Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “AMYLASE”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 361 records · Page 20Linked to original sources

Amylases from aleurone layers and starchy endosperm of barley seeds.

Amylases from incubated aleurone layers or from starchy endosperm of barley seeds (Hordeum vulgare L. cv. Himalaya) were investigated using acrylamide gel electrophoresis and analytical gel filtration with Sephadex G-200. Electrophoresis of amylase from aleurone layers yields seven visually distinct isozymes with an estimated molecular weight of 43,000. Because each isozyme hydrolyzes beta-limit dextrin azure and incorporates calcium-45, they are alpha-amylases. On Sephadex G-200, amylase from the aleurone layers is separated into seven fractions ranging in estimated molecular weights from 45,000 to 3,000. Little or no activity is observed when six fractions are subjected to electrophoresis. Electrophoresis of only the fraction with the estimated molecular weight of 45,000 gave the seven isozymes. The amylases are heat labile and cannot be stabilized by the presence of substrate or by the protease inhibitor, phenylmethylsulfonylfluoride. Electrophoresis of amylase from the starchy endosperm yields nine beta-amylases. Four of these beta-amylases are isozymes with an estimated molecular weight of 43,000. The other five forms of beta-amylase represent molecular aggregates of the four basic beta-amylase monomers. A dimer, a tetramer, and an octamer of beta-amylase can be identified with estimated molecular weights of about 86,000, 180,000 and 400,000, respectively. These estimated molecular weights were confirmed on Sephadex G-200. There are five additional fractions of beta-amylase with estimated molecular weights ranging from 30,000 to 4,000. These fractions are not observed electrophoretically.

Journal Article↗

Changes in alpha-and beta-amylase activities during seed germination of African finger millet.

Changes in alpha- and beta-amylase activities in African finger millet (Eleusine coracana (L) Gaertener) were followed during germination. Germination on a small scale was performed at 15 degrees C for 1-10 days and at 20, 25 and 30 degrees C for 1-8 days. alpha- and beta-Amylase activities in malt crude extracts of germinated finger millet were evaluated spectrophotometrically using chromogenic methods. The highest alpha-amylase activity was exhibited in malt flour of finger millet germinated at 15 degrees C for 9 days and at 20 degrees C for 6 days, while the highest beta-amylase activity was displayed in the malt flour germinated for 5 days at 30 degrees C. Thermo-stability of these enzymes in malt extracts was also evaluated. Malt extracts incubated at 40 and 50 degrees C for up to 4 h retained about 84 and 64% of alpha-amylase activities, respectively. There was a substantial decrease in alpha-amylase activity to more than 90% when malt extracts were incubated at 70 and 90 degrees C for 40 and 10 min, respectively. beta-Amylase was completely inactivated when the crude extract was incubated at 70 degrees C for only 10 min. At pH 5.4, alpha-amylase displayed maximum catalytic activity at around 45 degrees C. Optimum temperature for beta-amylase activity at pH 6.0 was between 50 and 55 degrees C. Activity staining for alpha-amylase was also performed and three bands of activity were found in malt extract, each possibly representing an isozyme of alpha-amylase from finger millet.

Africa↗

Cloning and sequencing of the gene encoding thermophilic beta-amylase of Clostridium thermosulfurogenes.

A gene coding for thermophilic beta-amylase of Clostridium thermosulfurogenes was cloned into Bacillus subtilis, and its nucleotide sequence was determined. The nucleotide sequence suggested that the thermophilic beta-amylase is translated from monocistronic mRNA as a secretory precursor with a signal peptide of 32 amino acid residues. The deduced amino acid sequence of the mature beta-amylase contained 519 residues with a molecular weight of 57,167. The amino acid sequence of the C. thermosulfurogenes beta-amylase showed 54, 32, and 32% homology with those of the Bacillus polymyxa, soybean, and barley beta-amylases, respectively. Twelve well-conserved regions were found among the amino acid sequences of the four beta-amylases. To elucidate the mechanism rendering the C. thermosulfurogenes beta-amylase thermophilic, its amino acid sequence was compared with that of the B. polymyxa beta-amylase. The C. thermosulfurogenes beta-amyulase contained more Cys residues and fewer hydrophilic amino acid residues than the B. polymyxa beta-amylase did. Several regions were found in the amino acid sequence of the C. thermosulfurogenes beta-amylase, where the hydrophobicity was remarkably high as compared with that of the corresponding regions of the B. polymyxa beta-amylase.

Amino Acid Sequence↗

Hormonal control of alpha-amylase gene expression in barley. Studies using a cloned CDNA probe.

Starting with an enriched alpha-amylase mRNA preparation, cDNA was synthesized by reverse transcription and was cloned at the Pst I site of plasmid vector pBR322 by the "G-C tailing" procedure. Clones containing alpha-amylase cDNA sequences were identified among the recombinant clones by in vitro translation of hybrid-selected mRNA followed by immunoprecipitation of translation products with antiserum to alpha-amylase. The longest alpha-amylase cDNA clone isolated was 630 base pairs long and was characterized by digestion with restriction enzymes. Using this clone as a labeled nucleic acid hybridization probe, we observed that multiple bands of DNA with alpha-amylase sequences were present in restriction digests of barley embryo DNA. This indicates the presence of a family of barley alpha-amylase or alpha-amylase-like genes. Analysis of RNA blots with the cloned alpha-amylase hybridization probe indicated that alpha-amylase mRNA is synthesized de novo in barley aleurones after addition of gibberellic acid. The gibberellic acid-induced accumulation of alpha-amylase mRNA is blocked by cycloheximide which suggests the requirement of a newly synthesized protein factor for efficient expression of alpha-amylase gene.

Amylases↗

Amylase in the lung.

Although elevated amylase levels in serum, pleural fluid, and extracts of tumor tissue in primary lung cancer have been reported, electrophoretic and column-chromatographic studies have not revealed the ectopic production of amylase but have merely shown an increase of amylase activity of chiefly the salivary type in these materials. The present study was designed to make clear the nature of the amylase or amylase-like substance in the serum, pleural fluid and tumor extracts, and to determine whether amylase might be produced ectopically in tumor tissues. Our data not only confirmed that the hyperamylasemia in some cases of primary lung cancer was due to an increase in salivary type isoamylases, but also showed that the same isoamylase pattern occurs in serum, pleural fluids, and diseased lung tissue of patients with pneumonia. However, the elution pattern of amylase in these materials in column-chromatography on Sephadex G-75 Superfine was different from that of salivary amylase. On the basis of our observations, it seems reasonable to conclude that the salivary type hyperamylasemia in some cases of primary lung cancer may be due to an increase in the amylase contained in normal lung tissues, resulting from activation and release into the blood stream by some inflammatory process. However, ectopic production of amylase was demonstrated in one particular case of primary lung cancer in which a high amylase content and a peculiar isoamylase were found both in the primary and metastatic lesions.

Amylases↗

Optimization of Bacillus alpha-amylase production by Saccharomyces cerevisiae.

Production of Bacillus amyloliquefaciens alpha-amylase by Saccharomyces cerevisiae using the multicopy plasmid pAAH5 and ways of improving the yields of secreted enzyme were studied. In standard non-buffered medium, alpha-amylase was rapidly inactivated but stabilization of the pH at 6 led to stable accumulation of alpha-amylase in the culture medium. Removal of 1100 bp of the upstream sequence of the ADH1 promoter present on pAAH5 resulted in delayed but increased alpha-amylase production: 29-fold in selective medium, two-fold in non-selective medium. With the original ADH1 promoter, accumulation of alpha-amylase in the medium started to level off before the cultures reached stationary phase and was very low when exponentially growing cells were transferred from glucose to ethanol. This coincided with the appearance of a mRNA larger than the alpha-amylase messenger. With the shortened promoter, the normal-size alpha-amylase mRNA was detected under all growth conditions and alpha-amylase was efficiently secreted into the medium also late in stationary phase and after transfer to ethanol. Highest total yields of alpha-amylase were obtained with the short promoter in non-selective glucose-containing medium; this may be explained by the greater final cell density obtained. However, the production of alpha-amylase per cell mass was higher in ethanol-containing selective medium. Seventy to eighty per cent of the alpha-amylase activity was secreted into the medium independent of the total amount produced.

Bacillus↗

Differential expression of alpha-amylase genes in germinating rice and barley seeds.

Steady-state levels of mRNA from individual alpha-amylase genes were measured in the embryo and aleurone tissues of rice (Oryza sativa) and two varieties of barley (Hordeum vulgare L. cv. Himalaya and cv. Klages) during germination. Each member of the alpha-amylase multigene families of rice and barley was differentially expressed in each tissue. In rice, alpha-amylase genes displayed tissue-specific expression in which genes RAmy3B, RAmy3C, and RAmy3E were preferentially expressed in the aleurone layer, genes RAmy1A, RAmy1B and RAmy3D were expressed in both the embryo and aleurone, and genes RAmy3A and RAmy2A were not expressed in either tissue. Whenever two or more genes were expressed in any tissue, the rate of mRNA accumulation from each gene was unique. In contrast to rice, barley alpha-amylase gene expression was not tissue-specific. Messenger RNAs encoding low- and high-pI alpha-amylase isozymes were detectable in both the embryo and aleurone and accumulated at different rates in each tissue. In particular, peak levels of mRNA encoding high-pI alpha-amylases always preceded those encoding low-pI alpha-amylases. Two distinct differences in alpha-amylase gene expression were observed between the two barley varieties. Levels of high-pI alpha-amylase mRNA peaked two days earlier in Klages embryos than in Himalaya embryos. Throughout six days of germination, Klages produced three times as much high-pI alpha-amylase mRNA and nearly four times as much low-pI alpha-amylase mRNA than the slower-germinating Himalaya variety.

Blotting, Northern↗

Genetic variation in restriction patterns among mouse amylase gene complexes.

The expression of pancreatic amylase in the mouse exhibits pronounced genetic variation. Congenic lines with various amylase complexes on a common C3H/As background have different numbers and forms of isoenzymes. The relative ratio of these isoenzymes may vary, as does the overall production of pancreatic amylase, which in some lines is three- to fourfold higher than in others. DNA from a number of lines was digested with endonucleases and hybridized to an amylase cDNA probe. The restriction patterns from inbred stocks and the corresponding congenic lines are identical, demonstrating that the majority of (if not all) amylase-like DNA sequences is found within the amylase complex. Congenic lines with specific amylase expression, for instance, in enzyme production, show different restriction patterns, whereas three lines with the same amylase phenotype have a uniform pattern. Most of the variation in amylase expression is represented among congenic lines derived from Danish mice. A comparison of such lines with others of remote geographic origin reveals that the restriction patterns of the "Danish" lines have by far the highest degree of resemblance. This observation seems to exclude major rearrangements within the amylase complex as the cause of the differences in enzyme expression, which instead are likely to be due to variation in regulatory elements associated with the active structural amylase genes in the complex.

Amylases↗

Does drainage fluid amylase reflect pancreatic leakage after pancreaticoduodenectomy?

This study tried to determine if drainage fluid amylase reflects pancreatic leakage after pancreaticoduodenectomy and to determine the factors affecting the drainage amylase level. Patients undergoing pancreaticoduodenectomy were recruited. The drainage amylase was measured from postoperative day (POD) 1 to POD 7. Direct evidence of pancreatic leakage was provided by upper gastrointestinal studies using a water-soluble contrast medium and methylene blue dye in the pancreaticogastrostomy group or by pancreaticography with injected contrast medium via an exteriorized pancreatic stent in the pancreaticojejunostomy group on POD 7. A total of 37 patients were recruited. The drainage amylase level was higher than the normal serum amylase (>or= 190 U/L) in more than half of the cases on the initial POD 2 specimen, with a median of 745 U/L on POD 1 and 663 U/L on POD 2. The drainage amylase level was more than three times the normal serum amylase level (>or= 190 x 3 U/L) in 56.8% on POD 1, in 51.4% on POD 2, and in nearly one-third on POD 7 (29.7%). However, no pancreatic leakage occurred in any of the patients with a drainage amylase of >or= 190 U/L. Only one case of pancreatic leakage with a small amount of drainage fluid (10 ml) and low amylase level (74 U/L), was noted. Soft pancreatic parenchyma and a nondilated pancreatic duct were significantly associated with higher drainage amylase levels. In conclusion, biochemical leakage defined by amylase-rich drainage fluid might have no clinical significance and was not necessarily clinical pancreatic leakage following pancreaticoduodenectomy.

Adolescent↗

Comparative studies on electrophoretic mobility and immunogenicity of pancreatic and parotid amylases of rat.

1. The alpha-amylases (1,4-alpha-D-glucan glucanohydrolase, EC 3.2.1.1) of rat serum, urine, pancreas, parotid gland and liver were separated by electrophoresis on a cellulose acetate membrane. They were found to be of three different types: a parotid gland type, a pancreatic type and a liver type. Rat serum and urine contained parotid type amylase only. 2. Antisera were prepared in rabbits against purified rat pancreatic amylase and parotid amylase. In addition to strong reactions between pancreatic amylase and its antiserum and between parotid amylase and its antiserum, a weak cross-reaction was observed between parotid amylase and anti-pancreatic amylaseserum. Anti-parotid-amylase serum gave an immunoprecipitation line with rat serum and urine, but anti-pancreatic-amylase serum did not, indicating that the amylases in serum and urine originate from parotid amylase.

Amylases↗

Effect of estradiol on pancreatic amylase and cholecystokinin binding in ovariectomized guinea pigs.

The effect of estradiol (E2) on amylase content and on basal and stimulated amylase release from the pancreatic acini was examined in relation to its effects on cholecystokinin (CCK)-receptor (R) levels. Guinea pigs were ovariectomized (OVX) and a week later administered either E2 (10 micrograms/kg) (Treated, T) or vehicle (corn oil) (Control, C) 0.2 ml/day s.c. After 7 days of injections, animals were killed, pancreata weighed and basal and stimulated amylase release from pancreatic acini measured. Receptors for CCK were measured on pancreatic membranes. Chronic administration of E2 resulted in a significant decrease in: (1) pancreatic weight (0.96 +/- 0.04, T vs 1.142 +/- 0.046 g, C); (2) total pancreatic DNA content (5.74 +/- 0.37, T vs 6.81 +/- 0.16 mgs, C); (3) total amylase content in pancreata (2081 +/- 307, T vs 3795 +/- 442 I.U., C); (4) absolute value of basal amylase release (6.57 +/- 1.4, T vs 11.8 +/- 1.9 I.U./incubate, C); and (5) absolute value of amylase release stimulated by increasing doses (0.01-1000 nM) of CCK in T vs C animals. On the other hand, the amylase release in response to greater than 0.5 nM of CCK, expressed as a percentage of the total amylase content, was significantly increased in T vs C animals, which may be related to a significant rise in the concentration (fmol/mg protein) of CCK-receptors (629.8 +/- 65.9, T vs 313.4 +/- 92.7 fmol, C). Concentration of DNA/unit pancreatic weight and basal amylase release expressed as a percentage of total content, however, was similar in the C and T guinea pigs, while concentration of amylase and CCK-receptors/unit pancreatic weight remained significantly different in the two groups of animals. These results suggest that E2 may have more than one effect on the pancreas in vivo, including a significant reduction in pancreatic growth and amylase concentration/cell and an up-regulation of CCK-receptors/cell.

Amylases↗

Serum amylase determinations in pediatric patients presenting to the ED with acute abdominal pain or trauma.

The objective of this study was to evaluate the overall impact of serum amylase determinations in the initial management of patients presenting to the pediatric emergency department (ED) with the acute onset of abdominal pain or trauma. All cases of patients younger than 18 years of age who presented to the pediatric ED for whom a serum amylase value was determined during an 18-month period were reviewed. Data were collected retrospectively, including serum amylase concentration, age, gender, presenting complaint, discharge/admission status, diagnosis, and discharge plans or inpatient management to evaluate the impact of serum amylase determinations. Seven hundred twenty-three cases were reviewed during the study period. Six hundred fifty-six patients met study criteria, with 385 serum amylase determinations performed for the evaluation of acute abdominal pain and 271 for acute trauma. Sixty-seven serum amylase determinations were also sent for other reasons. Overall, 12 of 656 study patients had elevated amylase levels (1.8%) during the study period (range, 130 to 2318 U/L). Eight of 271 amylase levels sent to the laboratory for trauma (3.0%), and 4 of 385 sent for abdominal pain (1.0%) were elevated. Overall, serum amylase concentration had no influence on whether or not the patient was admitted to the hospital. Of the 12 patients with elevated amylase levels sent for abdominal pain or trauma, only 2 had their clinical management affected by the serum amylase concentration. In both cases, the patient presented with subacute abdominal pain related to significant abdominal trauma that had occurred 2 to 3 weeks earlier. Both patients showed evidence of pancreatic insult with diagnostic imaging studies.(ABSTRACT TRUNCATED AT 250 WORDS)

Abdominal Injuries↗

Performance evaluation of salivary amylase activity monitor.

In order to quantify psychological stress and to distinguish eustress and distress, we have been investigating the establishment of a method that can quantify salivary amylase activity (SMA). Salivary glands not only act as amplifiers of a low level of norepinephrine, but also respond more quickly and sensitively to psychological stress than cortisol levels. Moreover, the time-course changes of the salivary amylase activity have a possibility to distinguish eustress and distress. Thus, salivary amylase activity can be utilized as an excellent index for psychological stress. However, in dry chemistry system, a method for quantification of the enzymatic activity still needs to be established that can provide with sufficient substrate in a testing tape as well as can control enzymatic reaction time. Moreover, it is necessary to develop a method that has the advantages of using saliva, such as ease of collection, rapidity of response, and able to use at any time. In order to establish an easy method to monitor the salivary amylase activity, a salivary transcription device was fabricated to control the enzymatic reaction time. A fabricated salivary amylase activity monitor consisted of three devices, the salivary transcription device, a testing-strip and an optical analyzer. By adding maltose as a competitive inhibitor to a substrate Ga1-G2-CNP, a broad-range activity testing-strip was fabricated that could measure the salivary amylase activity with a range of 0-200 kU/l within 150 s. The calibration curve of the monitor for the salivary amylase activity showed R2=0.941, indicating that it was possible to use this monitor for the analysis of the salivary amylase activity without the need to determine the salivary volume quantitatively. In order to evaluate the assay variability of the monitor, salivary amylase activity was measured using Kraepelin psychodiagnostic test as a psychological stressor. A significant difference of salivary amylase activity was recognized between the pre-stress and mid-stress periods. This study demonstrated that broad-range salivary amylase activity monitor was developed that could be used with only 5 microl of saliva.

Adult↗

Comparative genomic analysis of the mouse and rat amylase multigene family.

The rat and mouse amylase gene families were characterized using sequence data from the UCSC genome assembly. We found that the rat genome contains one amylase-1 and two amylase-2 genes, lying close to one another on the same chromosome. Detailed analysis revealed at least six additional amylase pseudogenes in the rat genome in the region adjacent to the amylase-2 genes. In contrast, the mouse has one amylase-1 gene and five amylase-2 genes; the latter are tandemly and systematically arranged on the same chromosome and were generated by segmental duplication. Detailed analysis revealed that the mouse has two amylase pseudogenes, located 5' to the five amylase-2 segments. Thus, the amylase genes of mouse and rat tend to be amplified; the sequences of some of them are fixed while others have become pseudogenes during evolution. This is the second report of amylase genomic organization in mammals and the first in the rodents.

Amylases↗

Stress-induced changes in human salivary alpha-amylase activity -- associations with adrenergic activity.

The salivary enzyme alpha-amylase has been proposed to indicate stress-reactive bodily changes. A previous study by the authors revealed marked increases in salivary alpha-amylase following psychosocial stress, indicating a stress-dependent activation of salivary alpha-amylase. Salivary alpha-amylase has been suggested to reflect catecholaminergic reactivity. Our aim was to assess/evaluate a possible relationship between salivary alpha-amylase and adrenergic parameters, i.e. catecholamines, as well as other stress markers. Using an intra-individual repeated measures design, 30 healthy young men underwent the Trier Social Stress Test (TSST), which consists of a mental arithmetic task and free speech in front of an audience and a control condition in randomized order. Salivary alpha-amylase and salivary cortisol as well as plasma catecholamines and cardiovascular activity were repeatedly measured before, during, and after both conditions. Significant differences were found between the stress and the rest condition in salivary alpha-amylase, salivary cortisol, plasma catecholamines, and cardiovascular parameters (heart rate, LF, HF, LF/HF). However, general alpha-amylase responses (area under the curve) were not associated with general responses in catecholamines and cortisol in the stress condition (r smaller than 0.25 for all analyses). Analysis of cardiovascular parameters indicates a positive relationship between amylase and sympathetic tone (LF/HF) during stress. Salivary alpha-amylase is sensitive to psychosocial stress. Since it does not seem to be closely related to other biological stress markers such as catecholamines and cortisol, salivary alpha-amylase may be a useful additional parameter for the measurement of stress.

Adult↗

Airborne levels of alpha-amylase allergens in bakeries.

BACKGROUND: In the baking industry the use of enzymes has increased throughout the 1980s. Several studies have reported sensitization and respiratory disorders among bakery workers caused by enzymes in dough improvers. Fungal alpha-amylase is the most frequently reported cause of allergy. alpha-Amylase allergen exposure levels in the bakery industry, however, have not yet been reported. OBJECTIVE: The main objective of this study was to quantify personal alpha-amylase exposure levels of bakery workers. METHODS: alpha-Amylase allergens were measured in 507 personal samples of airborne dust taken in bakeries by using a newly developed sandwich enzyme immunoassay with affinity-purified polyclonal rabbit IgG antibodies. A cascade impactor was used to estimate the size of dust particles carrying alpha-amylase allergens. RESULTS: The rabbit IgG antibodies used in the assay showed, in immunoblotting with commercially available alpha-amylase, a reaction profile very similar to that of IgE from sensitized bakers. The enzyme immunoassay appeared to be highly specific for fungal amylase. Allergen exposure levels varied considerably among bakery workers, depending on the type of bakery and job category (range, 0 to 40 ng/m3). In confectioneries no alpha-amylase allergens were detected. In other bakeries alpha-amylase exposure was only found for workers directly involved in dough making. Measurements of the particle size distribution in these bakeries showed that alpha-amylase allergens are most likely to be deposited in the nose and ciliated airways. CONCLUSION: This study shows that personal monitoring of fungal amylase allergen exposure in bakeries is possible. This permits the identification of high-risk tasks and allergen sources, as well as the study of exposure-response relationships.

Air Pollutants, Occupational↗

Control of amylase biosynthesis and release in the parotid gland of the rat.

1. Amylase biosynthesis and release in the rat parotid were studied under various conditions. Incorporation of [(3)H]leucine into amylase, extracted from the tissue by immunoadsorbent, was measured and found to be time-dependent and totally inhibited by the protein synthesis inhibitor puromycin. 2. Adrenaline, at a concentration (10mum) that gave maximum stimulation of release, inhibited [(3)H]leucine incorporation into both total protein and amylase. This effect was reversed by phentolamine. 3. Adrenaline (1mum) and isoproterenol (10mum) stimulated biosynthesis of total protein and amylase. These effects were blocked by propranolol, as were the effects on release. Dibutyryl cyclic AMP (2mm) mimicked the effects of isoproterenol and adrenaline (1mum) on both amylase biosynthesis and release. All the above stimulatory effects on amylase biosynthesis were only observed if the tissue was pretreated with effector before pulse-labelling with [(3)H]leucine. 4. Insulin (625muunits/ml initial concentration, 150muunits/ml final concentration) stimulated incorporation of [(3)H]leucine into total protein and amylase when added to the tissue at the same time as the leucine. 5. Carbamoylcholine (10mum) decreased [(3)H]leucine incorporation into total protein and amylase when both were added to the tissue simultaneously, but this effect was prevented by removal of effector and washing the tissue before addition of [(3)H]leucine. 6. Stimulation of beta-adrenergic receptors increased both amylase release and biosynthesis, but stimulation of alpha-receptors can inhibit biosynthesis without inhibiting release. Cholinergic agents can also inhibit amylase biosynthesis, but stimulate release. Insulin at approximately physiological concentration can increase incorporation of leucine into amylase without stimulating release. The system described therefore provides an excellent model for the further investigation of the mechanisms of these diverse effects.

Amylases↗

The cloning and characterization of a second alpha-amylase of A. hydrophila JMP636.

AIMS: The aim of this study was to identify, clone and characterize the second amylase of Aeromonas hydrophila JMP636, AmyB, and to compare it to AmyA. METHODS AND RESULTS: The amylase activity of A. hydrophila JMP636 is encoded by multiple genes. A second genetically distinct amylase gene, amyB, has been cloned and expressed from its own promoter in Escherichia coli. AmyB is a large alpha-amylase of 668 amino acids. Outside the conserved domains of alpha-amylases there is limited sequence relationship between the two alpha-amylases of A. hydrophila JMP636 AmyA and AmyB. Significant (80%) similarity exists between amyB and an alpha-amylase of A. hydrophila strain MCC-1. Differences in either the functional properties or activity under different environmental conditions as possible explanations for multiple copies of amylases in JMP636 is less likely after an examination of several physical properties, with each of the properties being very similar for both enzymes (optimal pH and temperature, heat instability). However the reaction end products and substrate specificity did vary enough to give a possible reason for the two enzymes being present. Both enzymes were confirmed to be alpha-type amylases. CONCLUSIONS: AmyB has been isolated, characterized and then compared to AmyA. SIGNIFICANCE AND IMPACT OF THE STUDY: The amylase phenotype is rarely encoded by more than one enzyme within one strain, this study therefore allows the better understanding of the unusual amylase production by A. hydrophila.

Aeromonas hydrophila↗