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Free sugar fraction of the amylose-related mutants of maize.

The free sugar fraction of normal and amylose-related mutants of maize has been studied. The mutant waxy, characterized by a starch deprived of amylose, does not differ from the normal maize so far as free sugars are concerned. We report, however, the presence of maltose in waxy extracts, a disaccharide otherwise supposed to be absent in this genotype. Three high-amylose mutants (amylose extender, dull, and sugary-2) can be differentiated on the basis of the content of free sugars: dull and sugary-2 enhance amylose synthesis without inducing the presence of starch amylolytic products, while amylose extender accumulates a large quantity of maltose and maltooligosaccharides with a degree of polymerization between 3 and 8. In developing endosperm of amylose extender an abnormal amylolytic activity may be responsible for the observed abnormalities in free sugars and starch characteristics.

Amylose

Amylose-iodine complex. I. Sedimentation behavior.

Sedimentation measurements are reported on solutions of blue amylose-iodine complexes in the range of 0.001 to 0.007% amylose. Amylose fractions B and F2, of weight average molecular weight average molecular weight 4.0 X 10(5) and 3.4 X 10(4), respectively, were used in this study. Iodine complexes of these fractions formed polydisperse solutions of limited solubility and stability. Sedimentation coefficients increased as a function of potassium iodide concentration. Values for fraction B complexes varied from (16.3 +/- 1.0) X 10(-13) at 1.2 X 10(-3) M KI to (57.2 +/- 7.5) X 10(-13) at 8.3 X 10(-3) M KI; values for fraction F2 complexes varied from (10.0 +/- 1.2) X 10(-13) at 1.2 X 10(-13) M KI to (24.8 +/- 3.9) X 10(-13) at 9.5 X 10(-3) M KI. At constant potassium iodide concentration, sedimentation coefficients, within our experimental error of 10 to 15% standard deviation, are independent of amylose concentration. Time dependence of sedimentation coefficient values was observed for solutions either saturated or unsaturated with respect to the iodine-binding capacity of amylose. For iodine-saturated complex solutions, sedimentation coefficients extrapolated to zero potassium iodide concentration were two to three times greater than for the parent amylose. Measurements are evaluated in terms of possible polyelectrolytic charge effects and aggregation. Under conditions used in these experiments, aggregation of amylose-iodide complexes appears to be the mechanism responsible for the large increase in sedimentation coefficients.

Amylose

[Value of the "amylose number" in determination of starch damage].

The author demonstrated column and paper chromatographically that no or very little amylose is extracted when using HAMPEL's method for the colorimetric determination of starch damage ("amylose number"). The actually extracted substances are mainly other starch components which form a violet colour on addition of a dilute iodine solution. Further starch components which form a violet colour on addition of a dilute iodine solution are extracted by rewashing with the different components of HAMPEL's solvent mixture. The most distinct results were obtained with distilled water. It is suggested to rewash the filter residue with distilled water to extract all the damaged starch and to use the combined extracts for the determination. In consideration of the fact that HAMPEL's solvent mixture extracts not only amylose from the damaged starch, the term of "amylose number" should be rejected and replaced by the term of formamide ammonium sulphate sulphosalicylic acid (FAS) method or formamide sodium sulphate sulphosalicylic acid (FNS) method.

Amylose

Amylose-iodine complex. II. Molecular weight estimates.

Ultracentrifugation measurements made by the Archibald method on solutions of amylose-iodine-iodide (AI) complexes, containing 0.003% amylose of weight average molecular weight 4.0 X 10(5) at 3.6 X 10(-3) M KI, yield an apparent molecular weight at the meniscus of 8 X 10(5) when measurements are extrapolated to 1200 rpm. Sedimentation equilibrium measurements at 1200 rpm yield apparent molecular weight at the meniscus of 6 X 10(5) and at the cell bottom of 2.4 X 10(6). Heterogeneity and aggreagation are major features of AI complex solution behavior. Apparent molecular weights increase as a function of increasing potassium iodide concentration and with time. This behavior directly correlates with AI complex sedimentation coefficient behavior previously reported. Molecular weight estimates are of the same order for AI complex solutions saturated and 65-70% saturated with respect to the iodine-binding capacity of amylose. Qualitative estimates of net macroion charge effects upon apparent molecular weights are presented.

Amylose

Multiple attack in porcine pancreatic alpha-amylase-catalyzed hydrolysis of amylose studied with a fluorescence probe.

1. A large fluorescence enhancement of 2-p-toluidinylnaphthalene-6-sulfonate (TNS) observed in the presence of amylose was utilized to monitor quantitatively the time course of porcine pancreatic alpha-amylase [EC 3.2.1.1] (PPA)-catalyzed hydrolysis of amylose with a number-average degree of polymerization of 16.8. 2. The slope of the plot of decrease in the relative fluorescence intensity of the TNS-amylose system (termed as the fluorescence value) versus the number of linkages hydrolyzed (reducing value) (Kondo, H. et al. (1977) Agric. Biol. Chem. 41, 631-634) in the course of PPA-catalyzed hydrolysis was shown to be useful to describe the degree of "multiple attack," which is defined by the number of reattacks on a long chain substrate molecular per one encounter of the enzyme and the substrate. A parameter gamma was defined as the ratio of the reciprocal of the slopes obtained at each pH to that at pH 10.5, where the multiple attack is not operating. 3. The gamma versus pH profile gave an apparent pK value of about 9, indicating that some ionizable groups participate in the multiple attack mechanism. 4. Based on a reaction scheme involving a "sliding" of the substrate molecule on the enzyme, which may contribute to the multiple attack mechanism, besides binding, dissociation, and cleavage steps of the substrate, and on the assumption of the steady state for the enzyme-substrate complex, rate equations were obtained to describe the time course of hydrolysis of a linear substrate. The product distribution with the progress of the reaction can be calculated theoretically, and is dependent on the number of multiple attack and the mode of sliding. The number of multiple attack can be estimated from this distribution, and the fluorescence value can be calculated theoretically by combining the product distribution with the relative efficiency of fluorescence intensity of each maltooligosaccharide (Nakatani, H. et. al. (1977) Biopolymers 16, 2363-2370). By comparing the experimental data with the theoretical ones, it was suggested that the multiple attack occurs through the sliding by maltose unit of the retained fragment on the enzyme, which is one of the fragments produced by the initial cleavage of the substrate molecule. 5. It was found that anions (chloride, bromide, and nitrate ions) which critically affect the enzyme activity have no effect on the degree of multiple attack.

Amylases

Mathematical models for the action of alpha-amylase on amylose.

Mathematical treatments have been developed to describe the action of alpha-amylases on amylose. The treatments are based on the unique properties of the exponential (or most-probable) distribution of molecular weights of the substrate, namely, that (a) the principal averages are invariant to chain-end attack if the product molecules are ignored, and (b) the ratio of the principal averages is invariant to random attack. The relations so developed allow published, qualitative data for the alpha-amylolysis of amylose to be interpreted in a quantitative manner. As a result, it appears that multiple attack is of little or no significance in the action patterns of alpha-amylases, with the exception of those derived from the pancreas.

Amylases

Purification and properties of potato 1,4-alpha-D-glucan:1,4-alpha-D-glucan 6-alpha-(1,4-alpha-glucano)-transferase. Evidence against a dual catalytic function in amylose-branching enzyme.

Q-Enzyme, the enzyme that synthesizes the 1,6-alpha-glucosidic branch linkages of amylopectin, has been purified from potato to near homogeneity. The molecular weight of the enzyme is 85000. The active enzyme is a monomer, with a molar activity at pH 7.0 and 24 degrees C of 15. The energy of activation is 25 kJ/mol below 15 degrees C, changing sharply to 63 kJ/mol above that temperature. Enzyme activity is not affected by Mg2+ or ATP. There are about 11 readily titratable sulfhydryl groups per molecule. The evidence that the enzyme is a single protein entity, without hydrolytic activity towards amylose, contrasts with an earlier report that Q-enzyme consists of two components, a hydrolase with molecular weight 70000, and a transferase with molecular weight 20000. Q-enzyme acts on native and synthetic amyloses to give products resembling amylopectin in terms of average unit chain length, degress of beta-amylolysis and iodine stain. The profiles of the unit chains of these synthetic products are, however, different from that of native amylopectin. Additional branch linkages are introduced by Q-enzyme into potato amylopectin, but the product bears no resemblance to phytoglycogen.

1,4-alpha-Glucan Branching Enzyme

[Isolation and properties of preparations the branching enzyme of muscles, amylose isomerase].

The paper describes a modified method of isolating the branching enzyme of amylose isomerase from muscles and a study of the enzyme activity at different stages of purification. By enzyme fractionation on biogel R-150 and Sepharose 6B the fractions containing different RNA amounts have been isolated. The activity of fractions has been shown to depend on their content of RNA. The paper presents a procedure used to isolate a highly purified fraction of amylose isomerase and its properties (pH and temperature optima, enzyme optimal concentration and Michaelis constant).

1,4-alpha-Glucan Branching Enzyme

Action of amyloglucosidase on oxidised amylose.

The Michaelis constant and maximal velocity of alpha-amylase-free amyloglucosidase decrease with increasing periodate oxidation of amylose. These kinetic features have been explained on the basis of competitive inhibition by the oxidised non-reducing end of the (1 leads to 4)-alpha-D-glucan chain with the active centres of the enzyme. A kinetic model is proposed to demonstrate this special kind of inhibition where the concentration of inhibitor is directly proportional to the substrate concentration. The experimental data fitted this model, and the plots of 1/Km and 1/V against the ratio of oxidised/unoxidised non-reducing end-groups were straight lines.

Amylose

Comparative susceptibility of starch granules of double- and triple-mutants containing amylose-extender, waxy, sugary-1, sugary-2 and dull genes of maize inbred OH43 (Zea mays L.) to amylase.

Starch granules were prepared from 14 double- and 26 triple-mutants containing amylose-extender (ae), 14 double- and 18 triple-mutants containing waxy (wx), 15 double- and 20 triple-mutants containing sugary-1 (su1), 13 double- and 23 triple-mutants containing sugary-2 (su2), and 14 double- and 19 triple-mutants containing dull (du) of maize inbred Oh43 (Zea mays L.). The relative susceptibilities of these starch granules to fungal glucoamylase were determined and the starch granules were examined by scanning electron microscopy. A commercial normal maize starch was used as a control. Starch granules of the double- and triple-mutants containing su1 and su2 were digested two to eight times faster than normal. The ae gene reduced susceptibility and seems to be epistatic to su1 and su2. Starch granules of the double- and triple-mutants containing wx were digested about two times faster than normal and those containing shrunken-2 (sh2) were digested 1.2 to eight times faster than normal. Starch granules of triple-mutant combinations with opaque-2 (o2) showed digestion properties which were comparable to those of their respective monopaque double-mutant counterpart.

Glucan 1,4-alpha-Glucosidase

[Nucleotide composition and digestion by nucleases of RNA from muscle amylose isomerase].

The primary structure of homogeneous low molecular RNA preparation with the sedimentation coefficient 2.5S isolated from amilose isomerase (A1) of muscle (E.C. 2.4.1.18) was analysed. This RNA can be digested by venom phosphodiesterase as well as by pancreatic and T2 RNAases; hence we conclude that the polynucleotide chain of A1 RNA consists of 3.5-phosphodiester bonds common for all RNAs. The nucleotide composition of the RNA was studied by two-dimensional TLC followed by spectrophotometry. The results show that its chain is 31--32 nucleotides long. High content of unusual components (about 30%) and guanine (about 40%) are specific features of this RNA.

1,4-alpha-Glucan Branching Enzyme

Exoenzymic activity of alpha-amylase immobilized on a phenol-formaldehyde resin.

Amylose and amylopectin from two starch sources were partially degraded by alpha-amylase immobilized on a phenol-formaldehyde resin. The degradation products were fractioned by gel-permeation chromatography and high-pressure, liquid chromatography. Two distinct fractions were obtained from tapioca amylose. One is a fragment having a molecular weight exceeding 200,000, and the other consists of oligosaccharides of low molecular weight with a degree of polymerization of 1-8. In contrast, treatment of tapioca amylose with soluble alpha-amylase produces a single fraction, nearly all of which has a molecular weight of less than 35,000, with only traces of small oligosaccharides detectable by high-pressure, liquid chromatography. Even wider differences were observed in degradation products from tapioca amylopectin. Similar activity-patterns were obtained with immobilized and soluble enzyme, using corn amylose and corn amylopectin as substrates. Immobilization of alpha-amylase on the resin apparently restricts the activity of the enzyme to the ends of the starch molecules, making it appear to be limited to exoenzymic activity.

Amylases