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Structure of the canine pancreatic lipase gene.

Identification of three overlapping clones in a canine genomic lambda phage library allowed us to determine a detailed restriction enzyme map of the primary transcriptional unit of the pancreatic lipase gene (15.5 kilobase pairs) as well as 15 and 6 kilobase pairs of 5'- and 3'-flanking regions, respectively. DNA sequence analysis provided the primary structure of (a) 1,345 nucleotides (nt) of 5'-flanking sequence including CAAT and TATA boxes at positions -112 and -35, respectively, and a class 2 glucocorticoid receptor binding sequence at position -97, (b) 13,127 out of approximately 15,500 nt of the transcriptional unit which is organized into 13 exon sequences, and (c) 1,270 nt of 3'-flanking sequence. Exon 1 encodes the entire 5'-nontranslated mRNA sequence; exon 2, the ATG initiation codon and the hydrophobic portion of the signal peptide; and exon 6, Ser154 which shows homology to the active Ser152 in the porcine enzyme. Comparison of the amino acid sequences of human lipoprotein lipase, rat hepatic lipase, and Drosophila yolk proteins 1, 2, and 3 with canine pancreatic lipase shows that the central region of highest homology (encoded by exons 6-8 in the dog gene) contains four highly conserved subregions which may play a critical role in enzyme-substrate and protein-ligand binding for lipases and yolk proteins, respectively. Comparison of the sequences of 10 lipases from prokaryotes and eukaryotes identifies a 9-residue consensus sequence surrounding the active serine which includes the previously identified sequence Gly-X-Ser-X-Gly. The hydrophobic nature of this sequence in the 10 lipases contrasts with the hydrophilic nature of the corresponding sequences in serine proteases and thus defines an active site serine consensus sequence specific for lipases. An analysis of 5'- and 3'-flanking and intron 1-4 sequences in transient expression studies with AR4-2J and 266-6 cells was unable to reveal tissue-specific promoter or enhancer sequences.

Amino Acid Sequence↗

Effect of epinephrine and other lipolytic agents on intracellular lipolysis and lipoprotein lipase activity in 3T3-L1 adipocytes.

3T3-L1 adipocytes were used to test the hypothesis that hormone-sensitive lipolysis and lipoprotein lipase activity might be regulated in a reciprocal manner. Intracellular lipolysis was stimulated by catecholamine, dibutyryl cAMP, and ACTH, but not by glucagon. The effects of epinephrine on lipolysis were blocked by the beta-antagonist propanolol but not by the alpha-antagonist phentolamine. Hormone-stimulated lipolysis was not changed by acute (45 min) or chronic (2 days) treatment of the cells with insulin whereas the latter treatment augmented lipoprotein lipase activity about fivefold. Epinephrine did not affect the lipoprotein lipase activity of insulin-stimulated cells. Withdrawal of glucose from the medium decreased lipoprotein lipase activity and the effect of epinephrine on lipolysis. Effects of lipolytic agents on activity of lipoprotein lipase were variable and concentration-dependent. Lipoprotein lipase activity was decreased only by concentrations of epinephrine greater than those inducing maximal intracellular lipolysis, and the decrease in activity occurred about 30 min after the increase in glycerol release. There seems to be no relationship between the level of activity of lipoprotein lipase and the maximal rate of hormone-stimulated lipolysis in 3T3-L1 cells. Unlike in adipose tissue and adipocytes of rats, hormone-stimulated lipolysis and lipoprotein lipase activity in murine 3T3-L1 adipocytes appear to be regulated independently.

Adipose Tissue↗

Plasma lipase properties as related to pancreatic condition.

We examined the sensitivity to colipase of two types of lipase (EC 3.1.1.3) activity in plasma. Results were very similar for plasma lipase corresponding to that found in cases of acute pancreatitis and for swine pancreas lipase, whereas we found some differences between "pancreatitis lipase" and lipase from healthy subjects. Gel-filtration experiments suggest that the two forms of lipase in plasma have different relative molecular masses; moreover, their avidity for antibodies against human pancreatic lipase differs. Guided by these studies, we propose optimal conditions for nephelometry of "pancreatitis" lipase.

Acute Disease↗

[Urinary lipase: properties and value of its determination].

Lipase activity was detected by nephelometry in urine specimens from 23 patients. Urinary lipase and plasma activities present different sensitivities to changes in ionic strength and copper ion concentration. Experiments with mixtures of urine specimens with and without lipasic activity showed that there is no lipase inhibitor in urine. Urinary lipase is generally seen in patients presenting signs of renal impairment (increase in uremia and creatinemia) and hematuria. The highest urinary lipase levels in such patients are usually seen when blood lipase is increased. High urinary lipase in the absence of hepatic aliments could, therefore, be indicative of renal disorder.

Acute Disease↗

On the interactions between pancreatic lipase and colipase and the substrate, and the importance of bile salts.

The interactions between pancreatic lipase and colipase and the substrate and the effect of bile salts on these interactions have been investigated by the use of kinetic experiments and studies on the semiquantitative phase distribution of lipase and colipase activities. The results suggest that lipase binds to hydrophobic interfaces with partial irreversible inactivation. Bile salts in the range of micellar concentrations and above a pH of about 6.5 displace lipase from this binding, resulting in a reversible in activation. At pH values below about 6.5, lipase binds strongly to the substrate even in the presence of bile salt, and a low activity peak is seen around pH 5.5. This is the result of the binding of lipase to the "supersubstrate" and the activity of the catalytic site. In the presence of bile salt, colipase promotes the binding of lipase to the "supersubstrate" but not to other hydrophobic interfaces, and catalytic activity is reestablished. Kinetic data indicate that the binding between colipase and lipase in the presence of substrate is strong and occurs in an approximately stoichiometric relationship.

Animals↗

Serum amylase and lipase activities in the diagnosis of pancreatitis in dogs.

To determine the usefulness of information provided by measurement of serum amylase activity in the evaluation of dogs for pancreatitis, the relationship of amylase activity to lipase activity in 713 paired serum samples was investigated by statistical analysis. Little change in mean amylase concentration was found until lipase values exceeded 800 U/L. The ranges of amylase activity (mean +/- 2 SD) were essentially the same for dogs with no pancreatitis (0 to 100 U of lipase activity/L) as for dogs with a high probability for the disease (700 to 799 U of lipase activity/L), 0 to 4,029 U/L and 857 to 4,869 U/L, respectively. Pathologic findings from biopsy and necropsy reports from 92 dogs for which serum lipase determinations were done indicated that serum lipase increased not only with pancreatitis, but also with other medical problems, such as renal and hepatic disease. It was concluded that determination of serum amylase activity without knowledge of serum lipase activity was of little value to diagnose pancreatitis. High amylase activity was not specific for pancreatitis and low amylase activity could not rule out the disease. The results of this study also showed that low serum lipase values almost always eliminated the possibility of pancreatitis and that high values were often, but not always, diagnostic for pancreatitis.

Amylases↗

Variations in amylase isoenzymes and lipase during acute pancreatitis, and in other disorders causing hyperamylasemia.

We compare the clinical value of assay of amylase (EC 3.2.1.1) isoenzymes with that of lipase (EC 3.1.1.3) in serum from patients with proven acute pancreatitis or with hyperamylasemia from other causes. In the former group we measured amylase, lipase, and isoamylases daily. Lipase and P(pancreas)-type isoamylases reached the highest mean values on the first day of an attack of acute pancreatitis (day one). Lipase declined rapidly, and by day four its mean activity was about the same as that of amylase and lower than that of the P-type isoamylases. Great inter-individual variations were found among patients with a similar clinical course. Of the 85 samples analyzed, amylase activity for 36 declined to within reference limits, but 18 of the 36 had high lipase activity, 18 had high P-type isoamylases activity, and 31 had P3 isoenzyme, which is not detectable in normal sera. Determination of isoamylases is a more sensitive index to acute pancreatitis than lipase assay and may be particularly useful when pancreatitis is suspected despite a normal total amylase activity. In the group of patients with hyperamylasemia from other origins, three had macroamylasemia, one had mumps, one had abdominal trauma without pancreatic injury, and one had pelvic inflammatory disease. The specific pattern of macroamylase on electrophoresis permitted a precise diagnosis of macroamylasemia; normal lipase had only ruled out pancreatitis. In the three other cases, lipase and isoamylases excluded pancreatic involvement.

Acute Disease↗

[Recent findings on pancreatic lipase and colipase].

Lipase and colipase are two genetically independent proteins synthesized and secreted by the pancreas. Lipase catalyzes the hydrolysis of dietary triglycerides emulsified in the intestinal lumen. It is activated by interfaces and, to a lesser extent, by micelles and monomeric solutions of glycerides in the presence of an organic solvent. The enzyme is activated due to acceleration of the acyl-enzyme deacylation step after conformational modification of the catalytic site by contact with the interface. Lipase turnover is higher than that of other esterases. The enzyme denaturation rate increases as surface pressure at the interface decreases (as surface tension increases). On the other hand, the enzyme is stabilized by high surface pressure and by colipase. Beyond a certain surface pressure, only lipase is unable to adsorb to the surface. In this case, colipase is indispensable for the anchorage of lipase at the interface. The association colipase with lipase and substrate depends on two distinct sites, each site being formed by an hydrophobic region and by ionizable epsilon-amino and carboxylate groups. The KD of the [lipase.colipase] complex is 10(-7) M; in the presence of substrate, it is 10(-9) M. Colipase is synthesized as pro-colipase. The [ pro-colipase .lipase] complex pre-exists in pancreatic juice and probably in cells of the exocrine pancreas. Trypsin action on pro-colipase leads to the cleavage of the colipase with 96 residues and the N-terminal pentapeptide. The [lipase.colipase] complex obtained is more generally hydrophobic than the previous one. In duodenal contents, this newly formed complex would be stabilized by the pH of the milieu and by free fatty acids appearing in the gastric contents, whether associated or not with the bile lipoprotein complex. The [lipase-colipase] complex, which is also stabilized by the substrate, would be fixed at the triglyceride/water interface, i.e. by passing through the layer of adsorbed amphipathic compounds (bile salts, phospholipids, fatty acids, proteins) owing to their hydrophobic and ionic properties, and by positioning into the interface by ionizable colipase groups.

Animals↗

Further studies on the physico-chemical properties of Rhizopus nodosus acid lipase.

The Km value of R. nodosus acid lipase was found to be 5 X 10(-2) M and 8 X 10(-3) M with olive oil and tricaprylin respectively. The lipase hydrolyzed triglycerides better than synthetic detergents and methyl esters. When synthetic triglycerides varying in fatty acid chain length were used, maximum hydrolysis was observed with tricaprylin as the substrate. Positional specificity studies indicated a preference for primary esters. The lipase was activated by albumin, NaCl and taurocholate whereas heparin had no effect. The lipase contains a single polypeptide chain with 298 amino acid residues. Glutamic acid and isoleucine were found to be the amino and carboxy-terminal residues, respectively. By gel filtration and SDS-PAGE the molecular weight was determined to be 40,000 +/- 500. The lipase was susceptible to photooxidation in the presence of methylene blue and Rose bengal whereas PMSF and thiol-group specific reagents had no appreciable effect on the lipase activity. NBS inactivated the lipase. Tryptophan residues were found to be essential for the lipase activity.

Kinetics↗

Serum lipase levels in nonpancreatic abdominal pain versus acute pancreatitis.

OBJECTIVE: 1) To determine whether serum lipase is elevated in patients with nonpancreatic abdominal pain, and 2) to compare the levels of serum lipase and serum amylase found in patients with nonpancreatic abdominal pain with those found in acute pancreatitis in order to differentiate between the two groups. METHODS: Serum lipase and amylase levels were estimated in 95 patients with nonpancreatic abdominal pain (group A). These levels were then compared with those found in 75 patients with acute pancreatitis (group P). RESULTS: Serum amylase in group A ranged from 11 to 416 U/L [mean 58 +/- 46 (SD)]. Three patients (3.3%) had raised amylase levels. The maximum elevation noted in this group was 416 U/L. Serum amylase in group P ranged from 124 to 13,000 U/L (mean 1620 +/- 1976). Twenty of the 75 patients (27%) in group P had levels that overlapped those found in group A. The serum lipase in group A ranged from 3 to 680 U/L (mean 111 +/- 101). Ten of the 93 patients (11%) had elevated lipase levels. The maximum elevation noted was roughly 3 times normal (680 U/L). Serum lipase in group P ranged from 711 to 31,153 (mean 6705 +/- 7022). None of the patients in group P had levels that overlapped those found in group A. The sensitivity of a serum lipase level > 3 normal in detecting acute pancreatitis was 100% and the specificity was 99%. The corresponding figures for serum amylase were 72% and 99%, respectively. CONCLUSION: A serum lipase level > 3 normal has a better diagnostic accuracy than serum amylase in differentiating nonpancreatic abdominal pain from acute pancreatitis.

Abdominal Pain↗

Acceleration of uptake of LDL but not chylomicrons or chylomicron remnants by cells that secrete apoE and hepatic lipase.

ApoE is a ligand for the low density lipoprotein (LDL) receptor as well as for the LDL receptor-related protein (LRP). The enzyme hepatic lipase (HL) may also affect the uptake of lipoproteins by modifying their composition. We have tested the hypothesis that hepatic lipase and apoE can function as co-factors to alter the rate of lipoprotein uptake. Chinese hamster ovary (CHO) cells were transfected with cDNAs for rat hepatic lipase, human apoE or both HL and apoE. The secreted recombinant proteins were thoroughly characterized and had properties identical to the native proteins. Hepatic lipase and apoE were secreted at 0.17 and 1.25 micrograms/mg cell protein per hour, rates comparable to those in normal liver. 125I-labeled LDL, chylomicron remnants, or chylomicrons were added to media at concentrations near their Kd. In cells that secreted either apoE or hepatic lipase, or both apoE and hepatic lipase, LDL binding was significantly greater than with control cells (2.2-, 2-, 2-fold greater, respectively). Similar enhancement of LDL degradation was observed. In the presence of anti-LDL receptor antibodies, these values were reduced to control levels; thus, the enhanced uptake was mediated by the LDL receptor and not the LRP. The amount of LDL receptor protein, as judged by Western blotting, was similar in the various cell types. Incubation of control CHO cells with media from secreting transfected cells also increased the uptake of 125I-labeled LDL. Kinetic studies indicated that, in apoE-secreting cells, increased LDL binding is associated with a lower Kd and an unchanged Vmax as compared to the control cells; furthermore, when LDL were reisolated by column chromatography (but not by ultracentrifugation) from the incubations where apoE was being secreted, apoE was identified adherent to the LDL particles. Together, these results suggest that the effect is due to alteration of the lipoprotein and not the cell. In contrast, the uptake of 125I-labeled chylomicron remnants, and 125I-labeled chylomicrons was not greater in the transfected cells. Thus, in the amounts secreted by these cells, hepatic lipase and apoE do not convert chylomicrons to chylomicron remnants or alter the uptake of chylomicron remnants by either the LDL receptor or the LRP. The enhancement of LDL removal in cells that secrete hepatic lipase or apoE may help determine the amount of LDL removed by a particular tissue.

Animals↗

Synthesis and secretion of lipoprotein lipase in heparan sulfate-deficient Chinese hamster ovary cells.

Synthesis and secretion of lipoprotein lipase was studied in two mutants of Chinese hamster ovary (CHO) cells which, due to a lack of xylosyl transferase (pgsA-745) or galactosyl transferase (pgsB-761), respectively, were deficient in heparan sulfate and chondroitin sulfate. One of the mutants (pgsB-761) was two- to threefold more active in synthesis and secretion of catalytically active lipoprotein lipase than the other mutant, which was about as active as the wild-type (K1) cells. A similar relation was found when lipoprotein lipase was metabolically labelled with 35S-methionine and then immunoprecipitated. Heparin stimulated secretion from all three cell types to a similar extent (about twofold). Heparin-releasable binding of 125I-labelled lipoprotein lipase was lower to either of the mutant cells than to the wild-type cells. Binding to the wild-type cells was reduced by heparitinase, while the low binding to the mutants was not affected. By immunogold labelling of cryosections, lipoprotein lipase was detected on the plasma membranes and on the inside of secretory vesicles of both wild-type and mutant cells, suggesting that some carrier could be involved. Inhibition of vesicular transport by monensin caused accumulation of lipoprotein lipase in the cells. In wild-type cells the lipase was mainly on the inside of vesicular structures, while in the mutants the main part was associated with membranous bodies that formed within the vesicles during a chase period. These results suggest that if lipoprotein lipase needs a carrier during intracellular assembly and transport, this function can be fulfilled by some structure other than heparan sulfate.

Animals↗

Lipoprotein lipase deficiency with pancreatitis in mink: biochemical characterization and pathology.

A severe hyperlipemia in mink, with a pattern that suggested recessive inheritance, was observed at a farm in Norway. On a normal mink diet, affected animals had grossly elevated levels of plasma triglycerides which decreased towards normal on a low-fat diet. Normal minks had the main part of their plasma cholesterol in the HDL fraction. Affected minks, although severely hypertriglyceridaemic, had almost normal levels of both LDL and HDL. Affected minks frequently had lipogranulomas in the mesentery and the pancreas. The lipogranulomatous tissue contained spaces filled with an amorphous, sudanophilic substance with many foamy macrophages in the fibrous tissue between the lesions. Separation of postheparin plasma on heparin-agarose revealed that the affected minks had no detectable lipoprotein lipase activity but normal activity of hepatic lipase. Both normal and affected minks had inactive lipoprotein lipase protein in pre- and post-heparin plasma. This protein, which eluted before the active lipase from heparin-agarose, probably corresponds to lipase monomers. The presence of lipoprotein lipase mass in the affected minks, but no activity, indicates that there might be a point mutation in the lipase gene. The minks provide a new animal model for studies on pancreatitis induced by hypertriglyceridemia and on lipoprotein metabolism in the lipoprotein lipase-deficient state and show features similar to those found in human hyperlipoproteinemia type I.

Animals↗

Hepatic lipase activity influences high density lipoprotein subclass distribution in normotriglyceridemic men. Genetic and pharmacological evidence.

Several studies have reported an inverse relationship between hepatic lipase activity and plasma high density lipoprotein (HDL) cholesterol concentrations. The purpose of the present study was to determine whether genetic and pharmacological variation in hepatic lipase activity alters the distribution of HDL subclasses. Two independent analytical methods (nuclear magnetic resonance and gradient gel electrophoresis) were used to compare HDL subclass distributions in 11 homozygotes for the -514C allele of hepatic lipase and in 6 homozygotes for the -514T allele. Mean hepatic lipase activity was 45 +/- 15 mmol. l(-1). hr(-1) in -514C homozygotes and 20 +/- 7 mmol. l(-1). hr(-1) in -514T homozygotes. Both analytical methods indicated that HDL(2b) was significantly higher and HDL(3a) was significantly lower in -514T homozygotes than in -514C homozygotes. No differences were noted in the other HDL fractions (HDL(2a), HDL(3b), and HDL(3c)). To determine the effects of increased hepatic lipase activity, 20 men were given the synthetic anabolic steroid, stanozolol. Stanozolol treatment increased hepatic lipase activity more than two-fold (38 +/- 18 to 85 +/- 25 mmol. l(-1). hr(-1) ), and markedly reduced the plasma concentrations of the larger HDL subclasses (HDL(2b) and HDL(2a)). The plasma concentrations of the smallest HDL subclasses (HDL(3b) and HDL(3c)) were unchanged by stanozolol treatment. Taken together, these genetic and pharmacological data indicate that variation in hepatic lipase activity has highly specific effects on the distribution of HDL subclasses in the circulation.-Grundy, S. M., G. L. Vega, J. D. Otvos, D. L. Rainwater, and J. C. Cohen. Hepatic lipase activity influences high density lipoprotein subclass distribution in normotriglyceridemic men: genetic and pharmacological evidence.

Cholesterol, HDL↗

Characterization of mono-, di- and triacylglycerol lipase activities in the isolated rat heart.

The lipolytic activities of heart tissue towards full and partial acylglycerols were characterized. Tissue lysosomal, acid lipase activity (pH 4.8) was inhibited by high salt, protamine sulfate, NaF, MgATP, Triton X-100, serum and the esterase-inhibitor diethylparanitrophenyl phosphate. The tissue neutral triacylglycerol lipase activity (pH 7.4) was recovered predominantly in the microsomal and soluble fractions and exhibited essentially identical properties towards activators (serum, apolipoprotein C-II) and reagents (NaCl, Triton X-100, NaF, MgATP and diethylparanitrophenyl phosphate) relative to vascular lipoprotein lipase, except for protamine sulfate which increased the serum-stimulated neutral triacylglycerol lipase activity. Triacylglycerol hydrolysis at acid pH was incomplete, whereas at neutral pH full hydrolysis occurred. Myocardial mono- and diacylglycerol lipase activities, with pH optima of 8.0 and 7.4, respectively, were recovered in the microsomal fraction. They differed immunologically from neutral lipase and lipoprotein lipase and did not bind to heparin-Sepharose 4B. They were kinetically different, partially inhibited by NaCl and differentially affected by protamine sulfate. NaF, Triton X-100 and diethylparanitrophenyl phosphate. Our data suggest that endogenous hydrolytic activity against full and partial acylglycerols is mediated by separate enzymes.

Animals↗

Hormone-sensitive lipase (HSL) expression and regulation in skeletal muscle.

Because the enzymatic regulation of muscle triglyceride metabolism is poorly understood we explored the character and activation of neutral lipase in muscle. Western blotting of isolated rat muscle fibers demonstrated expression of hormone-sensitive lipase (HSL). In incubated soleus muscle epinephrine increased neutral lipase activity by beta-adrenergic mechanisms involving cyclic AMP-dependent protein kinase (PKA). The increase was paralleled by an increase in glycogen phosphorylase activity and could be abolished by antiserum against HSL. Electrical stimulation caused a transient increase in activity of both neutral lipase and glycogen phosphorylase. The increase in lipase activity during contractions was not influenced by sympathectomy or propranolol. Training diminished the epinephrine induced lipase activation in muscle but enhanced the activation as well as the overall concentration of lipase in adipose tissue. In agreement with the in vitro findings, in adrenalectomized patients an increase in muscle neutral lipase activity was found at the end of prolonged exercise only if epinephrine was infused. In accordance with feedforward regulation of substrate mobilization in exercise, our studies have shown that HSL is present in skeletal muscle cells and is stimulated in parallel with glycogen phosphorylase by both epinephrine and contractions. HSL adapts differently to training in muscle compared with adipose tissue.

Animals↗

Changes in adipose tissue hormone-sensitive lipase activity and cAMP during ethanol withdrawal.

The time course of the effects of ethanol withdrawal on brown and white adipose tissue hormone-sensitive lipase, cAMP production, and phosphodiesterase have been investigated after chronic drinking or liquid diet schedules. Chronic drinking significantly reduced brown adipose tissue hormone-sensitive lipase activity and cAMP levels from control. During withdrawal, there was a rebound increase to 200% control, peaking 9 h into withdrawal. White adipose tissue hormone-sensitive lipase activity and cAMP accumulation were significantly raised by both treatment schedules. Ethanol liquid diet produced a significant fall in adipose tissue hormone-sensitive lipase activity and cAMP accumulation. In brown fat, there was a rebound increase in hormone-sensitive lipase activity and cAMP; in white fat, no rebound was observed. In brown fat, the reductions in hormone-sensitive lipase activity and cAMP accumulation after chronic drinking coincided with an increase in phosphodiesterase activity. In white fat, the rise in cAMP and hormone-sensitive lipase activation coincided with a decrease in phosphodiesterase activity. We conclude that the effects of chronic ethanol on hormone-sensitive lipase activity are cAMP-dependent and mediated via alterations in phosphodiesterase activity.

3',5'-Cyclic-AMP Phosphodiesterases↗

Purification and characterization of an extracellular lipase from a thermophilic Rhizopus oryzae strain isolated from palm fruit.

We have isolated a lipolytic strain from palm fruit that was identified as a Rhizopus oryzae. Culture conditions were optimized and highest lipase production amounting to 120 U/ml was achieved after 4 days of cultivation. The extracellular lipase was purified 1200-fold by ammonium sulfate precipitation, sulphopropyl-Sepharose chromatography, Sephadex G 75 gel filtration and a second sulphopropyl-Sepharose chromatography. The specific activity of the purified enzyme was 8800 U/mg. The lipolytic enzyme has a molecular mass of 32 kDa by SDS-polyacrylamide gel electrophoresis and gel filtration. The enzyme exhibited a single band in active polyacrylamide gel electrophoresis and its isoelectric point was 7.6. Analysis of Rhizopus oryzae lipase by RP-HPLC confirmed the homogeneity of the enzyme preparation. Determination of the N-terminal sequence over 19 amino acid residues showed a high homology with lipases of the same genus. The optimum pH for enzyme activity was 7.5. Lipase was stable in the pH range from 4.5 to 7.5. The optimum temperature for lipase activity was 35 degrees C and about 65% of its activity was retained after incubation at 45 degrees C for 30 min. The lipolytic enzyme was inhibited by Triton X100, SDS, and metal ions such as Fe(3+), Cu(2+), Hg(2+) and Fe(2+). Lipase activity against triolein was enhanced by sodium cholate or taurocholate. The purified lipase had a preference for the hydrolysis of saturated fatty acid chains (C(8)-C(18)) and a 1, 3-position specificity. It showed a good stability in organic solvents and especially in long chain-fatty alcohol. The enzyme poorly hydrolyzed triacylglycerols containing n-3 polyunsaturated fatty acids, and appeared as a suitable biocatalyst for selective esterification of sardine free fatty acids with hexanol as substrate. About 76% of sardine free fatty acids were esterified after 30 h reaction whereas 90% of docosahexaenoic acid (DHA) was recovered in the unesterified fatty acids.

Journal Article↗