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Acarbose

pharmaceutical raw materials
Acarbose structure

Acarbose 

structure
  • CAS No:

    56180-94-0

  • Formula:

    C25H43NO18

  • Chemical Name:

    Acarbose

  • Synonyms:

    D-Glucose,O-4,6-dideoxy-4-[[(1S,4R,5S,6S)-4,5,6-trihydroxy-3-(hydroxymethyl)-2-cyclohexen-1-yl]amino]-α-D-glucopyranosyl-(1→4)-O-α-D-glucopyranosyl-(1→4)-;D-Glucose,O-4,6-dideoxy-4-[[4,5,6-trihydroxy-3-(hydroxymethyl)-2-cyclohexen-1-yl]amino]-α-D-glucopyranosyl-(1→4)-O-α-D-glucopyranosyl-(1→4)-,[1S-(1α,4α,5β,6α)]-;O-4,6-Dideoxy-4-[[(1S,4R,5S,6S)-4,5,6-trihydroxy-3-(hydroxymethyl)-2-cyclohexen-1-yl]amino]-α-D-glucopyranosyl-(1→4)-O-α-D-glucopyranosyl-(1→4)-D-glucose;BAY-g 5421;Acarbose;Glucobay;Ascarbose;Precose;Prandase;Arcabose;(2R,3R,4R,5R)-4-[[(2R,3R,4R,5S,6R)-5-[[(2R,3R,4S,5S,6R)-3,4-Dihydroxy-6-methyl-5-[[(1S,4R,5S,6S)-4,5,6-trihydroxy-3-(hydroxymethyl)cyclohex-2-enyl]amino]tetrahydro-2H-pyran-2-yl]oxy]-3,4-dihydroxy-6-(hydroxymethyl)tetrahydro-2H-pyran-2-yl]oxy]-2,3,5,6-tetrahydroxyhexanal;(2R,3R,4R,5R)-4-(((2R,3R,4R,5S,6R)-5-(((2R,3R,4S,5S,6R)-3,4-Dihydroxy-6-methyl-5-(((1S,4R,5S,6S)-4,5,6-trihydroxy-3-(hydroxymethyl)cyclohex-2-enyl)amino)tetrahydro-2H-pyran-2-yl)oxy)-3,4-dihydroxy-6-(hydroxymethyl)tetrahydro-2H-pyran-2-yl)oxy)-2,3,5,6-tetrahydroxyhexanal;Acarviostatin I01;65407-27-4

  • Categories:

    Active Pharmaceutical Ingredients  >  Hormones and the Endocrine System

Description

Acarbose is an inhibitor of alpha glucosidase, an anti-diabetic drug.


Acarbose is a tetrasaccharide derivative consisting of a dideoxy-4-{[4,5,6-trihydroxy-3-(hydroxymethyl)cyclohex-2-en-1-yl C7 cyclitol moiety [called valienol (or valienamine)] linked via nitrogen to isomaltotriose. It has a role as an EC 3.2.1.20 (alpha-glucosidase) inhibitor, an EC 3.2.1.1 (alpha-amylase) inhibitor, a hypoglycemic agent and a geroprotector. It is a conjugate base of an acarbose(1+).|Acarbose is an alpha glucosidase inhibitor which decreases intestinal absorption of carbohydrates and is used as an adjunctive therapy in the management of type 2 diabetes. Acarbose has been linked to rare instances of clinically apparent acute liver injury.|An inhibitor of ALPHA-GLUCOSIDASES that retards the digestion and absorption of DIETARY CARBOHYDRATES in the SMALL INTESTINE.

Acarbose Basic Attributes

645.6

645.60

260-030-7

758915

DTXSID8046034

Amorphous powder|White to off-white powder

A - Alimentary tract and metabolism

29400090

Characteristics

321

log Kow = -8.08 (est)

Off-White Solid

1.7±0.1 g/cm3

165-170°C

971.6°C at 760 mmHg

541.4±34.3 °C

1.689

soluble in water.

Store at RT

Oral-rat LD50:24000 mg/kg; Oral-Mouse LD50: 24000 mg/kg

Flammable; decomposes by heating to release toxic nitrogen oxide fumes

D18 +165° (c = 0.4 in water)

pKa = 5.1

231 Ų [M+H]+ [CCS Type: TW, Method: calibrated with polyalanine and drug standards]

Hydroxyl radical reaction rate constant = 4.58X10-10 cu cm/molec-sec at 25 °C (est)

Safety Information

NONH for all modes of transport

1

24/25

LZ7153000

Warehouse ventilated, low temperature and dry

SRP: Expired or waste pharmaceuticals shall carefully take into consideration applicable DEA, EPA, and FDA regulations. It is not appropriate to dispose by flushing the pharmaceutical down the toilet or discarding to trash. If possible return the pharmaceutical to the manufacturer for proper disposal being careful to properly label and securely package the material. Alternatively, the waste pharmaceutical shall be labeled, securely packaged and transported by a state licensed medical waste contractor to dispose by burial in a licensed hazardous or toxic waste landfill or incinerator.|SRP: At the time of review, regulatory criteria for small quantity disposal are subject to significant revision, however, household quantities of waste pharmaceuticals may be managed as follows: Mix with wet cat litter or coffee grounds, double bag in plastic, discard in trash.

The Approved Drug Products with Therapeutic Equivalence Evaluations identifies currently marketed prescription drug products, including acarbose, approved on the basis of safety and effectiveness by FDA under sections 505 of the Federal Food, Drug, and Cosmetic Act.

|Warning|H302 (100%): Harmful if swallowed [Warning Acute toxicity, oral]|P264, P270, P301+P312, P330, and P501|The GHS information provided by 1 company from 1 notification to the ECHA C&L Inventory.

Toxicity

practically nontoxic

In several large clinical trials, serum enzyme elevations above 3 times the upper limit of normal were more common with acarbose therapy (2% to 5%) than with placebo, but all elevations were asymptomatic and resolved rapidly with stopping therapy. These studies reported no instances of clinically apparent liver injury. Subsequent to approval and with wide clinical use, however, at least a dozen instances of clinically apparent liver injury have been linked to acarbose use. The liver injury typically arises 2 to 8 months after starting therapy and is associated with a hepatocellular pattern of serum enzyme elevations with marked increases in serum ALT levels, suggestive of acute viral hepatitis. Immunoallergic features and autoantibody formation are not typical. While most cases are mild, some are associated with marked jaundice and cases with a fatal outcome have been reported to the sponsor. No cases of chronic liver injury or vanishing bile duct syndrome have been linked to acarbose use, and most large series of cases of drug induced liver injury and acute liver failure have not identified cases due to acarbose. Rechallenge has been carried out in several instances and resulted in recurrence with a shortening of the time to onset.

... A possible interaction between digoxin and acarbose was reported. In these reports, absorption of digoxin was decreased dramatically by coadministration of acarbose. The hypoglycemic action of acarbose stems from the reversible and competitive inhibition of alpha-glucosidase that hydrolyzes oligosaccharides absorbed later as glucose molecules. Acarbose functions exclusively in intestine, and most of it appears unchanged in feces. Digoxin is a well-known medication used in the treatment of heart failure and/or chronic atrial fibrillation. Acarbose delays the digestion of sucrose and starch in humans; as a result, a disturbance of gastrointestinal transit, causing loose stools, follows. Therefore, it is possible that gastrointestinal motility is increased, and absorption of digoxin decreased, by coadministration with acarbose. It is also possible that acarbose interferes with the hydrolysis of digoxin before its absorption, resulting in alteration in the release of the corresponding genine and thus affecting the reliability of the digoxin laboratory test. These case reports indicate that the absorption of digoxin is decreased by the administration of acarbose. ...|In a single-centre, placebo-controlled, clinical study, the influence of an antacid containing magnesium hydroxide and aluminium hydroxide (Maalox 70; 10 mL) on the pharmacodynamics of the oral antidiabetic drug acarbose (Glucobay 100, Bay g 5421, CAS 56180; 100 mg) was tested in 24 healthy male volunteers. The drugs were given alone or in combination and were compared with placebo. Volunteers were randomized into four different treatment groups. The daily medication over 4 days was 1 x 1 placebo tablet, or 1 x 1 tablet containing 100 mg acarbose, or 1 x 1 tablet containing 100 mg acarbose plus 10 mL antacid suspension, or 1 x 1 placebo tablet plus 10 ml antacid suspension, interrupted by wash-out phases of 6-10 days between successive treatments. Efficacy was assessed on the basis of postprandial blood glucose and serum insulin levels after administration of 75 g sucrose, and was measured as maximal concentrations and 'area under the curve' (0-4 hr). No influence of the antacid on the blood glucose and insulin-lowering effect of acarbose could be detected. Hence, there does not appear to be a significant interaction between acarbose and the antacid tested. Antacids similar to that tested do not need to be classified as a contraindication when used in combination with acarbose.|To investigate whether treatment with acarbose alters the pharmacokinetics (PK) of coadministered rosiglitazone. Sixteen healthy volunteers (24-59-years old) received a single 8-mg dose of rosiglitazone on day 1, followed by 7 days of repeat dosing with acarbose [100 mg three times daily (t.i.d.) with meals]. On the last day of acarbose t.i.d. dosing (day 8), a single dose of rosiglitazone was given with the morning dose of acarbose. PK profiles following rosiglitazone dosing on days 1 and 8 were compared, and point estimates (PE) and associated 95% confidence intervals (CI) were calculated. Rosiglitazone absorption [as measured with peak plasma concentration (Cmax) and time to peak concentration (Tmax)] was unaffected by acarbose. The area under the concentration-time curve from time zero to infinity [AUC(0-infinity)] was on average 12% lower (95% CI-21%, -2%) during rosiglitazone + acarbose coadministration and was accompanied by an approximate 1-hr (23%) reduction in terminal elimination half-life (4.9 hr versus 3.8 hr). This small decrease in AUC(0-infinity) appears to be due to an alteration in systemic clearance of rosiglitazone and not changes in absorption. These observed changes in AUC(0-infinity) and half-life are not likely to be clinically relevant. Coadministration of rosiglitazone and acarbose was well tolerated. Acarbose administered at therapeutic doses has a small, but clinically insignificant, effect on rosiglitazone pharmacokinetics.

The mean steady-state area under the curve (AUC) and maximum concentrations of acarbose were approximately 1.5 times higher in elderly compared to young volunteers; however, these differences were not statistically significant.|Patients with severe renal impairment (Clcr < 25 mL/min/1.73 sq m) attained about 5 times higher peak plasma concentrations of acarbose and 6 times larger AUCs than volunteers with normal renal function.|Because current information strongly suggests that abnormal blood glucose levels during pregnancy are associated with a higher incidence of congenital anomalies as well as increased neonatal morbidity and mortality, most experts recommend that insulin be used during pregnancy to maintain blood glucose levels as close to normal as possible.

Drug Information

Acarbose is an alpha glucosidase inhibitor which decreases intestinal absorption of carbohydrates and is used as an adjunctive therapy in the management of type 2 diabetes. Acarbose has been linked to rare instances of clinically apparent acute liver injury.

Antidiabetic Agents

Enzyme Inhibitors; Hypoglycemic Agents|Acarbose tablets are indicated as an adjunct to diet and exercise to improve glycemic control in adults with type 2 diabetes mellitus./Included in US product label/|THERAPEUTIC CATEGORY: Antidiabetic

Acarbose is contraindicated in patients with known hypersensitivity to the drug and in patients with diabetic ketoacidosis or cirrhosis. Acarbose is also contraindicated in patients with inflammatory bowel disease, colonic ulceration, partial intestinal obstruction or in patients predisposed to intestinal obstruction. In addition, acarbose is contraindicated in patients who have chronic intestinal diseases associated with marked disorders of digestion or absorption and in patients who have conditions that may deteriorate as a result of increased gas formation in the intestine.|Because of its mechanism of action, acarbose when administered alone should not cause hypoglycemia in the fasted or postprandial state. Sulfonylurea agents or insulin may cause hypoglycemia. Because acarbose given in combination with a sulfonylurea or insulin will cause a further lowering of blood glucose, it may increase the potential for hypoglycemia. Hypoglycemia does not occur in patients receiving metformin alone under usual circumstances of use, and no increased incidence of hypoglycemia was observed in patients when acarbose was added to metformin therapy. Oral glucose (dextrose), whose absorption is not inhibited by acarbose, should be used instead of sucrose (cane sugar) in the treatment of mild to moderate hypoglycemia. Sucrose, whose hydrolysis to glucose and fructose is inhibited by acarbose, is unsuitable for the rapid correction of hypoglycemia. Severe hypoglycemia may require the use of either intravenous glucose infusion or glucagon injection.|Gastrointestinal symptoms are the most common reactions to acarbose. ... In a one-year safety study, during which patients kept diaries of gastrointestinal symptoms, abdominal pain and diarrhea tended to return to pretreatment levels over time, and the frequency and intensity of flatulence tended to abate with time. The increased gastrointestinal tract symptoms in patients treated with acarbose are a manifestation of the mechanism of action of acarbose and are related to the presence of undigested carbohydrate in the lower GI tract. If the prescribed diet is not observed, the intestinal side effects may be intensified. If strongly distressing symptoms develop in spite of adherence to the diabetic diet prescribed, the doctor must be consulted and the dose temporarily or permanently reduced.|In long-term studies (up to 12 months, and including acarbose doses up to 300 mg t.i.d.) conducted in the United States, treatment-emergent elevations of serum transaminases (AST and/or ALT) above the upper limit of normal (ULN), greater than 1.8 times the ULN, and greater than 3 times the ULN occurred in 14%, 6%, and 3%, respectively, of acarbose-treated patients as compared to 7%, 2%, and 1%, respectively, of placebo-treated patients. Although these differences between treatments were statistically significant, these elevations were asymptomatic, reversible, more common in females, and, in general, were not associated with other evidence of liver dysfunction. In addition, these serum transaminase elevations appeared to be dose related. In US studies including acarbose doses up to the maximum approved dose of 100 mg t.i.d., treatment-emergent elevations of AST and/or ALT at any level of severity were similar between acarbose-treated patients and placebo-treated patients (p >/= 0.496).|For more Drug Warnings (Complete) data for Acarbose (16 total), please visit the HSDB record page.

Compounds that inhibit or block the activity of GLYCOSIDE HYDROLASES such as ALPHA-AMYLASES and ALPHA-GLUCOSIDASES. (See all compounds classified as Glycoside Hydrolase Inhibitors.)

In a study of 6 healthy men, less than 2% of an oral dose of acarbose was absorbed as active drug, while approximately 35% of total radioactivity from a 14C-labeled oral dose was absorbed. An average of 51% of an oral dose was excreted in the feces as unabsorbed drug-related radioactivity within 96 hours of ingestion. Because acarbose acts locally within the gastrointestinal tract, this low systemic bioavailability of parent compound is therapeutically desired.|Following oral dosing of healthy volunteers with 14C-labeled acarbose, peak plasma concentrations of radioactivity were attained 14-24 hours after dosing, while peak plasma concentrations of active drug were attained at approximately 1 hour. The delayed absorption of acarbose-related radioactivity reflects the absorption of metabolites that may be formed by either intestinal bacteria or intestinal enzymatic hydrolysis.|Acarbose is metabolized exclusively within the gastrointestinal tract, principally by intestinal bacteria, but also by digestive enzymes. A fraction of these metabolites (approximately 34% of the dose) was absorbed and subsequently excreted in the urine.|The fraction of acarbose that is absorbed as intact drug is almost completely excreted by the kidneys. When acarbose was given intravenously, 89% of the dose was recovered in the urine as active drug within 48 hours. In contrast, less than 2% of an oral dose was recovered in the urine as active (i.e., parent compound and active metabolite) drug. This is consistent with the low bioavailability of the parent drug.|For more Absorption, Distribution and Excretion (Complete) data for Acarbose (6 total), please visit the HSDB record page.

Acarbose is metabolized exclusively within the gastrointestinal tract, principally by intestinal bacteria, but also by digestive enzymes. ... At least 13 metabolites have been separated chromatographically from urine specimens. The major metabolites have been identified as 4-methylpyrogallol derivatives (i.e., sulfate, methyl, and glucuronide conjugates). One metabolite (formed by cleavage of a glucose molecule from acarbose) also has alpha-glucosidase inhibitory activity. This metabolite, together with the parent compound, recovered from the urine, accounts for less than 2% of the total administered dose.

The plasma elimination half-life of acarbose activity is approximately 2 hours in healthy volunteers.

In contrast to sulfonylureas, acarbose does not enhance insulin secretion. The antihyperglycemic action of acarbose results from a competitive, reversible inhibition of pancreatic alpha-amylase and membrane-bound intestinal alpha-glucoside hydrolase enzymes. Pancreatic alpha-amylase hydrolyzes complex starches to oligosaccharides in the lumen of the small intestine, while the membrane-bound intestinal alpha-glucosidases hydrolyze oligosaccharides, trisaccharides, and disaccharides to glucose and other monosaccharides in the brush border of the small intestine. In diabetic patients, this enzyme inhibition results in a delayed glucose absorption and a lowering of postprandial hyperglycemia. Because its mechanism of action is different, the effect of acarbose to enhance glycemic control is additive to that of sulfonylureas, insulin or metformin when used in combination. In addition, acarbose diminishes the insulinotropic and weight-increasing effects of sulfonylureas. Acarbose has no inhibitory activity against lactase and consequently would not be expected to induce lactose intolerance.|Acarbose represents a pharmacological approach to achieving the metabolic benefits of a slower carbohydrate absorption in diabetes, by acting as a potent, competitive inhibitor of intestinal alpha-glucosidases. Acarbose molecules attach to the carbohydrate binding sites of alpha-glucosidases, with an affinity constant that is much higher than that of the normal substrate. Because of the reversible nature of the inhibitor-enzyme interaction, the conversion of oligosaccharides to monosaccharides is only delayed rather than completely blocked. Acarbose has the structural features of a tetrasaccharide and does not cross the enterocytes after ingestion. Thus, its pharmacokinetic properties are well suited to the pharmacological action directed exclusively towards the intestinal glucosidases. ...|The aim of the present study was to reveal the possible involvement of thyroid hormones in the antihyperglycaemic and antiperoxidative effects of acarbose. The effects of acarbose on changes in serum concentration of thyroid hormones, insulin and glucose in dexamethasone-induced type 2 diabetic mice were investigated. Simultaneously, changes in lipid peroxidation (LPO), reduced glutathione (GSH) content and the activity of associated endogenous anti-oxidant enzymes, such as superoxide dismuatase (SOD) and catalase (CAT), were investigated in renal and cardiac tissues, which are commonly affected in diabetes mellitus. Although administration of dexamethasone (1.0 mg/kg, i.m., for 22 days) caused hyperglycaemia with a parallel increase in serum insulin and tissue LPO, it decreased thyroid hormone concentrations and the activity of SOD and CAT. When dexamethasone-induced hyperglycemic mice were treated with acarbose (10 mg/kg per day, p.o., for 15 days), levels of thyroid hormones were increased and most of the abnormalities, including serum insulin and glucose levels, tissue LPO, SOD and CAT activity and GSH content, were reversed. These findings suggest the involvement of thyroid hormones in the mode of action of acarbose in amelioration of type 2 diabetes mellitus.

/SRP:/ Immediate first aid: Ensure that adequate decontamination has been carried out. If patient is not breathing, start artificial respiration, preferably with a demand valve resuscitator, bag-valve-mask device, or pocket mask, as trained. Perform CPR if necessary. Immediately flush contaminated eyes with gently flowing water. Do not induce vomiting. If vomiting occurs, lean patient forward or place on the left side (head-down position, if possible) to maintain an open airway and prevent aspiration. Keep patient quiet and maintain normal body temperature. Obtain medical attention. /Poisons A and B/|/SRP:/ Basic treatment: Establish a patent airway (oropharyngeal or nasopharyngeal airway, if needed). Suction if necessary. Watch for signs of respiratory insufficiency and assist ventilations if needed. Administer oxygen by nonrebreather mask at 10 to 15 L/min. Monitor for pulmonary edema and treat if necessary ... . Monitor for shock and treat if necessary ... . Anticipate seizures and treat if necessary ... . For eye contamination, flush eyes immediately with water. Irrigate each eye continuously with 0.9% saline (NS) during transport ... . Do not use emetics. For ingestion, rinse mouth and administer 5 mL/kg up to 200 mL of water for dilution if the patient can swallow, has a strong gag reflex, and does not drool ... . Cover skin burns with dry sterile dressings after decontamination ... . /Poisons A and B/|/SRP:/ Advanced treatment: Consider orotracheal or nasotracheal intubation for airway control in the patient who is unconscious, has severe pulmonary edema, or is in severe respiratory distress. Positive-pressure ventilation techniques with a bag valve mask device may be beneficial. Consider drug therapy for pulmonary edema ... . Consider administering a beta agonist such as albuterol for severe bronchospasm ... . Monitor cardiac rhythm and treat arrhythmias as necessary ... . Start IV administration of D5W /SRP: "To keep open", minimal flow rate/. Use 0.9% saline (NS) or lactated Ringer's if signs of hypovolemia are present. For hypotension with signs of hypovolemia, administer fluid cautiously. Watch for signs of fluid overload ... . Treat seizures with diazepam or lorazepam ... . Use proparacaine hydrochloride to assist eye irrigation ... . /Poisons A and B/|Emergency and support measures: Maintain an open airway and assist ventilation if necessary. Treat coma and seizures if they occur. Obtain finger stick blood glucose levels every 1-2 hours until stabilized. /Antidiabetic agents/|For more Antidote and Emergency Treatment (Complete) data for Acarbose (6 total), please visit the HSDB record page.

/HUMAN EXPOSURE STUDIES/ Fifty-gram carbohydrate tolerance tests were performed on healthy volunteers to test the activity and specificity of an alpha-glucoside hydrolase inhibitor, acarbose (BAY g 5421). Two hundred milligrams acarbose reduced the area under the blood glucose response curve by 89% (P less than 0.001) after sucrose by 80% (P less than 0.002) after starch, by 19% (N.S.) after maltose, with no effect on glucose. Breath hydrogen measurements indicated an almost complete malabsorption of the sucrose. At 50 mg acarbose, some reduction in blood glucose and insulin response to sucrose was still seen, but no significant hydrogen production.|/HUMAN EXPOSURE STUDIES/ To explore the long-term metabolic effects of acarbose in man, 6 healthy men (25 +/- 2 years; BMI: 21.6 +/- 2.7) were fed a controlled diet in a metabolic ward for 7 consecutive weeks. After an initial 3-week period to ensure a metabolic steady-state, they received 300 mg/d of acarbose (100 mg before each meal) for the remaining 4 weeks. Stool and urine collections were made over 7 d on weeks 3 and 7. Fecal excretion of water, nitrogen, carbohydrate, fat, zinc, magnesium, copper, chromium, iron, calcium and phosphorus and urinary excretion of nitrogen, urea and calcium were measured. In addition, fasting and postprandial blood glucose and insulin levels, as well as fasting triglycerides, total cholesterol, apolipoproteins (Apo) A-I, A-II, and B, zinc and copper, vitamins A, B1, B2, B6, C, and E concentrations were measured before and at the end of the acarbose period. Weight, food consumption, and water balance were not modified by acarbose. Fecal nitrogen excretion increased significantly but the nitrogen balance remained positive. Fecal excretion of carbohydrate, fat, iron and chromium were significantly increased by acarbose. Apos A-I and A-II decreased significantly. Plasma levels of vitamin B6 increased and vitamin A concentrations decreased with acarbose. This study provides new insights into the metabolic effects of acarbose with respect to nitrogen, mineral and vitamin metabolism.|/HUMAN EXPOSURE STUDIES/ The effect of acarbose on hydrolysis of a pure starch meal was investigated in normal subjects and ileostomy patients by means of (13)CO2 breath tests and blood glucose levels as parameters of absorption, and of H2 breath tests, serum acetate levels, and ileal loss of carbohydrate as parameters of malabsorption. Additional information on the effect of acarbose on alpha-amylase activity was obtained by in vitro experiments. Acarbose (200 and 400 mg) significantly delayed starch absorption. Serum acetate was found to be a less sensitive marker of malabsorption than breath H2 excretion. After intake of 50 g starch plus 400 mg acarbose, 23-71% of the starch load was lost in the ileostomy effluent, for a large part as starch. This suggests that acarbose considerably inhibits alpha-amylase, and not only brush-border enzymes. In vitro experiments confirm that an inhibition of two thirds of alpha-amylase activity can be expected from pharmacologically used doses of acarbose.|/SIGNS AND SYMPTOMS/ Unlike sulfonylureas or insulin, an overdose of acarbose will not result in hypoglycemia. An overdose may result in transient increases in flatulence, diarrhea, and abdominal discomfort which shortly subside. In cases of overdosage the patient should not be given drinks or meals containing carbohydrates (polysaccharides, oligosaccharides and disaccharidees) for the next 4-6 hours.|For more Human Toxicity Excerpts (Complete) data for Acarbose (11 total), please visit the HSDB record page.

Acarbose

Acarbose Use and Manufacturing

Methods of Manufacturing

Acarbose is an oligosaccharide which is obtained from fermentation processes of a microorganism, Actinoplanes utahensis.

Uses

Acarbose is pseudo-oligosaccharide with a terminal C7-cyclitol patented in 1975 by Bayer. Acarbose is a component of the amylostatin complex produced by species of Actinoplanes and Streptomyces. Acarbose acts as a potent inhibitor of α-glucosidases and saccharases. Since 1990, acarbose has been used therapeutically for the treatment of type 2 diabetes.

Acarbose preparations: (AHFS, 2011)

Human Drugs -> FDA Approved Drug Products with Therapeutic Equivalence Evaluations (Orange Book) -> Active Ingredients

Computed Properties

Molecular Weight:645.6
XLogP3:-8.5
Hydrogen Bond Donor Count:14
Hydrogen Bond Acceptor Count:19
Rotatable Bond Count:9
Exact Mass:645.24801352
Monoisotopic Mass:645.24801352
Topological Polar Surface Area:321
Heavy Atom Count:44
Complexity:962
Defined Atom Stereocenter Count:18
Undefined Atom Stereocenter Count:1
Covalently-Bonded Unit Count:1
Compound Is Canonicalized:Yes

Drug Function and Efficacy

This product is an oral hypoglycemic drug. Its hypoglycemic mechanism is to inhibit the competition between small intestinal wall cells and oligosaccharides, and reversibly bind to α-glucosidase to inhibit the activity of the enzyme, thereby delaying the degradation of carbohydrates, causing slow intestinal glucose absorption, and reducing the increase in postprandial blood sugar.

This ingredient has been used in drugs with the following functions (note: it does not mean that the ingredient itself has the following health functions)

Related Drugs

Registered Holders

  • CSPC Shengxue Glucose Co., Ltd.

    Japan Japan
    Active
  • Bayer Ag

    Finland Finland
    Active
  • CKD BIO CORPORATION

    Italy Italy
    Active

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