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Properties of a free and a solubilized form of bound alpha,alpha-trehalase purified from honey bee thorax.

The free and bound forms of alpha,alpha-trehalase (EC 3.2.1.28) of the honey bee thorax were separated and the bound enzyme was solubilized by raising the pH to 8.0 for 10 h. Both enzymes were purified. They were homogeneous as determined by several electrophoretic criteria. It was found that the two enzymes had very similar Km's (each about 0.89 mM), Vm's (53.2 and 54.3 U/mg for free and solubilized, respectively), inhibition characteristics, specificities (both only hydrolyzed alpha,alpha-trehalose), pH maxima (each had maxima at about 3.5 and 6.5), molecular weights (65,000), isoelectric points (5.1), reactivities to sulfhydryl reagents, electrophoretic mobilities, activation energies (about 12.8 kcal/mol), and similar stabilities to heat, pH, and urea. Some significant differences between the two enzymes were, however, found: the solubilized alpha,alpha-trehalase floated at 70% saturation of ammonium sulfate while the free alpha,alpha-trehalase did not; the solubilized alpha,alpha-trehalase did not dissociate into subunits as readily as did the free one; and the solubilized alpha,alpha-trehalase was found to bind more readily to a hydrophobic grouping than the free enzyme. In addition to these comparisons, three new findings relating to thorax alpha,alpha-trehalases are reported. (1) Thorax alpha,alpha-trehalases are strongly inhibited by beta-glucosides (Ki values of about 8 x 10(-4) M); (2) under certain conditions thorax alpha,alpha-trehalases from honey bees dissociated into subunits of one-half the normal molecular weight; (3) honey bee thorax alpha,alpha-trehalases have unusual biphasic pH activity profiles.

Animals↗

Localization of renal and intestinal trehalase with immunofluorescence- and enzyme-labeled antibody techniques.

The localization of trehalase with fluorescein isothiocyanate-conjugated and peroxidase-conjugated antibody techniques was examined. Antiserum against purified rabbit renal trehalase was produced against guinea pigs. Anti-renal trehalase immunoglobulin (Ig)G was isolated from the serum and used for the immunohistochemical localization of intestinal and renal trehalases. Specific fluorescence and peroxidase staining were observed in the brush borders of proximal tubules and of intestinal epithelial cells. These results are in good agreement with the biochemical results. Thus, it is concluded that trehalase is specifically localized in the renal and intestinal brush borders. Sections of rabbit intestine and of rabbit kidney treated with anti-rabbit renal trehalase IgG were observed to have a specific fluorescence at the brush borders. Sections of rat intestine treated with the same antibody, however, showed no specific fluorescence at the brush borders. From these results, it is strongly suggested that renal trehalase and intestinal trehalase from the rabbit have common antigenic determinants and that these differ from those in rat intestinal trehalase.

Animals↗

The toxic and lethal effects of the trehalase inhibitor trehazolin in locusts are caused by hypoglycaemia.

The main blood sugar of locusts is trehalose, which is hydrolysed to two glucose units by trehalase. Homogenates of locust flight muscles are rich in trehalase activity, which is bound to membranes. A minor fraction of trehalase is in an overt form while the remainder is latent, i.e. active only after impairing membrane integrity. Trehazolin, an antibiotic pseudosaccharide, inhibits locust flight muscle trehalase with apparent K(i)- and EC(50) values of 10(-8) mol l(-1) and 10(-7) mol l(-1), respectively. Trehazolin is insecticidal: 50 micro g injected into locusts completely and selectively blocked the overt form of muscle trehalase (with little effect on latent activity) and killed 50% of the insects within 24 h. Here, it is demonstrated for the first time that trehazolin causes dramatic hypoglycaemia. Injection of 10 micro g trehazolin caused glucose levels to fall by over 90% in 24 h, from 2.8 mmol l(-1) to 0.23 mmol l(-1), while trehalose increased from 61 mmol l(-1) to 111 mmol l(-1). Feeding glucose to the locusts fully neutralized the effects of a potentially lethal dose of trehazolin. This indicates that hypertrehalosaemia is not acutely toxic, whereas lack of glucose causes organ failure (presumably of the nervous system), and that sufficient haemolymph glucose can only be generated from trehalose by trehalase. The results also suggest that overt flight muscle trehalase is located in the plasma membrane with the active site accessible to the haemolymph. Trehalase inhibitors are valuable tools for studying the molecular physiology of trehalase function and sugar metabolism in insects.

Animals↗

Comparative study of two trehalases from Candida utilis.

Candida utilis ATCC 60459 contains two intracellular trehalase enzymes clearly distinguishable by molecular weight, behaviour in ion-exchange chromatography and kinetic properties. The high molecular weight trehalase (500 kDa trehalase) is specifically inhibited by acetate and accounts for less than 30% of the total trehalase activity found in cell extracts. The smaller trehalase (280 kDa trehalase) exists mostly as a cryptic enzyme whose activity can be postranslationally activated by cAMP-dependent phosphorylation. The enzyme activity of the 280 kDa trehalase is strongly inhibited by Zn2+ and markedly enhanced in the presence of Ca2+ and Mn2+. The activation by these cations, contrariwise to that induced by ATP and cAMP, does not imply a covalent modification of the 280 kDa enzyme. Several parameters have been determined for both enzymes. The 280 kDa enzyme has the properties shown by the so-called regulatory trehalases whereas the 500 kDa enzyme presents characteristics of a nonregulatory type of trehalase.

Adenosine Triphosphate↗

Urinary trehalase as an early indicator of cadmium-induced renal tubular damage in rabbit.

The significance of urinary trehalase as a possible early indicator of renal disorder was examined using Cd-treated rabbits, which received 1 mg/kg Cd thrice weekly for 3 months subcutaneously. The results showed that urinary trehalase increased significantly from 1 week after treatment, earlier than LAP, ALP, proteinuria and glucosuria, with no changes in plasma trehalase level. A marked decrease in trehalase activity in renal brush border membranes prepared from Cd-treated rabbits was observed. It was also confirmed by immunohistological techniques that Cd treatment resulted in a marked decrease in specific fluorescence compared with controls. Ouchterlony double diffusion analysis demonstrated that urine and renal brush border extracts formed precipitation lines against anti-renal trehalase IgG, indicating that urinary trehalase and renal trehalase had the same antigenicity. Therefore, the facts presented here would suggest that urinary trehalase originated from the renal brush border, indicating its superiority as a diagnostic tool over other indicative indicating its superiority as a diagnostic tool over other indicative enzymes like LAP and ALP in detecting injury to renal proximal tubular cells in the early stage.

Animals↗

Physiological implications of trehalase from Phaseolus vulgaris root nodules: partial purification and characterization.

The purification and characterization of trehalase from common bean nodules as well as the role of this enzyme on growth, nodulation nitrogen fixation by examining the effects of the trehalase inhibitor validamycin A, was studied. Validamycin A did not affect plant and nodule mass, neither root trehalase and nitrogenase activity; however this treatment applied at the time of sowing increased nodule number about 16% and decreased nodule trehalase activity (16-fold) and the size of nodules. These results suggest that nodule trehalase activity of Phaseolus vulgaris could be involved in nodule formation and development. In addition, acid trehalase (EC 3.2.1.28) was purified from root nodules by fractionating ammonium sulfate, column chromatography on DEAE-sepharose and sephacryl S-300, and finally on native polyacrylamide gel electrophoresis. The purified homogeneous preparation of native acid trehalase exhibited a molecular mass of 42 and 45 kDa on SDS-PAGE. The enzyme has the optimum pH 3.9, Km of 0.109 mM, Vmax of 3630 nkat mg-1 protein and is relatively heat stable. Besides trehalose, it shows maximal activity with sucrose and maltose and, to a lesser degree melibiose, cellobiose and raffinose, and it does not hydrolyze on lactose and turanose. Acid trehalase was activated by Na+, Mn2+, Mg2+, Li+, Co2+, K+ and inhibited by Fe3+, Hg+ and EDTA.

Cations↗

Intestinal trehalase activity in a UK population: establishing a normal range and the effect of disease.

Trehalose is a disaccharide, the main dietary source being mushrooms. It has been approved as an additive in the preparation of dried food. Isolated intestinal trehalase deficiency is found in 8% of Greenlanders, but is rare elsewhere. The normal range of trehalase activity and the incidence of isolated trehalase deficiency in the UK have not been reported. Patients (n 400) were investigated for suspected malabsorption. Endoscopic distal duodenal biopsies were taken for histological assessment and maltase, sucrase, lactase and trehalase estimation. Disaccharidase activities were determined by Dahlqvist's technique (Dahlqvist, 1968). Most patients (n 369) had normal duodenal histology. In these, square root transformation of trehalase activity produced a normal distribution. The normal range (mean +/- 2 SD) was 4.79-37.12 U/g protein. One patient had an isolated borderline trehalase deficiency. The thirty-one patients with villous atrophy had significantly reduced disaccharidase activities. With ingestion of a gluten-free diet, maltase, sucrase and trehalase activities recovered to normal in most patients, whereas lactase activity did not. The normal range and very low incidence of isolated enzyme deficiency is comparable with that described in populations from the USA and mainland Europe. Activity is significantly reduced in untreated coeliac disease and recovers with treatment with a gluten-free diet. There is no place for routine determination of trehalase activity in the UK population and there should be no concern over the introduction of trehalose-containing dried foods.

Adolescent↗

Estimation of intestinal trehalase activity from a laxative threshold of trehalose and lactulose on healthy female subjects.

OBJECTIVE: The purpose of present study is to investigate small intestinal trehalase activity and the ability to utilize trehalose in healthy Japanese subjects. DESIGN: First, transitory laxative thresholds of trehalose and lactulose were estimated for each of 20 Japanese female subjects. Then, according to the difference between two relative laxative thresholds, small intestinal trehalase activity was estimated for each individual subject. Trehalose tolerance tests were then carried out on two groups with lower or higher trehalase activity. SETTING: Department of Nutrition, Faculty of Medicine, University of Tokyo. RESULTS: When 30 g of trehalose were administered orally to six subjects with the low trehalase activity, blood glucose and insulin levels scarcely elevated after loading. In contrast, when 50 g of trehalose were administered orally to six subjects with high trehalase activity, blood glucose levels quickly and significantly increased 30 min after loading (P<0.01) and slightly decreased after 60 min, reducing quickly to a fasting level 90 min after loading. Blood insulin levels also peaked 30 min after administration. Yet, decreases in blood insulin levels in the trehalose loading experiment were delayed in comparison with the same amount of glucose ingestion, and peak insulin levels were significantly lower than those with glucose ingestion (P<0.01). CONCLUSION: We conclude that subjects with high trehalase activity can effectively utilize trehalose which is ingested from the diet, and when a subject with low trehalase activity ingests a large amount of trehalose, a portion of the trehalose might pass through the small intestine and reach the large intestine where it is fermented completely by colonic bacteria. Therefore, the apparent digestibility of trehalose is similar in both subjects with low and high trehalase activities.

Adult↗

Stability of neutral trehalase during heat stress in Saccharomyces cerevisiae is dependent on the activity of the catalytic subunits of cAMP-dependent protein kinase, Tpk1 and Tpk2.

In Saccharomyces cerevisiae cAMP-dependent protein kinase (cAPK) is involved in nutrient sensing and growth regulation via the Ras/cAMP pathway. Target enzymes, e.g. neutral trehalase, are activated or inactivated rapidly by cAPK-mediated phosphorylation. In addition, stress-induced transcription of genes of the general stress-response, e.g. HSP12, is negatively regulated via cAPK. We have investigated the effect of low cAPK activity on the stress-induced expression of neutral trehalase Nth1p. For this purpose we used mutants (tpk1tpk2TPK3, tpk1TPK2tpk3 and TPK1tpk2tpk3) with double knockouts of the three TPK genes encoding catalytic subunits of cAPK. It is shown that the tpk1tpk2TPK3 mutant, which has very low cAPK activity, exhibits a heat-stress-induced inactivation of neutral trehalase that is not observed in tpk1TPK2tpk3, TPK1tpk2tpk3 mutants and wild-type cells. However, heat stress induces an increase in NTH1 mRNA in the tpk1tpk2TPK3 mutant. Introduction of a plasmid carrying the TPK1 or TPK2 gene into tpk1tpk2TPK3 cells restores the heat-induced increase of neutral trehalase activity. In vitro and in vivo results suggest that the heat induced inactivation of neutral trehalase is due to a reversible inactivation of Nth1p. Our data indicate that a certain level of phosphorylation is essential for maintenance of neutral trehalase activity during heat shock in S. cerevisiae. Two identical putative cAPK phosphorylation sites have been found in the sequence predicted for the Nth1p. Stabilization and activation of neutral trehalase may be regulated by these sites. Furthermore, our data suggest that the heat-stress-induced transcription of the NTH1 gene is not negatively regulated by cAPK, that the TPK genes have no effect on the glucose repression of the NTH1 gene, and that non-detectable neutral trehalase activity in derepressed tpk1tpk2TPK3 cells is correlated with the reduced thermotolerance observed in this strain, similar to the heat-shock-recovery defect reported for the nth1delta mutant.

Cyclic AMP-Dependent Protein Kinases↗

Low trehalase activity is associated with abdominal symptoms caused by edible mushrooms.

BACKGROUND: The purpose of the study was to evaluate whether maldigestion of trehalose causes abdominal symptoms and which available diagnostic method best distinguishes intolerant from tolerant subjects. METHODS: A 25-g oral trehalose load test was performed in 64 subjects. The 19 experiencing clear symptoms constituted the trehalose-intolerant subjects. Changes from base-line levels of blood glucose, breath hydrogen, and methane and symptoms were recorded after the test. Trehalase activity was determined in serum and on a duodenal biopsy specimen obtained by endoscopy. RESULTS: Intolerant subjects were best differentiated from tolerant subjects by changes in breath gases (hydrogen and methane) and duodenal trehalase to sucrase ratio. The change in breath gases correlated inversely with duodenal trehalase activity, duodenal trehalase to sucrase ratio, and plasma trehalase activity. The correlation between serum and duodenal trehalase activities was on the order of 0.6. Two subjects were found to have trehalase deficiency. CONCLUSIONS: It is obvious that trehalose maldigestion can cause symptoms similar to those of lactose maldigestion and intolerance. Three factors control the genesis of symptoms: 1) the activity of small-bowel trehalase: if it is low, trehalose is maldigested and more trehalose is passed into the colon; 2) the maldigested trehalose, which causes osmotic water flow into the colon, resulting in loose stools and diarrhea; and 3) most importantly, the microflora of the colon, from which symptoms will arise if there are bacteria capable of producing gases from maldigested trehalose. If colonic bacteria cannot produce gases, then distention of the abdomen and intestinal gas expulsion as eructations and flatus will not occur.

Abdominal Pain↗

Cyclic AMP signalling pathway and trehalase activation in the fission yeast Schizosaccharomyces pombe.

The response of derepressed cells of Schizosaccharomyces pombe to the addition of glucose included a marked and reversible activation of neutral trehalase that was not produced in repressed cells. The protein synthesis inhibitor cycloheximide, the protonophore 2,4-dinitrophenol or the uncoupler sodium azide also enhanced trehalase activity in derepressed cells provided glucose was present in the incubation assays. However, only 2,4-dinitrophenol or cycloheximide was able to induce trehalase activation in repressed cells. Stimulation of trehalase by these compounds was preceded in all cases by a rapid increase in adenosine 3'-5'-cyclic monophosphate (cAMP) content. Since exogenous cAMP can activate trehalase both in repressed and derepressed growing cells, the results provide evidence for the existence of an induced cAMP signalling pathway in the fission yeast with several entries for trehalase activation. The correlation between cAMP increase and trehalase activation was not maintained when the enzyme was heat-shock-activated, supporting the concept that trehalase activity can be also enhanced in cells by another mechanism in which cAMP does not act as second messenger.

2,4-Dinitrophenol↗

Trehalose and trehalase in Arabidopsis.

Trehalase is ubiquitous in higher plants. So far, indications concerning its function are scarce, although it has been implicated in the detoxification of exogenous trehalose. A putative trehalase gene, T19F6.15, has been identified in the genome sequencing effort in Arabidopsis. Here we show that this gene encodes a functional trehalase when its cDNA is expressed in yeast, and that it is expressed in various plant organs. Furthermore, we present results on the distribution and activity of trehalase in Arabidopsis and we describe how inhibition of trehalase by validamycin A affects the plants response to exogenous trehalose (alpha-D-glucopyranosyl-[1, 1]-alpha-D-glucopyranoside). Trehalase activity was highest in floral organs, particularly in the anthers (approximately 700 nkat g(-1) protein) and maturing siliques (approximately 250 nkat g(-1) protein) and much lower in leaves, stems, and roots (less than 50 nkat g(-1) protein). Inhibition of trehalase in vivo by validamycin A led to the accumulation of an endogenous substance that had all the properties of trehalose, and to a strong reduction in sucrose and starch contents in flowers, leaves, and stems. Thus, trehalose appears to be an endogenous substance in Arabidopsis, and trehalose and trehalase may play a role in regulating the carbohydrate allocation in plants.

Arabidopsis↗

A comparison of thermal characteristics and kinetic parameters of trehalases from a thermophilic and a mesophilic fungus.

Trehalases from a thermophilic fungus Thermomyces lanuginosus (M(r) 145 kDa) and a mesophilic fungus Neurospora crassa (M(r) 437 kDa) were purified to compare their thermal characteristics and kinetic constants. Both trehalases were maximally active at 50 degrees C, had an acidic pH optimum and were glycoproteins (20% and 43%, w/w, carbohydrate content for T. lanuginosus and N. crassa, respectively). At their temperature optimum, their K(m) was similar (0.57 and 0.52 mM trehalose, for T. lanuginosus and N. crassa, respectively) but the V(max) of N. crassa enzyme was nine times higher than of T. lanuginosus enzyme. The catalytic efficiency, k(cat)/K(m), for N. crassa trehalase was one order of magnitude higher (6.2 x 10(6) M(-1) s(-1)) than of T. lanuginosus trehalase (4 x 10(5) M(-1) s(-1)). At their T(opt) (50 degrees C), trehalase from both sources exhibited similar thermostability (t(1/2)6 h). The energy of activation, E(a), for T. lanuginosus trehalase was 15.12 kcal mol(-1) and for N. crassa trehalase it was 9.62 kcal mol(-1). The activation energy for thermal inactivation for the N. crassa enzyme (92 kcal mol(-1)) was two-fold higher than for the T. lanuginosus enzyme (46 kcal mol(-1)). The present study shows that the trehalase of N. crassa is not only more stable but also a better catalyst than the T. lanuginosus enzyme.

Carbon↗

Stimulation of hyphal growth in anaerobic cultures of Mucor rouxii by extracellular trehalose. Relevance of cell wall-bound activity of acid trehalase for trehalose utilization.

In fungi, the hydrolysis of extracellular trehalose is carried out by acid trehalases. These secretory glycoproteins may be more abundant either in the vacuolar compartment, like in yeast, or at the cell surface, such as in many filamentous fungi. The relative efficiency of these two compartments for the utilization of extracellular trehalose was investigated using as a model the dimorphic fungus Mucor rouxii, which produces yeast-like cells under a CO(2) atmosphere, or hyphae in the presence of air. Under CO(2), cultures supplemented with glucose produced yeast-like cells devoid of acid trehalase activity. On the other hand, trehalose-supplemented cultures developed hyphae exhibiting cell wall-bound and intracellular acid trehalase activity. Glucose-grown yeast-like cells supplemented with trehalose after glucose exhaustion, induced intracellular activity of acid trehalase, but no activity was detected at the cell surface. Even endowed of significant intracellular activity of acid trehalase, these cells did not grow further. When exposed to air these yeast-like produced germ tubes exhibiting cell wall-bound acid trehalase activity. These results suggest that the utilization of extracellular trehalose as a source of carbon for growth requires the localization of acid trehalase activity at the cell surface. Our results also show that extracellular trehalose elicits a morphogenetic phenomenon, inducing the formation of hyphae which are the physiological support for acid trehalase activity.

Anaerobiosis↗

Rat trehalase: cDNA cloning and mRNA expression in adult rat tissues and during intestinal ontogeny.

A partial rat trehalase cDNA has been cloned and used to examine trehalase mRNA expression. Northern blotting with total RNA from 11 adult rat tissues showed a trehalase transcript only in small intestine, where it was abundant in proximal regions but declined steeply toward the ileum. During development, trehalase mRNA was not detectable in jejunum until postnatal day 19 and then increased markedly through day 25. Modest levels in trehalase mRNA were induced precociously by administration of dexamethasone, with increasing responsiveness evident between the first and second postnatal weeks. In contrast, analysis of sucrase-isomaltase mRNA on the same blots showed maximal induction at both ages. In adrenalectomized animals, the ontogenic increase of trehalase mRNA began as usual but proceeded more slowly than in control animals. Overall, trehalase mRNA expression in the rat displayed both similarities and differences compared with rabbit. Moreover, the differences revealed in glucocorticoid responsiveness of trehalase mRNA and sucrase-isomaltase mRNA suggest that the actions of these hormones on the developing intestine may be more complex than previously recognized.

Amino Acid Sequence↗

[Tubular damage in toxemia of pregnancy using urinary trehalase as a marker].

We proved reversible tubular damage in edema and in toxemia of pregnancy using urinary trehalase as a marker. 1. Urinary trehalase activity in mild toxemia (edema: more than 0.5 kg body weight gain per week) was significantly increased as compared with normal pregnancy (less than 0.5 kg body weight gain per week) (p less than 0.02). Urinary albumin content, however, was not significantly changed with edema. 2. Toxemia of pregnancy showed significantly high urinary trehalase activity, NAG activity and beta 2-MG content as compared with the 3rd trimester of pregnancy. Urinary trehalase activity of severe toxemia was significantly higher than that of mild toxemia. Urinary NAG and beta 2-MG showed similar results to urinary trehalase. On the 5th and 30th puerperal days there was significantly lower trehalase activity than in the 3rd trimester. Urinary beta 2-MG in toxemia was significantly decreased at the 30th puerperal day as compared with the 3rd trimester and 5th puerperal day. However, no significant decrease was observed in urinary NAG. 3. Urinary trehalase activity in superimposed toxemia of pregnancy was significantly increased as compared with the 3rd trimester of pregnancy. However, urinary trehalase activity on the 5th puerperal day was significantly decreased, but was still significantly high. These results show that pregnancy with edema and pure toxemia of pregnancy cause renal tubular damage and this damage is reversible. In the stage of edema, no remarkable glomerular damage, but tubular damage could occur.

Female↗

Genetic and biochemical evidence that trehalase is a substrate of cAMP-dependent protein kinase in yeast.

In Saccharomyces cerevisiae, trehalase activity in crude extracts obtained from wild type cells was activated about 3-fold by preincubation with cAMP and ATP. The inactive trehalase fractionated by DEAE-Sephacel chromatography was activated by the addition of the cAMP-dependent protein kinase fraction from wild type cells in the presence of cAMP and ATP. Using the crude extract obtained from bcy1 mutant cells which were deficient in the regulatory subunit of cAMP-dependent protein kinase, the stimulation of trehalase activity was observed in the absence of cAMP. The cAMP-dependent protein kinase of CYR3 mutant cells which had a high Ka value for cAMP in the phosphorylation reaction required a high cAMP concentration for activation of trehalase. Increased activation of partially purified inactive trehalase (Mr = 320,000) was observed to correlate with increased phosphorylation of a protein (Mr = 80,000) identified by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The assay results using various mutants altered in cAMP metabolism indicated that the activation and phosphorylation of inactive trehalase fractions depended on the cAMP concentration accumulated in mutant cells. Inactivation and dephosphorylation of active trehalase fractions were observed by treatment with alkaline phosphatase or crude cell extracts. The results indicated that the conversion of inactive form of trehalase to the active form is regulated by cAMP through cAMP-dependent protein kinase.

Chromatography, Ion Exchange↗

Serum trehalase activities in controlled and uncontrolled diabetes and the impact of oral glucose, high carbohydrate and glycosuria on serum levels.

Nineteen healthy volunteers, made up of two groups were subjected to an extended oral glucose tolerance study. In one group, each had 50g glucose and in the other a high carbohydrate meal. Blood glucose and serum trehalase activities were determined on fasting blood samples and specimens collected half-hourly for 4 hours. The values obtained for both at each stage of the investigations were compared with one another. Correlation coefficient (r) between blood glucose and serum trehalase were 0.4923 for the fasting samples and 0.4762 at 1 hr. The impact of diabetes and glycosuria on serum trehalase activities in 50 diabetics consisting of treated (controlled) and untreated (uncontrolled) cases was also studied. Our study reveals a slight fall in serum trehalase values from the initial fasting level, but thereafter a gradual and progressive rise during the course of the glucose tolerance investigations. Serum trehalase values were higher in diabetics compared to normal subjects (t = 7.0168, P = 0.005). Diabetics with glycosuria had a significantly higher mean serum trehalase compared to the controlled group (t = 5.233, P = 0.005). High serum trehalase values were seen in diabetics with renal glycosuria at comparatively low levels of blood glucose. The significance of these findings is discussed in relation to the possible place of serum trehalase assay in the management of diabetes, especially when this is made difficult by renal glycosuria.

Administration, Oral↗