GH/G-10, GK/G-20 and GM/G-50 3838). Operating conditions were those specified by the membranes manufacturer, as follow:
Membrane MWCO Solids AGT 3000 3000 25 Syndar 3000 14 3000 DesalG10 2500 25 DeSal G20 3500 25 DeSal G50 8000 25 - A beta-limit dextrin product was obtained from the retantate in each case.
- This Example demonstrates the ability to spray dry maltose syrups of various compositions.
- Maltose syrup was prepared as described in Example 2 using a 15% dsb starch feed. Three compositions were evaluated, including the ultrafilter feed material that contained 65% maltose and 35% limit dextrin (the “65/35 material”), the ultrafilter permeate material that contained 95% maltose and 5% limit dextrin (the “95/5 material”), and a blend of these materials that contained 90% maltose and 10% limit dextrin (the “90/10 material”). These solutions were spray dried on a Yamoto-Ohkawara Spray Dryer DL- 41 with a 2850-SS nozzle and a 65-5 SS orifice. Operating conditions were; drying air 0.75 m3/min, atomizing air 0.25 Mpa, feed rate 20 ml/min, inlet temperature 300° C. outlet temperature 100° C. The feed solids were from 6% to 30% dsb for the 65/35 and 90/10 material. The 95/5 material melted in the receiver line at these temperatures but was effectively dried at reduced temperature of 200° C. inlet temperature, 80° C. outlet temperature with a resulting moisture content of 2.5%.
- This Exmaple illustrates the characterization of beta-limit dextrin and amylose fractions.
- Ultrafilter and microfilter retentates from Example 5 were diafiltered on an ultrafilter to remove all permeable material. Samples both the diafiltered retentates and the crude saccharified liquor were analyzed by aqueous gel permeation chromatography using a modification of the method taught in L.A. Bello-Parez et al.,J. Cereal Sci., 27 (1998) 267-68, which involves DMSO extraction. A Waters 515 pump connected to a # X PL-Aquagel-OH mixed 8 μm column with a separation range of 100 to 10,000,000 Daltons was used. Detection of separated material was done using a Viscotec T{circumflex over ( )}Dual detector in parallel with a Water 2410127 detection. Data was analyzed with the Viscotec GPC Trisec™ software.
- Sample 8A was the crude non-microfiltered saccharified material. Sample 8B was the retentate from a 0.8 μm microfiltration with subsequent diafiltration on an ultrafilter. Sample 8C was the permeate from a 0.8 μm microfiltration, with subsequent diafiltration on a 3000 MWCO membranes.
Sample # Mn Mw Mz Pd 8A 171000 1671000 4822000 9.77 8B 39000 51000 65100 1.3 8C 8630 28400 55800 3.29 - In Sample 8A, it is believed that the high molecular weights results from aggregation of molecules in the concentrate.
- The limit dextrin and retrograded amylose products prepared in accordance with Example 2 were analyzed by gel permeation chromatography as discussed in Example 8, giving the following results.
Description Sample Mn Mw Mz Pd Amylose 2B 25300 226100 902000 8.94 pellet Amylose 2C 12400 37400 111200 3.02 pellet Amylose 2D 22000 104600 324200 4.75 pellet Amylose 2E 12500 62500 199600 5.00 pellet Amylose 2F 3730 25600 127700 6.86 pellet Amylose 2G 13500 105900 425700 7.84 pellet Amylose 2H 12400 27300 58800 2.20 pellet Limit dextrin 2B 63300 546700 1623000 8.64 Limit dextrin 2C 19000 52300 128300 2.75 Limit dextrin 2D 25200 116700 330500 4.63 Limit dextrin 2E 32300 130300 322700 4.03 Limit dextrin 2F 11900 39800 100100 3.34 Limit dextrin 2G 23800 97200 253300 4.08 Limit dextrin 2H 13600 36200 77900 2.66 - All molecular weight and polydispersity values were calculated by excluding the maltose fraction in the beta-limit dextrin from the integration.
- The following table summarized the effect of liquefaction on the molecular weight of the limit dextrin/amylose fraction from a 3000 MWCO separation. It is noted that the molecular weight of both the limit dextrin and amylose varied in accordance with the liquefaction conditions.
Sample Description Mw Pd Maltose 2F Amylose pellet 25600 6.86 84.8 2H Amylose pellet 27300 2.2 84.9 2C Amylose pellet 37400 3.02 89.9 2E Amylose pellet 62500 5 89.4 2D Amylose pellet 104600 4.75 93.8 2G Amylose pellet 105900 7.84 91.6 2B Amylose pellet 226100 8.94 96 2H Limit dextrin 36200 2.66 84.9 2F Limit dextrin 39800 3.34 84.8 2C Limit dextrin 52300 2.75 89.9 2G Limit dextrin 97200 4.08 91.6 2D Limit dextrin 116700 4.63 93.8 2E Limit dextrin 130300 4.03 89.4 2B Limit dextrin 546700 8.64 96 - It is thus seen that the invention provides a process for the preparation of dextrins from starch. The process of the invention can be simple and inexpensive to perform, and yields a dextrin with numerous desirable properties. The dextrins can have a high molecular weight. The dextrins are soluble and are stable to haze formation.
- While particular embodiments of the invention have been shown, it will be understood that the invention is not limited thereto since modification may be made by those skilled in the art, particularly in light of the foregoing teachings. It is, therefore, contemplated by the appended claims to cover any such modifications as incorporate those features which constitute the essential features of these improvements within the true spirit and scope of the invention. All references and pending applications cited herein are hereby incorporated by reference in their entireties.
Claims (1)
1. A method for spray-drying maltose, comprising: providing a maltose-containing product;
adding to said product an amount of a dextrin effective to enhance the susceptibility of said maltose-containing product to be spray-dried to thereby form a blended product; and
spray-drying said blended product.
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WO2001064934A3 (en) | 2002-02-14 |
EP1196621B1 (en) | 2008-12-31 |
WO2001064934A2 (en) | 2001-09-07 |
US6436678B2 (en) | 2002-08-20 |
EP1196621A2 (en) | 2002-04-17 |
US20020012973A1 (en) | 2002-01-31 |
DE60137183D1 (en) | 2009-02-12 |
ATE419374T1 (en) | 2009-01-15 |
US20030134394A1 (en) | 2003-07-17 |
US20030113876A1 (en) | 2003-06-19 |
AU2001243338A1 (en) | 2001-09-12 |
WO2001064933A2 (en) | 2001-09-07 |
WO2001064933A3 (en) | 2002-02-14 |
US6670155B2 (en) | 2003-12-30 |
US20010046690A1 (en) | 2001-11-29 |
MXPA01010889A (en) | 2002-06-21 |
AU2001243336A1 (en) | 2001-09-12 |
BR0104706A (en) | 2002-01-15 |
CA2368501C (en) | 2007-11-13 |
CA2368501A1 (en) | 2001-09-07 |
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