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Specific interactions of pancreatic amylase at acidic pH. Amylase and the major protein of the zymogen granule membrane (GP-2) bind to immobilized or polymerized amylase.

Regulated secretory proteins are thought to be sorted in the trans-Golgi network towards the secretory granule via acidic aggregation. In the exocrine pancreas, amylase is one of the major zymogens. It is a basic protein of pI 8.6 and does not precipitate in acidic conditions. To identify the mechanism by which amylase aggregates in the acidic cisternae of the pancreatic trans-Golgi network, we have developed an in vitro model in which amylase was fixed to plastic microtiter plates. The fixed amylase was probed with two ligands: amylase itself and GP-2, the major protein of the zymogen granule membrane. Biotinylated amylase bound to fixed amylase in a strict pH-dependent manner with optimal binding between pH 5.0 and 5.7. The affinity of binding was in the nanogram range (Kd approximately 20.0 ng/mL) at pH 5.5. Acid binding of amylase was not reversible by incubation at neutral pH, nor could it be displaced by native amylase. GP-2 binding to fixed amylase was also pH dependent with optimal binding between pH 5.0 and 5.7. As for amylase, it was not reversible by incubation at neutral pH. GP-2 binding sites on fixed amylase appeared to be different from those of biotinylated amylase. While native and biotinylated amylase did not bind to GP-2, polymerized amylase precipitated GP-2 at acidic pH. Taken together these data suggest that slight modifications are sufficient to reveal on the amylase molecule binding sites for GP-2 and for amylase itself. These new binding capacities acquired at acidic pH could be involved in the cascade of reactions that lead to the in vivo formation of the immature secretory granule.

Amylases↗

Comparison of detectability of elevated amylase of serum and urine in pancreatic diseases by two amylase assay methods using starch substrates of different digestive rates to pancreatic amylase.

Detectability of abnormally high serum and urine amylases was investigated on patients with pancreatic diseases using amylase assays with substrates of different digestive rates to pancreatic amylase. Ratios of amylase activities determined by a chromogenic assay using a Remazolbrilliant Blue R starch (RBB assay) to those by Caraway's assay using a Lintner soluble starch (R/C ratio) were calculated on duodenal and salivary amylases obtained from 16 subjects undergoing a pancreozymin-secretin test. The R/C ratio of the duodenal amylase (M +/- SD = 0.56 +/- 0.12) was significantly higher (p less than 0.01 by F test) than that of the salivary amylase (M +/- SD = 0.36 +/- 0.10). Detectability of above-normal values of serum and urine amylases were compared with two assays in 77 pancreatic patients. The value for serum and urine amylases determined by the RBB and Caraway's assays exceeded the upper limit of normal in 37 and 58% by the RBB assay and 24 and 26% by Caraway's assay, respectively. Degrees of abnormality (ratio of the observed to the upper normal value) in serum and urine amylases were also significantly higher (p less than 0.05 for serum and p less than 0.01 upper for urine) by the RBB assay than by Caraway's assay. The RBB assay was more sensitive than Caraway's assay in detecting elevation of pancreatic amylase in serum and urine.

Amylases↗

Specific inhibition of insect alpha-amylases: yellow meal worm alpha-amylase in complex with the amaranth alpha-amylase inhibitor at 2.0 A resolution.

BACKGROUND: alpha-Amylases constitute a family of enzymes that catalyze the hydrolysis of alpha-D-(1,4)-glucan linkages in starch and related polysaccharides. The Amaranth alpha-amylase inhibitor (AAI) specifically inhibits alpha-amylases from insects, but not from mammalian sources. AAI is the smallest proteinaceous alpha-amylase inhibitor described so far and has no known homologs in the sequence databases. Its mode of inhibition of alpha-amylases was unknown until now. RESULTS: The crystal structure of yellow meal worm alpha-amylase (TMA) in complex with AAI was determined at 2.0 A resolution. The overall fold of AAI, its three-stranded twisted beta sheet and the topology of its disulfide bonds identify it as a knottin-like protein. The inhibitor binds into the active-site groove of TMA, blocking the central four sugar-binding subsites. Residues from two AAI segments target the active-site residues of TMA. A comparison of the TMA-AAI complex with a modeled complex between porcine pancreatic alpha-amylase (PPA) and AAI identified six hydrogen bonds that can be formed only in the TMA-AAI complex. CONCLUSIONS: The binding of AAI to TMA presents a new inhibition mode for alpha-amylases. Due to its unique specificity towards insect alpha-amylases, AAI might represent a valuable tool for protecting crop plants from predatory insects. The close structural homology between AAI and 'knottins' opens new perspectives for the engineering of various novel activities onto the small scaffold of this group of proteins.

Animals↗

Isolation and characterization of alpha-amylase messenger RNA from bank vole parotid glands. Evidence for two separate messenger RNAs coding for amylase and an amylase-related protein.

Bank vole saliva contains two glycogen-precipitable proteins, both of which show affinity for the alpha-amylase inhibitor cycloheptaamylose. One of these proteins, amylase, has a molecular weight of 55,000, judged from dodecylsulphate/acrylamide gel electrophoresis. The other has an apparent molecular weight of 59,000 and has no amylase activity. We report here that tryptic peptide maps as well as amino-acid composition analyses indicate extensive homology between the two proteins. We have also isolated total poly(A)-containing mRNA from amylase-rich bank vole parotid glands. These mRNAs were translated in the presence of [35S]methionine in an mRNA-dependent cell-free translation system from rabbit reticulocyte lysate. The radioactive translation products were examined by dodecylsulphate/polyacrylamide gel electrophoresis. Two major translation products with apparent molecular weights of approximately 56,500 and 60,500, respectively, were further characterized by tryptic peptide analyses. Our data indicate that the 56,500-Mr product is the biosynthetic precursor of amylase, whereas the 60,500-Mr translation product is a precursor of the 59,000-Mr amylase-like protein. Both precursors appear to contain extra peptide material, presumably as amino-terminal 'pre' or 'signal' peptides, in analogy with that found for other precursors of secretory proteins. Thus, amylase and the 59,000-Mr protein, although very similar, are translated from two separate mRNAs. These two messengers sediment in a sucrose gradient at about 17-S, corresponding to lengths of about 1,800 nucleotides.

Amino Acids↗

[Amylase in serum, amylase excretion and the amylase-creatinine-ratio. Individual variation and diagnostic specifity (author's transl)].

The amylase activity in serum, the amylase excretion and the amylase-creatinine-ratio was investigated in 25 volunteers monthly for one year and daily for two weeks. The intraindividual variation of the amylase-activity in serum showed only small oscillations. The large refernce value of the group and the need to use individual reference values prefer the 24 hour amylase excretion as a diagnostic tool. The amylase-creatinine-ratio showed individual and seasonal large variations. Therefore the ratio is not suitable for diagnostic questions.

Adult↗

Adaptive significance of amylase polymorphism in Drosophila--VI. Properties of two amylase variants and the effect of food components on amylase activity in Drosophila subobscura.

1. Properties of amylase from two D. subobscura strains homozygous for two different amylase variants (AmyS and AmyF) were determined. 2. Amylase of both strain adults showed a pH optimum of 7.8. 3. The AmyF enzyme showed a higher thermostability. 4. They differed in both maximum activity and Michaelis constant (Vmax of 6.25 and 3.45, Km of 0.7% and 0.42% starch for AmyS and AmyF, respectively). 5. The effect of different feeding conditions in amylase activity in the above Drosophila strains was also studied. Amylase activity was always detected but to a different level depending on diet composition.

Adaptation, Physiological↗

Adaptive significance of amylase polymorphism in Drosophila. X. Analysis of alpha-amylase activity of two amylase variants in individual Drosophila subobscura flies.

Experiments were designed to estimate the variation of alpha-amylase activity in Drosophila subobscura individuals homozygous for AmyS and AmyF alleles at the Amy locus. The measurements of enzyme activities in six groups of male progenies determined in each individual have shown that degree of variation differs between S and F strains. Variability of amylase activity among male progenies of S strain was substantially greater, which also had significantly higher specific amylase activity than in F strain. The analysis of amylase activity variance showed that this variance among the males is 40 times, and among the females 2.7 times smaller in F than in S strain.

Adaptation, Biological↗

Studies on the substrate specificity of Taka-amylase A. XII. Investigation of the active site of Taka-amylase A by examining the properties of p-phenylazobenzoyl Taka-amylase A.

1. When p-phenylazobenzoyl Taka-amylase A (PhAB-TAA) was incubated at pH 6.5 with hydroxylamine for 3 hr at 20degrees, some of the p-phenylazobenzoyl residues that had been introduced into Taka-amylase A (TAA) [1, 4-alpha-D-glucan glucanohydrolase, EC 3.2.1.1, Aspergillus oryzae] were liberated as a hydroxamic acid, and the activity pattern of PhAB-TAA changed to that of intact TAA. This result suggested that the p-phenylazobenzoyl residues liberated had been bound to the tyrosyl residue located near the active site in the enzyme. 2. The transferase action of TAA or PhAB-TAA was studied using phenyl alpha-maltoside as a substrate and maltotritol as an acceptor. Unlike intact TAA, PhAB-TAA was not able to transfer the maltose residue to maltotritol, and this suggested that the p-phenylazobenzoyl residue was located near one of the aglycone-binding subsites, causing steric hindrance.

Amylases↗

Some aspects of the mechanism of complexation of red kidney bean alpha-amylase inhibitor and alpha-amylase.

Bovine pancreatic alpha-amylase binds 1 mol of acarbose (a carbohydrate alpha-amylase inhibitor) per mol at the active site and also binds acarbose nonspecifically. The red kidney bean alpha-amylase inhibitor-bovine pancreatic alpha-amylase complex retained nonspecific binding for acarbose only. Binding of p-nitrophenyl alpha-D-maltoside to the final complex of red kidney bean alpha-amylase inhibitor and bovine pancreatic alpha-amylase has a beta Ks (Ks') value that is 3.4-fold greater than the Ks (16 mM) of alpha-amylase for p-nitrophenyl alpha-D-maltoside alone. The initial complex of alpha-amylase and inhibitor apparently hydrolyzes this substrate as rapidly as alpha-amylase alone. The complex retains affinity for substrates and competitive inhibitors, which, when present in high concentrations, cause dissociation of the complex. Maltose (0.5 M), a competitive inhibitor of alpha-amylase, caused dissociation of the red kidney bean alpha-amylase inhibitor--alpha-amylase complex. Interaction between red kidney bean (Phaseolus vulgaris) alpha-amylase inhibitor and porcine pancreatic alpha-amylase proceeds through two steps. The first step has a Keq of 3.1 X 10(-5) M. The second step (unimolecular; first order) has a forward rate constant of 3.05 min-1 at pH 6.9 and 30 degrees C. alpha-Amylase inhibitor combines with alpha-amylase, in the presence of p-nitrophenyl alpha-D-maltoside, noncompetitively. On the basis of the data presented, it is likely that alpha-amylase is inactivated by the alpha-amylase inhibitor through a conformational change. A kinetic model, in the presence and absence of substrate, is described for noncompetitive, slow, tight-binding inhibitors that proceed through two steps.

Animals↗

Simultaneous study of the metabolic turnover and renal excretion of salivary amylase- 125 I and pancreatic amylase- 131 I in the baboon.

The metabolic turnover of salivary and pancreatic amylase was studied in the baboon, an animal with a serum amylase level and renal clearance of amylase similar to man. Purified amylase was electrolytically iodinated. Although iodinated and uniodinated amylase had similar gel filtration, electrophoretic, enzymatic, glycogen precipitation characteristics, the labeled enzyme was cleared less rapidly by the kidney than was the unlabeled material. However, urinary iodinated amylase which had been biologically screened by the kidney had a renal clearance and serum disappearance rate indistinguishable from unlabeled amylase and thus can serve as a tracer in metabolic turnover studies. Administration of a mixture of salivary amylase-(125)I and pancreatic amylase-(131)I made it possible to simultaneously measure the serum disappearance and renal clearance of these two isoenzymes. The metabolic clearance of both isoenzymes was extremely rapid with half-times of about 130 min. This rapid turnover of serum amylase probably accounts for the transient nature of serum amylase elevation which frequently occurs in pancreatitis. Pancreatic amylase-(131)I was consistently cleared more rapidly (mean clearance ratio: 1.8) by the kidney than was salivary amylase-(125)I. This more rapid renal clearance of pancreatic amylase may help to explain the disproportionate elevation of urinary amylase relative to serum amylase observed in pancreatitis.

Amylases↗

Hybrid alpha-amylases produced by the transformants of Bacillus subtilis. III. A possible mechanism of formation of hybird alpha-amylases.

Alpha-Amylases (NA64 and NA20) produced by the representative transformants Bacillus subtilis NA64 and NA20 were hybrid enzymes between the two parental alpha-amylases (NAT and MAR) produced by the DNA donor strain of Bacillus natto IAM 1212 and the DNA recipient strain of B. subtilis 6160, a derivative of B. subtilis 168. In order to elucidate a possible mechanism of formation of the hybrid alpha-amylases, 14C-labeled alpha-amylase (SAC) produced by B. subtilis var. amylosarcchariticus, [3H]lysine- and [3H]arginine-labeled alpha-amylases (MAR, NA64, NA20, NAT and SAC), [3H]lysine-labeled alpha-amylase (SAC) and [3H]glucosamine-labeled alpha-amylase (NA64) were purified through ammonium sulfate precipitation, carboxy-methylcellulose and DEAE-Sephadex A-50 column chromatography and immunoprecipitation with rabbit antiserum against alpha-amylase (SAC). Peptide compositions of the tryptic digests from the labeled alpha-amylases were analyzed by double-label AG 50W-X2 column chromatography. On the other hand, amino- and carboxy-terminal amino acid residues of unlabeled alpha-amylases (MAR, NA64, NA20 and NAT) were analyzed. Based on these results, the possibility of DNA recombination events in the alpha-amylase structure gene and on the previous results, we attempted to estimate possible peptide arrangements for the four alpha-amylases (MAR, NA64, NA20 and NAT) and possible recombination regions to form the hybrid enzymes introduced by the DNA-mediated transformation of B. subtilis 6160.

Amino Acids↗

Purification and characterization of alpha-amylase from rat pancreatic acinar carcinoma. Comparison with pancreatic alpha-amylase.

alpha-Amylase was purified to apparent homogeneity from normal pancreas and a transplantable pancreatic acinar carcinoma of the rat by affinity chromatography on alpha-glucohydrolase inhibitor (alpha-GHI) bound to aminohexyl-Sepharose 4B. Recovery was 95-100% for both pancreas and tumour alpha-amylases. They were monomeric proteins, with Mr approx. 54000 on SDS/polyacrylamide-gel electrophoresis. Isoelectric focusing of both normal and tumour alpha-amylases resolved each into two major isoenzymes, with pI 8.3 and 8.7. Tumour-derived alpha-amylase contained two additional minor isoenzymes, with pI 7.6 and 6.95 respectively. All four tumour isoenzymes demonstrated amylolytic activity when isoelectric-focused gels were treated with starch and stained with iodine. Two-dimensional electrophoresis, on SDS/10-20%-polyacrylamide-gradient gels after isoelectric focusing, separated each major isoenzyme into doublets of similar Mr values. Pancreatic and tumour-derived alpha-amylases had similar Km and Ki (alpha-GHI) values, but the specific activity of the tumour alpha-amylase was approximately two-thirds that of the normal alpha-amylase. Although amino acid analysis and peptide mapping with the use of CNBr, N-chlorosuccinimide or Staphylococcus aureus V8 proteinase gave comparable profiles for the two alpha-amylases, tryptic-digest fingerprint patterns were different. Antibodies raised against the purified pancreatic alpha-amylase and tumour alpha-amylase respectively showed only one positive band on immunoblotting after gel electrophoresis of crude extracts of rat pancreas and carcinoma, at the same position as that of the purified enzyme. More than 95% of the alpha-amylase activity in the pancreas and in the tumour was absorbed by an excess amount of either antibody, indicating that normal and tumour alpha-amylases are immunologically identical. The presence of additional isoenzymes in the carcinoma, and dissimilarity of tryptic-digest patterns, may reflect an alteration in gene expression or in the post-translational modification of this protein in this heterogeneously differentiated transplantable pancreatic acinar carcinoma.

Amino Acids↗

Construction of a plasmid used for the expression of a sevenfold-mutant barley beta-amylase with increased thermostability in Escherichia coli and properties of the sevenfold-mutant beta-amylase.

To increase the thermostability of beta-amylase, seven kinds of single-mutant plasmids were constructed with an expression vector of barley beta-amylase by mutagenesis. The remaining activity versus temperature curves were used to determine the temperatures (T50) at which 50% of the initial activity was lost during a 30-min heating period. These mutations increased the T50 values by amounts ranging from 0.8 to 3.2 degrees C. To express the sevenfold-mutant beta-amylase in Escherichia coli, plasmid pB927 was constructed. E. coli harboring plasmid pB927 produced sevenfold-mutant beta- amylase. The T50 value of purified sevenfold-mutant beta-amylase (69.0 degrees C) was higher than that of not only the original recombinant beta-amylase (57.4 degrees C) by 11.6 degrees C but also soybean beta-amylase (63.2 degrees C) by 5.8 degrees C. The intragenic amino acid replacements were found to have simple additive effects on the thermostability of beta-amylase. The sevenfold-mutant beta-amylase was found to be stable at pHs up to 12.5, while the original recombinant beta-amylase was unstable at pHs above 9.5. The data obtained from kinetics studies suggested that the sevenfold-mutant beta-amylase acquired enhanced thermostability, but its function as a beta-amylase remained unchanged.

Base Sequence↗

Expression in Escherichia coli of cDNA encoding barley beta-amylase and properties of recombinant beta-amylase.

To express the cloned beta-amylase cDNA in Escherichia coli under control of the tac promoter, a plasmid pBETA92 was constructed. The plasmid consisted of 6312 bp. An extract of E. coli JM109 harboring pBETA92 had beta-amylase activity that produced beta-maltose from soluble starch. The enzyme production started in the logarithmic phase, increased linearly, and reached a maximum after 12 h. The recombinant barley beta-amylase gave two major (pI 5.43 and 5.63) and four minor (pI 5.20, 5.36, 5.80, and 6.13) activity bands on isoelectric focusing, and their pIs didn't change throughout the incubation. But Western blot analysis found that one beta-amylase having a molecular weight of about 56,000 was synthesized. The recombinant beta-amylase was purified from the cells by consecutive column chromatography. The purified enzyme gave a single band of protein on SDS-PAGE but showed heterogeneity on isoelectric focusing. The N-terminal amino acid sequence showed that the recombinant beta-amylase lacked four amino acids at positions 2-5 (Glu-Val-Asn-Val) when compared with the presumed amino acid sequence of barley beta-amylase. Therefore, the recombinant beta-amylase consisted of 531 amino acids, and its molecular weight was calculated to be 59,169. The N-terminal amino acid sequence of the recombinant beta-amylase and the nucleotide sequence of the junction position in plasmid pBETA92 indicated that GTG (Val-5 in the case of barley beta-amylase) at positions 27-29 from the SD sequence (AGGA) was the translation initiation codon. The properties of the recombinant beta-amylase were almost the same as those of barley beta-amylase except for the pI and the Km values for maltohexaose and maltoheptaose.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Expression of alpha-amylase gene in rat liver: liver-specific amylase has a high affinity to glycogen.

The reactivity of rat liver alpha-amylases with maltotriose (G3), maltopentose (G5) and glycogen has been investigated. Liver amylases were found to be glycosylated and to have a molecular mass of 50 kDa by Western blotting using an anti-human salivary amylase antibody. The glycosylated liver amylases were found to be capable of G3- and G5-hydrolysis and of glucose formation, as demonstrated by thin-layer chromatography. When the amylase preparation was exposed to different concentrations of glycogen and run on a cellulose acetate membrane, the mobilities of rat liver amylases significantly decreased with tailing directly from the point of origin. In contrast, rat salivary amylases were not so much. These results indicate that rat liver amylases have a strong affinity to glycogen. We confirmed the expression of liver-specific amylases in rat liver by reverse transcriptional-polymerase chain reaction (RT-PCR); PCR products showed one band of an expected size of 474 bp using primers tested in the present study. A partial nucleotide sequence was then determined. When compared with the gene of mouse liver amylase, the substitution of 26 bases out of 434 bases was elucidated. The present data demonstrate the presence of liver-specific amylases in rats.

Animals↗

Radioimmunoassay for rat pancreatic alpha-amylase and the effect of Phe-Met-Arg-Phe-amide on amylase secretion in the isolated perfused rat pancreas.

In this study a radioimmunoassay was developed to measure secreted amylase from the isolated perfused rat pancreas. Using Sephadex G-75 gel chromatography, rat pancreatic amylase was purified to a single migrating protein band as determined by SDS polyacrylamide gel electrophoresis. Specificity of a rat pancreatic amylase antiserum, raised in rabbits, was determined using immunodiffusion, immunoelectrophoresis, and immunoblotting techniques. Secreted amylase concentrations, obtained using the radioimmunoassay, were not significantly different than those measured with the amylase enzyme assay. The rat pancreatic amylase radioimmunoassay was used to measure the amylase secretion in the isolated perfused rat pancreas. Phe-Met-Arg-Phe-amide (FMRF-NH2) immunoreactivity has been shown to be co-localized with pancreatic polypeptide in the rat pancreatic islet, and evidence suggests that islet peptides modulate amylase secretion from the exocrine pancreas. In the present study, FMRF-NH2 significantly (p less than 0.05) suppressed cholecystokinin (CCK)-stimulated amylase secretion by 55%. The average pancreatic amylase secretion in response to CCK was 10.89 +/- 2.0 micrograms/ml/min (n = 6); with the addition of FMRF-NH2, CCK-stimulated amylase secretion was reduced to 4.79 +/- 1.6 micrograms/ml/min (n = 6). These results are consistent with the insuloacinar hypothesis in that an FMRF-NH2-like substance in the islet may act to modulate the exocrine pancreas.

Animals↗

Immunochemical studies on alpha-amylase. 3. Immunochemical relationships among amylases from various microorganisms.

Sirishinha, Stitaya (University of Rochester School of Medicine and Dentistry, Rochester, N.Y.), and Peter Z. Allen. Immunochemical studies on alpha-amylase. III. Immunochemical relationships among amylases from various microorganisms. J. Bacteriol. 90:1120-1128. 1965.-Immunochemical relationships among amylases obtained from a selected group of microorganisms were examined, and a cross-reaction was detected between the alpha-amylases of Bacillus stearothermophilus and B. subtilis. Immunodiffusion and quantitative precipitin studies, as well as cross-neutralization tests, indicate that B. stearothermophilus alpha-amylase reacts with a portion of antibody present in antisera to crystalline B. subtilis alpha-amylase. Amylases from these two species thus have some aspects of structure in common. Limited data obtained by immunodiffusion suggest that groupings which confer cross-reactivity to the B. stearothermophilus enzyme are lost after exposure to mercaptoethanol in the presence of ethylenediamine-tetraacetate, followed by treatment with iodoacetamide. With the antisera employed and within the concentration range examined, no immunochemical cross-reaction was observed among amylases from Aspergillus oryzae, B. subtilis, B. polymyxa, B. macerans, Pseudomonas saccharophila, and Euglena sanguinis. Immunoelectrophoresis of partially purified B. stearothermophilus alpha-amylase by use of antiserum to the crude enzyme, together with localization of amylase activity in immunoelectrophoretic plates, suggests that B. stearothermophilus alpha-amylase is antigenic in the rabbit.

Amylases↗

Amylase activity and fast-migrating amylase isoenzymes in serum and cyst fluid from patients with ovarian neoplasms.

160 patients with various ovarian tumors were studied to establish whether total amylase activity and the occurrence of fast migrating amylase isoenzymes in serum could serve as indicators of ovarian cancer. It was found that patients with benign and malignant ovarian tumors could not be classified by means of total amylase activity. Electrophoretic separation of the amylases revealed fast-migrating forms in serum from 10 of 47 patients with malignant ovarian neoplasms; 8 of these 10, and altogether 19 of the 47 patients had a serous cystadenocarcinoma. Two of the 109 patients with benign ovarian tumors also showed the pattern with fast-migrating amylases; both of them had a serous cystadenoma. Four patients with borderline tumors showed normal amylase patterns. Tumor origin of these fast-migrating amylase forms in serum was substantiated by 1) amylase reactive cells detectable in tumor tissue, and 2) surgical removal of tumor followed by complete disappearance of the fast-migrating amylase forms in serum. Normal serum amylase patterns do not exclude the presence of a malignant ovarian tumor, but occurrence of these abnormal amylase forms in serum may indicate that an ovarian tumor is a cystadenocarcinoma.

Amylases↗