PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “TOLAZAMIDE”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

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

At least 145 records · Page 8Linked to original sources

Detection of hypoglycemic drugs in human urine using micellar electrokinetic chromatography.

Micellar electrokinetic chromatography (MEKC) is evaluated as a potential analytical method for the separation and detection of a series of sulfonylurea drugs used in the treatment of hyperglycemia. These drugs are often surreptitiously abused, producing extremely low blood glucose levels and symptoms indistinguishable from those associated with an insulin-secreting tumor. Separation buffer containing 50 mM sodium dodecyl sulfate (SDS) was found to be adequate for the MEKC separation of the third generation drugs (glipizide and glyburide) but not the second generation drugs (acetohexamide chlorpropamide, tolazamide, and tolbutamide). At a pH of 8.5 in the presence of 20 mM borate/20 mM phosphate and 150 mM SDS, all seven components were adequately resolved with an analysis time of 17 min. Altering the concentration of the buffering components to either 5 mM borate/5 mM phosphate or 40 mM borate alone reduced the analysis time to less than 10 min with no observable loss in resolution. A series of other micelle-forming surfactants were evaluated, and only sodium cholate provided an improvement over the SDS-based system. Optimal separation was obtained with 75 mM sodium cholate and led to complete analysis with baseline resolution of all seven components in less than 8 min. These conditions were shown to be adequate for the detection of the hypoglycemic drugs spiked into normal urine and in patients taking these drugs. The precision associated with nine consecutive injections of six samples (n = 54) was found to be acceptable with percent coefficient of variance for absolute migration times (MTabs) for all peaks averaging 0.89 with peak area and peak height being 8.49 and 8.26, respectively. The between-sample precision was found to average 0.92% for MTabs and 8.56% and 8.45%, respectively, for the relative peak area and peak height. With a detection limit for the drugs in urine (following extraction) in the 50 ng/mL range, the potential exists for an MEKC-based assay for the detection of sulfonylurea drugs in urine.

Chromatography, High Pressure Liquid↗

Chemistry and hypoglycemic activity of benzimidoylpyrazoles.

A series of benzimidoylpyrazoles was synthesized and evaluated as hypoglycemic agents. Methyl 1-(N-cyclohexylbenzimidoyl)-5-methyl-3-pyrazolecarboxylate (13) and methyl 1-[N-(4-methoxyphenyl)benzimidoyl]-5-methyl-3-pyrazolecarboxylate (33) are two of the more interesting compounds. A comparison of these benzimidoylpyrazoles with classical standards (tolazamide, phenformin, and buformin) in several experimental models show that these compounds seem to combine in one molecule some of the biological activities of the beta-cytotrophic sulfonylureas and some of the activities of the biguanides. A synthetic scheme for the preparation of the benzimidolypyrazoles and a preliminary structure-activity relationship are presented.

Adrenalectomy↗

Chemistry and hypoglycemic activity of N-[[(Dialkylamino)alkoxy]phenyl]benzamidines.

A series of N-[[(dialkylamino)alkoxyl]phenyl]benzamidines was synthesized and evaluated for hypoglycemic activity in the glucose-primed rat. Structure-activity relationship indicated that N'-phenyl-N-[4-[2(diisopropylamino)-ethoxy]phenyl]benzamidine dihydrobromide (7), N'-(4-chlorophenyl)-N-[4-[2-(diisopropylamino)ethoxy]phenyl]-benzamidine dihydrochloride (31), and N'-phenyl-N-[4-[(diisopropylamino)propoxy]phenyl]benzamidine dihydrobromide (11) are some of the more interesting compounds. A comparison of these hypoglycemic agents with classical standards (tolazamide, phenformin, and buformin) in several experimental models showed that the benzamidines seem to combine in one molecule some of the biological activities of the beta-cytotrophic sulfonylureas and some of the activities of the biguanides.

Adrenalectomy↗

Characterization of the rat mesangial cell type 2 sulfonylurea receptor.

BACKGROUND: Sulfonylurea receptors are classified as either high-affinity type 1 (SUR1) or low-affinity type 2 receptors (SUR2), and the gene expression of SURs has recently been demonstrated in kidney. However, functional data regarding a renal SUR are lacking. We previously demonstrated that mesangial cell (MC) gene and protein expression of extracellular matrix components were up-regulated by the sulfonylurea, tolazamide. After noting this biological response, we next sought to investigate the presence of a sulfonylurea receptor in rat MCs. METHODS: Equilibrium binding studies employing [3H]glibenclamide as a ligand were performed on crude MC membrane preparations. Gene expression for SUR was explored by Northern analysis of cultured MCs and whole kidney tissue. The effect of sulfonylurea on intracellular Ca2+ in MCs was assayed by spectrofluorometry, and glibenclamide-induced changes in the contractility of MCs were assessed. RESULTS: MCs bound [3H]glibenclamide with a KD of 2.6 microM and a Bmax of 30.4 pmol/mg protein as determined by Scatchard analysis. Three SUR2 transcripts were detected in MCs. A major transcript was detected at 5.5 kb and minor transcripts at 7.5 and 8.6 kb. Following sulfonylurea treatment of MCs, real-time videomicroscopy revealed intense MC contraction, coinciding with oscillatory increments of intracellular Ca2+ concentration. Further evidence of sulfonylurea-induced MC contraction was demonstrated by glibenclamide-induced deformation of a silicone rubber substrate. CONCLUSIONS: These results demonstrate that SUR2 resides on MCs. Functional activation of this receptor by sulfonylurea induces Ca2+ transients that result in MC contraction.

ATP-Binding Cassette Transporters↗

Postreceptor regulation of insulin action in primary cultures of rat hepatocytes by oral hypoglycemic agents: effects of linogliride and chlorpropamide.

We have previously demonstrated the ability of the sulfonylurea tolazamide to potentiate insulin action in primary cultures of hepatocytes prepared from normal and streptozotocin-diabetic rats. To determine whether the pirogliride derivative linogliride, a non-sulfonylurea orally effective hypoglycemic agent, can potentiate insulin action, we evaluated the ability of linogliride to affect insulin-stimulated lipogenesis in primary cultures of hepatocytes prepared from normal rats. In addition, we also evaluated the ability of the sulfonylurea chlorpropamide to affect insulin-stimulated lipogenesis in the same in vitro system. The exposure of hepatocytes for 18 h to either linogliride (100 ug/ml) or chlorpropamide (175 ug/ml) resulted in dose-dependent (0.1 to 100 nM insulin) increases in insulin-stimulated lipogenesis, although the effects of chlorpropamide are approximately two times those of linogliride. This increase in insulin responsiveness was not associated with any change in insulin sensitivity (ED50) or insulin binding. The results provide evidence for an extra-pancreatic effect of linogliride and chlorpropamide in the liver and indicate that these structurally unrelated oral hypoglycemic agents enhance insulin responsiveness through postbinding mechanisms.

Animals↗

Individual sulfonylureas and serious hypoglycemia in older people.

OBJECTIVE: To compare the risk of serious hypoglycemia associated with the use of individual sulfonylureas in older people. DESIGN: A retrospective cohort study. SETTING: The Tennessee Medicaid Program. PATIENTS: A total of 13,963 Medicaid enrollees, aged 65 years or older, who were prescribed one of six sulfonylureas from 1985 to 1989. MAIN OUTCOME MEASURE: Hospitalization, emergency room admission, or death associated with neuroglycopenic or autonomic symptoms, myocardial infarction, stroke, or injury, with a concomitant blood glucose determination of less than 2.8 mmol/L (50 mg/dL). RESULTS: We identified 255 persons with a first episode of serious hypoglycemia during 20,715 person-years of sulfonylurea use. The crude rate (per 1000 person-years) of serious hypoglycemia was highest in glyburide users, 16.6 (95% confidence interval [CI], 13.2 to 19.9 and lowest among users of tolbutamide, 3.5 (95% CI, 1.2 to 5.9). Users of tolbutamide, tolazamide, and glipizide had lower risks of serious hypoglycemia than users of chlorpropamide, whereas the risk of serious hypoglycemia among glyburide users did not differ from that of chlorpropamide users. Among second generation sulfonylureas, the adjusted relative risk of severe hypoglycemia among glyburide users, compared with glipizide users, was 1.9 (95% CI, 1.2 to 2.9). An increased risk of serious hypoglycemia associated with use of glyburide compared with glipizide occurred in all strata, including those defined by gender, race, nursing home residence, dose, and duration of use. CONCLUSIONS: Significant differences in risk of serious hypoglycemia were observed among users of individual agents. This may be explained by duration, timing, or potency of hypoglycemic action. These data confirm previous findings that chlorpropamide use is associated with high risk of hypoglycemia and indicate that among second generation sulfonylureas, glipizide is less associated with hypoglycemia than is glyburide. More information comparing the effectiveness of glycemic control among individual sulfonylureas is needed to assist prescribers in selecting a specific agent for use in clinical practice.

Aged↗

Phototoxicity due to sulphonamide derived oral antidiabetics and diuretics: investigations in a cell culture model.

A number of sulphonamide-derived oral antidiabetics (chlorpropamide, glibenclamide, glipizide, gliquidone, glymidine, tolazamide and tolbutamide) and diuretics (bemetizide, bendroflumethiazide, benzylhydrochlorothiazide, bumetanide, butizide, chloratalidone, furosemide, hydrochlorothiazide, hydroflumethiazide, indapamide, piretanide, polythiazide, trichlormethiazide and xipamide) were investigated for phototoxicity in a cell culture model. Cell death dependent on ultraviolet A fluence and test substance concentration was observed in the presence of the oral antidiabetics glibenclamide and gliquidone, as well as the diuretics bemetizide, bendroflumethiazide, benzyl-hydrochlorothiazide, bumetanide, butizide, hydrochlorothiazide, hydroflumethiazide, piretanide, polythiazide and trichlormethiazide. Bendroflumethiazide was phototoxic at 5x10(-5) M and higher concentrations, bemetizide, benzylhydrochlorothiazide, bumetanide and hydroflumethiazide were phototoxic at 2.5x10(-4) M and higher concentrations, and the oral antidiabetics glibenclamide and gliquidone as well as the diuretics butizide, hydrochlorothiazide, piretanide, polythiazide and trichlormethiazide were phototoxic at 5(-4) M and higher concentrations. Electron microscopic investigations showed swelling of mitochondria and endoplasmic reticulum as well as aggregation of euchromatin when the cells were irradiated in the presence of photosensitizers.

Administration, Oral↗

Effects of sulfonylureas on the synthesis and secretion of plasminogen activator from bovine aortic endothelial cells.

The effects of sulfonylureas on the production of plasminogen activator (PA) and antiactivator (PAI) were investigated using bovine aortic endothelial cells. All compounds studied stimulated PA release (1.3- to 5.2-fold), with glipizide being the most potent, followed by tolazamide, chlorpropamide, and tolbutamide, in that order, while glyburide was the least effective. Both tissue-type and urokinase-type PA production was enhanced. Studies using metabolic inhibitors indicated that both RNA and protein syntheses are required for the sulfonylurea-mediated stimulation of PA release. In addition to continuous release of the two PAs, there was also a continuous release of a single PAI, which did not show an increase after the sulfonylureas. These results suggest that, in addition to their beneficial effects in the treatment of diabetes mellitus, some sulfonylurea compounds may also have significant thrombolytic effects. These results also suggest that pharmacological enhancement of PA production by vascular endothelial cells may be a promising antithrombotic mechanism.

Animals↗

Metformin: an antihyperglycemic agent for treatment of type II diabetes.

OBJECTIVE: To review the comparative efficacy of metformin, sulfonylureas, and insulin in the treatment of patients with type II diabetes. DATA SOURCES: Articles were identified by a MEDLINE search of articles from 1966 to 1994, using the terms metformin, sulfonylurea, chlorpropamide, glipizide, glyburide, tolazamide, tolbutamide, and insulin, published in English, French, or German. Articles also were identified from bibliographies of pertinent articles. STUDY SELECTION: With the exception of articles dealing with the pharmacology of metformin, only randomized, active, controlled studies were selected for review. DATA EXTRACTION: Effects of metformin therapy on metabolic and cardiovascular risk factors were abstracted: weight, blood pressure, total and low-density lipoprotein cholesterol, triglycerides, fasting and postprandial glucose, and glycosylated hemoglobin. DATA SYNTHESIS: Metformin is an antihyperglycemic agent with a mean bioavailability of 50-60%. It is eliminated primarily by renal filtration and secretion and has a half-life of approximately 6 hours in patients with type II diabetes. Although the half-life of metformin is prolonged in patients with renal impairment, no specific dosage adjustments have been recommended. This agent has no effect in the absence of insulin. Metformin is as effective as the sulfonylureas in treating patients with type II diabetes and has a more prominent postprandial effect than the sulfonylureas or insulin. When combined with a sulfonylurea, metformin has been shown to exert antihyperglycemic effects in addition to the sulfonylurea with which it is combined. Metformin decreases absorption of vitamin B12 and folic acid, although reported cases of megaloblastic anemia are rare. Cimetidine decreases the elimination of metformin; therefore, the manufacturer reccommends a reduced metformin dosage when these agents are combined. The most frequently reported adverse effects of metformin are gastrointestinal in nature (diarrhea, nausea, abdominal pain, and metallic taste, in decreasing order). Metformin has been used in Canada, Great Britain, and the rest of Europe for more than 30 years and was approved for use in the US in December 1994. CONCLUSIONS: Three trials comprise the Food and Drug Administration approval database (one foreign). Metformin will be most useful in managing patients with poorly controlled postprandial hyperglycemia, as its postprandial effect is much greater than that of the sulfonylureas. In contrast, sulfonylureas or insulin are more effective for managing patients with poorly controlled fasting hyperglycemia. Metformin should be considered a first-line agent, particularly in obese or hyperlipidemic patients.

Diabetes Mellitus, Type 2↗

The tissue-specific effects of glucose-lowering drug targets on aging mediated through DNA methylation: a multi-omics genetic study.

BACKGROUND: DNA methylation plays a key role in mediating the anti-aging effects of glucose-lowering drugs. This study aims to systematically explore the potential anti-aging effects of target genes of FDA-approved glucose-lowering drugs and the underlying epigenetic mediators. METHODS: We conducted a two-sample Mendelian randomization (MR) study to investigate the putative causal relationships between the gene expression levels of glucose-lowering drug targets and 10 aging-related phenotypes, followed by a two-step MR to estimate the mediation effect of DNA methylation. Drug candidates were selected according to the latest review of clinical drug use for type 2 diabetes, and their target genes were obtained from the DGIdb. Tissue-specific cis-expression quantitative trait loci (eQTLs) from GTEx Consortium were selected as genetic instruments to proxy the expression level of drug-target genes. Glycemic phenotypes were used as positive controls to validate the instruments. The cis- and trans-methylation QTLs of Cytosine-phosphate-Guanine sites near the drug target genes were obtained from GoDMC Consortium. Additionally, we performed enrichment analyses focused on tissue specificity and aging pathways to further corroborate our findings. RESULTS: We obtained 194 target genes interacting with 36 FDA-approved anti-diabetic drugs, of which the tissue-specific eQTLs were used to proxy the drug target effects. MR showed strong evidence that nine interacting genes of six glucose-lowering drugs showed anti-aging potential on one or more aging-related phenotypes mediated by DNA methylation: EHMT2, HSPA4, IGF2BP2, IRS1, LPL, NDUFAF1, NDUFS3, SLC22A3, and TCF7L2. These genes were distributed in 17 tissues, especially in the central nervous system, suggesting a potential neural component in their anti-aging effects. For instance, expression of EHMT2 in several brain basal ganglia regions, where the gene interacted with Tolazamide, showed a protective effect on frailty (odds ratio (OR) in caudate = 1.02, 95%CI = 1.01-1.04, FDR adjusted P = 1.69 × 10-2; OR in putamen = 1.02, 95% CI = 1.01-1.03, PFDR = 3.37 × 10-2, OR in nucleus accumbens = 1.02, 95% CI = 1.01-1.04, PFDR = 3.37 × 10-2). These associations were externally validated by searching literature evidence in existing EWAS and TWAS studies, as well as evidence from enrichment analyses. CONCLUSIONS: This study prioritizes nine glucose-lowering genes as anti-aging drug targets in specific tissues and prioritizes their epigenetic regulation through DNA methylation for future drug development.

DNA Methylation↗

Impaired pituitary thyrotroph function in uncontrolled type II diabetes mellitus: normalization on recovery.

Altered thyroid hormone metabolism with decreased serum T3 and increased rT3 concentrations in patients with uncontrolled diabetes mellitus has been well documented. However, data regarding TSH secretion are sparse, especially the influence of glycemic control. Therefore, we examined serum T4, free T4, T3, rT3, T3 resin uptake, and TSH as well as the TSH response to TRH administration [expressed as TSH increment (delta TSH) and area under the curve (theta TSH)] in 29 newly discovered type II diabetic patients (DM) before treatment and in 12 normal subjects. The study was repeated in the DM patients after attainment of euglycemia and normalization of glycosylated hemoglobin (HbA1C) following therapy with diet and tolazamide for 8-12 weeks. Serum T4, free T4, and T3 resin uptake were not significantly different in DM compared to those in normal subjects. Serum T3 was low and rT3 was high in DM before treatment, and both normalized on achieving the euglycemic state. Basal TSH in uncontrolled DM was not significantly different from that in normal subjects and remained unchanged during treatment. However, delta TSH and theta TSH were significantly reduced (P less than 0.01) in uncontrolled DM. Both fasting plasma glucose (FBS) and HbA1C levels correlated inversely with delta TSH as well as theta TSH (FBS vs. delta TSH, r = -0.42; FBS vs. theta TSH, r = -0.38; HbA1C vs. delta TSH, r = -0.40; HbA1C vs. theta TSH, r = -0.42; P less than 0.05 for all correlations). Finally, TSH responses returned to normal on attainment of euglycemia and normal HbA1C concentrations. These studies indicate that regulation of TSH secretion is altered in DM during the decompensated state and normalizes when euglycemia is achieved.

Blood Glucose↗

The effects of diabetes mellitus on pharmacokinetics and pharmacodynamics in humans.

The article reviews the effect of diabetes on the pharmacokinetics and pharmacodynamics of drugs in humans. For most drugs which cross the gastrointestinal wall by passive diffusion, oral absorption is unlikely to be affected by diabetes, although a delay in the absorption of tolazamide and a decrease in the extent of absorption of ampicillin have been reported. Subcutaneous absorption of insulin is more rapid in diabetic patients, whereas the intramuscular absorption of several drugs is slower. The binding of a number of drugs in the blood is reduced in diabetes, which may be due to glycosylation of plasma proteins or displacement by plasma free fatty acids, the level of which is increased in diabetic patients. Plasma concentrations of albumin and alpha 1-acid glycoprotein do not appear to be changed by the disease. The distribution of drugs with little or no binding in the blood is generally not altered, although the volume of distribution of phenazone (antipyrine) is reduced by 20% in insulin-dependent diabetes mellitus (IDDM). In contrast to animal studies, the metabolic clearance of most drugs in humans appears to be unaffected or slightly reduced by the disease. The presence of fatty liver in non-insulin-dependent diabetes mellitus (NIDDM) may contribute to a reduced hepatic clearance, whereas decreased binding in the blood may cause an increase in clearance. The effect of diabetes on hepatic blood flow in humans appears to be unknown. Diabetes affects kidney function in a significant number of diabetic patients. During the first 10 years after the onset of the disease, glomerular filtration is elevated in these patients. Thus, the renal clearance of a number of antibiotics has been shown to be increased in diabetic children. As the disease progresses, renal function is impaired and glomerular function declines from the initial elevated state. In diabetic adults the renal clearance of drugs either is comparable with that found in nondiabetic individuals or is reduced. A limited number of studies have been conducted comparing the dose-response of cardiovascular drugs in diabetic patients with that in nondiabetic controls. Decreased, increased and unchanged responses have been reported. It is apparent that in some cases an altered response may be observed for a drug when administered to a diabetic patient compared with a similar nondiabetic individual. At the present time, it is not possible to ascertain whether these studies reflect true pharmacodynamic changes or merely alterations in pharmacokinetics.(ABSTRACT TRUNCATED AT 400 WORDS)

Diabetes Mellitus↗

Pharmacokinetics of oral antihyperglycaemic agents in patients with renal insufficiency.

This paper reviews the effects of renal insufficiency on the pharmacokinetics of oral antidiabetic drugs. Of the 3 groups of drugs currently available for the treatment of non-insulin-dependent diabetes mellitus (NIDDM), the sulphonylureas and metformin are, in general, well-tolerated and generally safe. In patients with chronic renal insufficiency, however, care must be exercised in the use of many of these drugs, as accumulation, either of the active drug or of active metabolites, can lead to serious adverse effects such as hypoglycaemia or, with metformin, lactic acidosis. The sulphonylurea drugs, to a greater or lesser degree, are metabolised in the liver to a variety of active or inactive compounds which, in general, are excreted by the kidneys. In addition, varying amounts of parent compound may depend on renal elimination. As a result, sulphonylurea drugs such as tolazamide, acetohexamide, chlorpropamide and glibenclamide (glyburide) are more likely to cause significant hypoglycaemia, as the metabolism of these drugs, compared with other commonly prescribed sulphonylureas, can lead to the accumulation of either the parent drug or the active metabolite in the presence of renal insufficiency. Tolbutamide, glipizide, gliclazide and gliquidone are much less likely to cause hypoglycaemia as their metabolites are either inactive or have minimal hypoglycaemic potency. Metformin is dependent on renal excretion and is not significantly metabolised. As a result, caution is required when treating patients with renal insufficiency where metformin accumulation can occur, with the danger of lactic acidosis. Although the correlation between creatinine clearance (CLCR) and total oral clearance of drug is weaker than the correlation between CLCR and renal clearance (CLR) of metformin, it is clear that renal insufficiency is associated with most cases of metformin-induced lactic acidosis. For this reason, clinicians in general would regard a raised plasma creatinine as a contraindication to metformin treatment. Acarbose, an alpha-glucosidase inhibitor, and a relatively new agent for treating NIDDM, is likely to be safe in patients with impaired renal function, as the drug is not significantly absorbed from the gut, but data on this subject are lacking.

Acarbose↗

Cardiovascular risk factors associated with insulin resistance: effects of oral antidiabetic agents.

Patients with type 2 diabetes mellitus have a greater risk of cardiovascular disease than nondiabetic individuals. These patients are often insulin resistant and have an associated clustering of risk factors that contribute to cardiovascular disease. The risk factors include dyslipidemia, hypertension, altered hemostasis, and chronic inflammation. A primary objective in the management of type 2 diabetes mellitus is normalization of blood glucose levels; however, some of the oral drugs used to control blood glucose levels have significant effects on these risk factors. In this article, we review the current data involving the modification of these cardiovascular risk factors by the biguanide (metformin), the thiazolidinediones (troglitazone, rosiglitazone, and pioglitazone), the alpha-glucosidase inhibitors (miglitol, acarbose), and the insulin secretagogs (glyburide [glibenclamide], glipizide, chlorpropamide, tolbutamide, tolazamide, glimepiride, repaglinide, and nateglinide). Generally, the thiazolidinediones improve hemostasis and endothelial function and reduce blood pressure, while having variable effects on dyslipidemia. Metformin improves dyslipidemia and altered hemostasis and decreases plasma C-reactive protein levels with little or no effect on blood pressure. Data on the effects of the alpha-glucosidase inhibitors and insulin secretagogs are sparse; however, these drugs appear to have little or no effect on cardiovascular risk factors.

Administration, Oral↗

[A 50-year history of new drugs in Japan-the development and progress of anti-diabetic drugs and the epidemiological aspects of diabetes mellitus].

The development and progress of antidiabetic drugs (e.g., insulin preparations and hypoglycemic drugs) are retrospectively investigated in Japan. Their influences on the treatment of diabetes mellitus (DM) and its epidemiological aspects are also discussed. 1) Insulin preparations: Insulin was introduced for DM therapy in 1925, two or three years after its discovery in Canada. The preparations were raw extracts of bovine or porcine pancreas. These did not prevail widely in Japan because of the low incidence of DM before World Wan II. After the war, a shortage of mammalian materials compelled the use of fish pancreatic tissues such as bonito and/or tuna for insulin production. Insulin infection, so-called regular insulin, was first promoted in the 6th "Pharmacopoeia Japonica" (JP6) in 1951 and has been maintained to the present edition (JP14, 2001). Although depot-type insulin preparations were developed in the USA and Europe during the war, the introduction of those preparations to Japan was delayed until 1951, when Protamine zinc insulin appeared. Globin zinc insulin and Isophane insulin were introduced for clinical use in 1952 and 1955, respectively. These were also adopted for JP7 (1961). Biphasic-type insulin, which has a rapid onset and long duration of activity, appeared in 1965. Purified preparations from bovine or porcine sources have been available since 1980, which might be a strong reason for the decrease in insulin allergy. Insulin from animal origin has been supplied for almost 60 years since its discovery. Amino acid sequences of insulins from various species of animals were determined by the pioneering studies of Sanger and his associates. Human insulin, which differs from porcine insulin by only one amino acid, was produced by Novo researchers in 1982 using a semi-synthetic method. Then the Lilly group soon succeeded in obtaining human insulin by recombinant DNA technology in the same year. Both products were introduced to Japan in 1985, and the recombinant products prevailed throughout the 1990s. Human insulin analogues (i.e., Insulin lispro and Insulin aspart) appeared in 2001. These are applied for after-meal glycosmia owing to their ultrarapid onset of activity. Self-injection by DM patients was legalized in 1981. To make the infection technique sure and easy, cartridge (pen-type) and disposable kit-type needles were devised in the 1990s. 2) Oral hypoglycemic drugs: Instead of the exclusive parenteral usage of insulins, there was also demand for oral dosage forms. The first of the sulfonyrlurea (SU) group, BZ-55, was used for DM clinically in 1955 in Germany. But it was soon withdrawn because of its antibacterial action. This led to the development of various SU groups. Tolbutamide (1956), chlorpropamide (1959), acetohexamide (1964) and tolazamide (1961) were introduced to Japan as first-generation SUs. Then glyclopyramide (Kyorin, 1965), glybenclamide (1971), gliclazide (1984) and glimepiride (1999) appeared as the second-generation SUs. These were used orally for Type 2 diabetes. Biguanide (BG) group, phenformin HC1 (1959), metformin HC1 (1961) and buformin HC1 (1961) had also been in use by oral treatment of Type 2 diabetes. SU appears to act by increasing the sensitivity of b-cells, which secrete insulin. BG probably exerts by increasing glucose transport across the membranes of target organs. 3) New types of antidiabetic drugs: a-Glucosidase inhibitors (i.e., acarbose: Bayer, 1993; and voglibose: Takeda, 1994) act on hyperglycemia after meals by decreasing glucose absorption. Thiazolidinedione compounds, such as troglitazone (Sankyo, 1995) and pioglitazone HC1 (Takeda, 1994) act by increasing the insulin sensitivity of the target tissues. These are useful for Type 2 DM patients when SUs are ineffective. Nevertheless, troglitazone was discontinued in 2000 due to severe liver damage. Nateglinide (Ajinomoto Co., 1999), which is a D-phenylalanine derivative acting similar to SUs, is useful orally for after-meal hyperglycemia of Type 2 diabetes. Epalrestat (Ono Yakuhin Co., 1992) is effective for diabetic neuropathy by reducing the formation of sorbitol. These anti-DM drugs were recently studied and developed in Japan. 4) The Japan Diabetes Society proposed a guideline on diagnostic criteria and treatment of diabetes mellitus (DM) in 1999 and revised it in 2002. DM is classified as insulin-dependent DM (Type l) and non-insulin dependent DM (Type 2). Type 1, juvenile onset DM, requires insulin therapy to prevent ketosis and to sustain life. Treatment of type 2, adult onset DM, is recommended as a step-by-step method, starting with dietary-exercise therapy, followed by oral hypoglycemic drugs and then insulin therapy. DM patients with complications should have a therapy devised to match their circumstances. 5) Epidemiological aspects: The mortality rate of DM compared to the time of drug appearance was traced from 1920 to 2000. The curve goes down slowly in the time frame of World War II, but rises from 1950 to 1970. The elevation could not be suppressed by the appearance of SUs, BGs or improved insulin preparations. The curve runs flat from 1980 to 1990, which might be related to the use of purified insulin or human insulin therapy. The mortality rate of DM indicates that death by hyperglycemic coma and other deaths resulting from complications are excluded. The survey of the principal cause of death by DM during the period of 1981-1990 indicates that the death rate due to hyperglycemic coma is only 1.7% of the total deaths caused by DM. The effect of drug therapy on all of the death resulting from DM is not detected. Hospital visitation and admission rates of the DM patients have been recorded since 1952 in Japan. This curve is rising continuously, and none of the antidiabetic drugs has been able to suppress it. These data show that the antidiabetic drugs relieve DM symptoms through their effective hypoglycemic actions, but that they cannot suppress the mortality rate of DM. It is possible that none of the drugs currently available can suppress the increasing tendency of DM patients.

Diabetes Mellitus↗

Acute oral hypoglycemic ingestions.

We reviewed the poison center records of 48 consecutive reports of oral hypoglycemic exposure reported to the Rush Poison Control Center between January 1988 and December 1989. The average age of ingestion was 15.0 y (range 1 to 75 y). Twenty-three of the patients (48%) were male, while 25 (52%) were female. Twenty-nine patients ingested glyburide, 10 chlorpropamide, 6 glipizide, 2 tolbutamide, and 1 each for tolazamide and phenformin. One patient ingested both glyburide and tolbutamide. Sixteen cases (33%) involved coingestants. Accidental cause was the primary reason for ingestion in 33 cases (69%) with suicidal intent being mentioned in an additional 11 cases (23%). Thirteen patients (27%) were treated and released from a health care facility, while the same percentage of patients were admitted. There was no adverse effect in 24 patients (50%) while 9 patients (19%) had minor effects without residual disability. Only 2 patients (4%) experienced a major effect. No deaths were reported. We conclude that oral hypoglycemic ingestions generally have a successful outcome and there does not appear to be a significant difference whether a short/long acting agent or first/second-generation product was ingested.

Acute Disease↗

Use of sulfonylurea agents in older diabetic patients.

The elderly patient with type II diabetes should be treated in much the same fashion as a younger person with the same disease, although emphasis needs to be placed on minimizing side effects, drug interactions, and hypoglycemia. Chlorpropamide should not be used in these patients, unless there is no other choice. The remaining agents--tolbutamide, acetohexamide, tolazamide, glyburide, and glipizide--should be started at low doses and gradually increased until optimal diabetic control is reached. The initial treatment goal is a FPG level of less than 180 mg/dl and a final goal is a 1- to 2-hour PPG concentration between 140 and 180 mg/dl. The glycosylated hemoglobin value should be no greater than 1.5% above the upper limit of normal, and should be lower, if possible. It must be kept in mind, however, that the closer diabetic patients are to achieving euglycemia, the more likely is hypoglycemia. Treatment goals therefore may have to be relaxed in someone at increased risk of hypoglycemia (e.g., patients with irregular eating habits or renal insufficiency) or when hypoglycemia may pose a greater hazard (e.g., patients with coronary artery or cerebral vascular disease). Patients on sulfonylurea agents should have blood glucose values measured once a month and glycosylated hemoglobin levels determined once every 3 months to alert the clinician to the possible need to adjust therapy. In this way, potential hypoglycemia can be avoided if blood glucose levels are drifting too low and chronic hyperglycemia can be identified and treated within a short period of time. When a patient's status changes--e.g., he is placed on new medication, becomes depressed and anorexic, or develops another medical problem--care must be taken to re-evaluate his diabetes management. Drugs such as sulfonamide antibiotics can potentiate the action of the sulfonylureas and cause hypoglycemia, renal insufficiency may necessitate changing the type of sulfonylurea agent or decreasing the dose, and malnutrition may obviate any need for therapy with an oral hypoglycemic agent. If these guidelines are kept in mind, the older diabetic patient can be managed on a sulfonylurea agent in conjunction with the appropriate diet. Should these measures prove to be ineffective, then insulin therapy should be instituted. Controlling chronic hyperglycemia will help improve the quality of life for patients with diabetes and decrease the probability of developing some of the devastating complications associated with this disease.

Aged↗

Sulphonylureas and biguanides do not affect insulin binding in H35 hepatoma cells.

Six sulphonylureas (tolbutamide, tolazamide, chlorpropamide, glibornuride, glipizide and gliquidone) and 2 biguanides (metformin and buformin) were tested for possible effects on insulin binding to H 35 rat hepatoma cells in culture. Insulin binding was measured after 24 and 72 hr of culturing cells in medium containing the drugs. Buformin and gliquidone were tested in concentrations from 10(-8)-5 X 10(-5) M, the other drugs in concentrations from 10(-7)-5 X 10(-4) M. All 24-hr experiments were repeated in cells down-regulated with 10 micrograms/ml insulin. None of the oral hypoglycemic agents tested had any significant influence on insulin binding to H 35 hepatoma cells, either in the presence or absence of insulin. We suggest that the insulin receptor status, at least in this type of liver cell, is not influenced by sulphonylureas or biguanides.

Animals↗