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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↗

[Use of sulfonylurea (SU) in the treatment of diabetes mellitus].

The main action of SU in the treatment of diabetes mellitus is the stimulation of insulin secretion, and the extrapancreatic action including stimulation of insulin actions in glycogen synthesis and inhibition of glucose production in liver is also reported. The indication of SU in the treatment of diabetes mellitus is for NIDDM usually after diet therapy or suitable exercise therapy. In IDDM and several special cases including diabetic ketoacidosis, severe infection, pregnancy, poor-controlled NIDDM, gangrane, surgery operation, severe renal or hepatic failure et al. insulin therapy should be started. In mild NIDDM, gliclazide, tolbutamide or acetohexamide is used, and in more severe NIDDM glibenclamide is used. The action time of chlorpropamide is very long, usually from 20 to 60 hours, therefore special care should be taken for hypoglycemia. As the causes for secondary failure, transition from NIDDM to IDDM, failure of diet therapy, glucose toxity and others are considered.

Aged↗

[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↗

Phytopharmacological evaluation of Ficus glomerata, Roxb. fruit for hypoglycaemic activity in normal and diabetic rabbits.

The investigation was designed to study effects of powdered Ficus glomerata fruits on blood glucose levels in groups of normal and alloxan-diabetic rabbits. In normal groups, administration of 1, 2, 3 and 4 g/kg body weight of F. glomerata pulv lowered the blood glucose levels significantly. The methanolic extract of the drug also produced significant hypoglycaemia but the aqueous extract could not produce this effect. In alloxan diabetic rabbits the treatment with 2, 3 and 4 g/kg body weight of the plant drug produced a significant fall in blood glucose levels. The methanolic extract of the pulv also produced a significant decrease in the diabetics hut the aqueous extract could produce a slight fall in glucose levels in these rabbits. Acetohexamide in 500 mg/kg dose produced a significant decrease in blood glucose levels of the normal rabbits only. Therefore, it is conceivable that the indigenous plant contains more than one type of hypoglycaemic principles which seem to act by producing an organotropic effect on the B-cells resulting in an increased secretion of insulin. In addition, it is also possible that the drug acts by providing certain necessary elements to the beta cells, especially in the alloxan-diabetic rabbits. Furthermore, it may be assumed that the indigenous plant pulv would also help the diabetics by providing certain essential minerals like calcium, phosphorus, zinc, magnesium, manganese, copper and others.

Journal Article↗

Antidiabetic evaluation of Mucuna pruriens, Linn seeds.

Effects of powdered Mucuna pruriens seeds on blood glucose levels were investigated in normal and alloxan-diabetic rabbits. In normal group 0.5, 1 and 2 g/kg of M. pruriens pulv significantly decreased the blood glucose levels while in alloxan-diabetic rabbits only 1 and 2 g/kg body weight caused a significant fall. The reference drug, acetohexamide in 500 mg/kg dose significantly reduced the blood glucose levels but in normal rabbits only. High levels of trace elements like manganese, zinc, and others were found in these seeds. Therefore, it is conceivable that M. pruriens seeds contain hypoglycaemic principles, may be both organic and mineral, which seem to act indirectly by stimulating the release of insulin and/or by a direct insulin-like action.

Alloxan↗

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↗

The influence of oral hypoglycaemic sulfonyl ureas on prostacyclin release by the rat thoracic aorta.

The influence of some oral hypoglycaemic sulfonyl ureas on PGI2 release by the rat thoracic aorta in vitro was examined using reversed phase HPLC. The column (Micro Pack MCH-10) (30 cm X 4 mm) was eluted using the solvent mixture:acetonitrile:glacial acetic acid:water (23:0.1:76.9v/v/v). Preincubation of the aortae with the sulfonyl ureas (15 microM) enhanced PGI2 release. The control release (measured as 6-oxo-PGF1 alpha) was 1.15 +/- 0.1 ng/mg wet weight. This was significantly increased to 2.30 +/- 0.20, 2.50 +/- 0.30, 2.90 +/- 0.25, 2.10 +/- 0.20 and 2.40 +/- 0.30 ng/mg by glibenclamide, gliclazide, acetohexamide, glibornuride and chlorpropamide, respectively (P less than 0.01, n = 6). Mepacrine (0.5 mM) abolished both basal and stimulated release. Thus, the enhanced PGI2 release may probably involve activation of the enzyme phospholipase A2. None of the compounds affected ADP-induced rat platelet aggregation even when the platelets were preincubated for 10 min at a concentration of 100-180 microM. The enhanced release of PGI2 may help to delay the development and progression of retinopathy, nephropathy, hypertension and thrombosis in diabetic patients prone to these diseases. Furthermore, the enhanced PGI2 release may partly underly some of the previously observed and poorly explained findings following the administration of some sulfonyl ureas into mammals.

6-Ketoprostaglandin F1 alpha↗