WO2004009094A1 - Methods and compositions for treating diabetes mellitis - Google Patents
Methods and compositions for treating diabetes mellitis Download PDFInfo
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- WO2004009094A1 WO2004009094A1 PCT/US2002/023523 US0223523W WO2004009094A1 WO 2004009094 A1 WO2004009094 A1 WO 2004009094A1 US 0223523 W US0223523 W US 0223523W WO 2004009094 A1 WO2004009094 A1 WO 2004009094A1
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- glucose
- galloyl
- gallotannin
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- FBSFWRHWHYMIOG-UHFFFAOYSA-N COC(c(cc1O)cc(O)c1O)=O Chemical compound COC(c(cc1O)cc(O)c1O)=O FBSFWRHWHYMIOG-UHFFFAOYSA-N 0.000 description 1
- MAUSJTNDKNFSEU-UHFFFAOYSA-N COC(c(cc1OCc2ccccc2)cc(OCc2ccccc2)c1OCc1ccccc1)=O Chemical compound COC(c(cc1OCc2ccccc2)cc(OCc2ccccc2)c1OCc1ccccc1)=O MAUSJTNDKNFSEU-UHFFFAOYSA-N 0.000 description 1
- NFULWEVZKLLPEP-OGJMQGSBSA-N N[C@H](CO[C@H](C1N)N)C1N Chemical compound N[C@H](CO[C@H](C1N)N)C1N NFULWEVZKLLPEP-OGJMQGSBSA-N 0.000 description 1
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07H—SUGARS; DERIVATIVES THEREOF; NUCLEOSIDES; NUCLEOTIDES; NUCLEIC ACIDS
- C07H13/00—Compounds containing saccharide radicals esterified by carbonic acid or derivatives thereof, or by organic acids, e.g. phosphonic acids
- C07H13/02—Compounds containing saccharide radicals esterified by carbonic acid or derivatives thereof, or by organic acids, e.g. phosphonic acids by carboxylic acids
- C07H13/08—Compounds containing saccharide radicals esterified by carbonic acid or derivatives thereof, or by organic acids, e.g. phosphonic acids by carboxylic acids having the esterifying carboxyl radicals directly attached to carbocyclic rings
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/70—Carbohydrates; Sugars; Derivatives thereof
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
- A61P3/04—Anorexiants; Antiobesity agents
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
- A61P3/08—Drugs for disorders of the metabolism for glucose homeostasis
- A61P3/10—Drugs for disorders of the metabolism for glucose homeostasis for hyperglycaemia, e.g. antidiabetics
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P43/00—Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00
Definitions
- the invention relates to methods and compositions for modulating diabetes mellitus and other disorders related to abnormal glucose and/or insulin levels in a mammalian subject.
- the present methods employ compositions that do not induce adipogenesis or hypoglycemia.
- Diabetes mellitus commonly called diabetes, refers to a disease process derived from multiple causative factors and characterized by elevated levels of plasma glucose, referred to as hyperglycemia. See, e.g., LeRoith, D. et al., (eds.), DIABETES MELLITUS (Lippincott- Raven Publishers, Philadelphia, Pa. U.S.A. 1996), and all references cited therein. According to the American Diabetes Association, diabetes mellitus is estimated to affect approximately 6% of the world population. Uncontrolled hyperglycemia is associated with increased and premature mortality due to an increased risk for microvascular and macrovascular diseases, including nephropathy, neuropathy, retinopathy, hypertension, cerebrovascular disease and coronary heart disease. Therefore, control of glucose homeostasis is an important approach for the treatment of diabetes.
- Type 1 diabetes (formerly referred to as insulin-dependent diabetes or LDDM); and Type 2 diabetes (formerly referred to as noninsulin dependent diabetes or NIDDM).
- Type 1 diabetes is the result of an absolute deficiency of insulin, the hormone which regulates glucose utilization. This insulin deficiency is usually characterized by ⁇ -cell destruction within the Islets of Langerhans in the pancreas and absolute insulin deficiency.
- Type 2 diabetes is a disease characterized by insulin resistance accompanied by relative, rather than absolute, insulin deficiency. Type 2 diabetes can range from predominant insulin resistance with relative insulin deficiency to predominant insulin deficiency with some insulin resistance. Insulin resistance is the diminished ability of insulin to exert its biological action across a broad range of concentrations.
- Type 2 diabetic patients are treated either with hypoglycemic agents which act by stimulating release of insulin from beta cells, or with agents that enhance the tissue sensitivity of the patients towards insulin, or with insulin.
- Sulfonylureas are examples of agents that stimulate release of insulin from beta cells.
- metformin is a representative example.
- sulfonylureas are widely used in the treatment of type II diabetes, this therapy is, in most instances, not satisfactory. In a large number of type II diabetic patients sulfonylureas do not suffice to normalize blood sugar levels and the patients are, therefore, at high risk for acquiring diabetic complications.
- Insulin stimulates glucose uptake by skeletal muscle and adipose tissues primarily through translocation of the glucose transporter 4 (GLUT4) from the intracellular storage sites of the cell surface (Saltiel, A. R. & Kahn, C. R. (2001) Nature 414:799-806; Saltiel, A. & Pessin, J.E. (2002) Trends in Cell Biol 12:65-71; White, M.F. (1998) Mol. Cell. Biochem. 182:3-11).
- a fraction of GLUT4 present in intracellular membranes is redistributed to the plasma membrane resulting in an increase of GLUT4 on the cell surface and enhanced glucose uptake by these cells.
- GLUT4 translocation is primarily mediated through the insulin receptor (IR).
- adipogenesis In addition to glucose transport, insulin is intimately involved in adipogenesis, a process which involves proliferation of preadipocytes (pre-fat cells) and differentiation of preadipocytes into adipocytes (fat cells) with accumulation of fat in adipocytes.
- pre-fat cells pre-fat cells
- adipocyte cell line 3T3-L1 studies with the adipocyte cell line 3T3-L1 suggest that the role insulin plays in adipogenesis is primarily mitotic (43).
- 3T3-L1 cells are fibroblast-like preadipocytes that contain more IGF-1 receptors than IR.
- adipogenesis of preadipocytes can be triggered by a commonly used differentiation-inducing cocktail, MDI, which consists of an agent methylisobutylxanthine (MIX) that elevates cAmp; a glucocorticoid, dexamethasone (DEX); and insulin (or IGF-1) that interacts with the IGF-1 receptors on the preadipocytes (Tong, Q., Hotamisligil, G. S. (2001) Rev. in Endoc. & Metabolic Disorders. 2:349-355; Rosen, E.D., et al. (2000) Genes Dev. 14:1293-1307).
- MDI differentiation-inducing cocktail
- the present invention provides methods for modulating diabetes, impaired glucose tolerance, gestational diabetes and glucose resistance in a mammal, particularly a human.
- the method comprises administering a composition, referred to hereinafter as a "gallotannin composition" to a mammal in need of the same.
- the gallotannin composition is substantially pure and comprises one or more hydrolysable gallotannins selected from the group consisting of 1,2,3,4-tetra-O-galloyl- ⁇ -D-glucose, 1,2,3,6-tetra-O- galloyl- ⁇ -D-glucose, 1 ,3,4,6-tetra-O-galloyl- ⁇ -D-glucose, 1 ,2,3,4,6-penta-O-galloyl- ⁇ -D- glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-hexa-galloyl- ⁇ -D-glucose, 1,2,3,4,6-hexa-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-hepta-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6- hepta-O-
- the term "substantially pure” means that the gallotannin composition comprises at least 95% by dry weight of one or a combination of the listed gallotannins and less than 5% by dry weight of one or more of the following compounds: mono-O-galloyl- ⁇ - D-glucose, di-O-galloyl- ⁇ -D-glucose, tri-O-galloyl- ⁇ -D-glucose, tetra-O-galloyl- ⁇ -D- glucose, unadeca-O-galloyl- ⁇ -D-glucose, dodeca-O-galloyl- ⁇ -D-glucose or mixtures thereof.
- the method comprises administering a composition referred to hereinafter as a "gallotannin variant composition" to the subject.
- the gallotannin variant composition comprises one or more gallotanin variant compounds or salts thereof.
- the gallotannin variant compounds have the following structure:
- R is selected from the group consisting of D-Glucose, L-Glucose, D-Mannose, L- Mannose, D-Galactose, L- Galactose, D-Allose, L-Allose, D-Altrose, L-Altrose D-Gulose, L- Gulose, D-Idose, L-Idose, D-Talose, L, Talose, D-Fructose, L-Fructose, ⁇ -D-Xylose, ⁇ -D Lyxose, ⁇ -D Lyxose, ⁇ -D Arabinose, ⁇ -D Arabinose, ⁇ -D Ribose, ⁇ -D Ribose, D-Trehalose, D-Maltose, D-Cellobiose, w o-Inositol, D-glucitol,
- X is an ester or ether linkage
- A is a trihydroxybenzoic acid selected from the group consisting of 3,4,5-trihydroxybenzoic acid, 2,3,4-trihydroxybenzoic acid 2,4,6-trihydroxybenzoic acid, or a dihydroxybenzoic acid selected from the group consisting of 2,3-dihydroxybenzoic acid, 2,4-dihydroxybenzoic acid, 3,4-dihydroxybenzoic acid, or a monohydroxybenzoic acids selected from the group consisting of 3-hydroxybenzoic acid and 4-hydroxybenzoic acid,
- n is 5
- q is 0, 1, 2, 3, 4, or 5
- z is 0 when R is D-Glucose, L-Glucose, D-
- n 4, q is 0, 1 ,2, 3, or 4, and z is 0, 1, or 2 when R is ⁇ -D-Xylose, ⁇ -D Lyxose, ⁇ -D Lyxose, ⁇ -D Arabinose, ⁇ -D Arabinose, ⁇ -D Ribose, ⁇ -D Ribose;
- n 6
- q is 0, 1, 2, 3, 4, 5, or 6
- z is 0 when R is D-Glucitol or rayo-Inositol
- Each of the compounds in the gallotannin variant composition has a structure other than the structure of tetra-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D-glucose, l,2,3,4,6hexa-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-hepta-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-octa- O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-nona-O-galloyl- ⁇ -D-glucose, and 1,2,3,4,6-deca-O-galloyl- ⁇ -D-
- the method comprises administering a combination of the gallotannin composition of the present invention and the gallotannin variant composition of the present invention to the patient.
- the present invention also provides methods of preventing or treating weight gain in a subject.
- the method comprises administering the gallotannin composition of the present invention, the gallotannin variant composition of the present invention, or a combination of the gallotannin composition of the present invention and the gallotannin variant composition of the present invention to the subject.
- the present invention also provides methods of inhibiting differentiation of preadipocytes into adipocytes.
- the methods comprise contacting the pre-adipoctyes with the natural gallotannin composition of the present invention, the gallotannin variant composition of the present invention, or a combination of the natural gallotannin composition of the present invention and the gallotannin variant composition of the present invention.
- the pre- adipoctyes may be in culture or in a mammalian subject.
- the present invention also relates to the present gallotannin variant composition, a compound having the structure, R-X-A( n )-X-A( q )-X-A , or a salt thereof, and a pharmaceutical composition comprising such compound or the salt thereof.
- Fig. 1 Structure of penta-O-galloyl-D- glucose (PGG).
- PGG consists of a glucose core that is covalently linked to five gallic acids through ester bonds. With two possible configurations at carbon 1(*) of glucose, two anomers of PGG exist. Computer simulated PGG conformations indicate that ⁇ -PGG may be more symmetrical (thus less polar) than ⁇ -PGG. Fig 2. Glucose transport stimulatory activity and anti-adipogenic activity of PGG.
- PGG either as a mixture or as single isomer ( ⁇ or ⁇ )
- adipocytes A
- preadipocytes B
- GTS activity (A) and AD activity (B) of PGG are measured by 3 H- glucose uptake.
- GLUT4 is not expressed in preadipocytes, so glucose uptake can be used as an indirect measurement of adipocyte differentiation.
- 3T3-L1 adipocytes in 24-well plates were incubated overnight at 4C with increasing concentrations of cold insulin in the presence of 8 pM 125 I-insulin or with increasing concentrations of cold PGG in the presence of 20 ⁇ M 14 C-PGG, respectively, and then measured for cell-bound 125 I-insulin or 14 C-PGG after removal of unbound isotope.
- PGG does not displace insulin binding to its receptor IR in 3T3-L1 adipocytes.
- 3T3-L1 adipocytes were incubated overnight at 4°C with increasing concentrations of 14 C- PGG in the presence of 8 pM 125 I-labeled insulin, and then counted for cell-bound 125 I-insulin and 14 C-PGG. Near-constant insulin counts between 0.1 to 20 ⁇ M of PGG indicate PGG is unable to displace insulin from IR at this concentration range. Insulin binding increased at higher PGG concentrations.
- Fig. 6 Three insulin-signaling pathway-specific inhibitors also abolish PGG-induced glucose transport in 3T3-L1 adipocytes.
- Adipocytes were induced by insulin or PGG in the presence or absence of different inhibitors.
- the glucose transport activity of the treated cells was measured by 3 H glucose taken up by the cells.
- HNMPA-(AM)3 inhibits IR Tyr kinase activity
- Cytochalasin B inhibits GLUT4
- Wortmannin inhibits PI-3K, respectively.
- PGG induces phosphorylation of Akt in 3T3-L1 adipocytes.
- Fig. 10 Clonal expansion in ⁇ -PGG and ⁇ -PGG treated 3T3-L1 preadipocytes.
- Preadipocytes were induced to undergo clonal expansion by MDI, or ⁇ -PGG, or ⁇ -PGG in the presence of MDI. 24 or 48 hrs after induction, the media was removed and the cells were lysed. The lactose dehydrogenase (LDH) activity of the cell lysates was measured by LDH kit. Cell growth media were also collected and their LDH activity from dead cells was also measured (not shown on this graph). LDH activity is a constant per cell in a given cell type, the LDH activity measured is proportional to the number of cells in the samples.
- LDH lactose dehydrogenase
- Various doses of ⁇ - PGG were orally delivered without glucose to db/db mice(A) or with glucose to ob/ob mice (B) mice. At different times post the delivery, glucose was determined in samples from tail blood.
- PGG protects ob/ob mice from hyperglycemia immediately after glucose challenge and hypoglycemia several days after the challenge.
- the ob/ob mice underwent a glucose tolerance test as shown in Fig. l IB. At various time points after the glucose challenge, blood glucose levels were measured in tail blood.
- Fig. 13 Chemical structure of select gallotannin variants.
- G represents a trihydroxybenzoic acid Fig. 14. Effect of PGG on plasma insulin levels in ob/ob mice.
- Fig. 15 Effect of PGG on blood glucose levels in mice with normal blood glucose levels.
- diabetes mellitus or "diabetes” means a disease or condition that is generally characterized by metabolic defects in production and utilization of glucose which result in the failure to maintain appropriate blood sugar levels in the body. The result of these defects is elevated blood glucose, referred to as "hyperglycemia.”
- Type 1 diabetes is generally the result of an absolute deficiency of insulin, the hormone which regulates glucose utilization.
- Type 2 diabetes often occurs in the face of normal, or even elevated levels of insulin and can result from the inability of tissues to respond appropriately to insulin.
- Type 2 diabetic patients are insulin resistant and have a relative deficiency of insulin, in that insulin secretion can not compensate for the resistance of peripheral tissues to respond to insulin.
- many Type 2 diabetics are obese.
- Other types of disorders of glucose homeostasis include impaired glucose tolerance, which is a metabolic stage intermediate between normal glucose homeostasis and diabetes, and gestational diabetes mellitus, which is glucose intolerance in pregnancy in women with no previous history of Type 1 or Type 2 diabetes.
- symptom of diabetes includes, but is not limited to, polyuria, polydipsia, and polyphagia, hyperinsulinemia, and hyperglycemia as used herein, incorporating their common usage.
- polyuria means the passage of a large volume of urine during a given period
- polydipsia means chronic, excessive thirst
- polyphagia means excessive eating.
- hyperinsulinemia means elevated blood levels of insulin .
- Other symptoms of diabetes include, for example, increased susceptibility to certain infections (especially fungal and staphylococcal infections), nausea, and ketoacidosis (enhanced production of ketone bodies in the blood).
- microvascular complications are those complications which generally result in small blood vessel damage. These complications include, e.g., retinopathy (the impairment or loss of vision due to blood vessel damage in the eyes); neuropathy (nerve damage and foot problems due to blood vessel damage to the nervous system); and nephropathy (kidney disease due to blood vessel damage in the kidneys). Macrovascular complications are those complications which generally result from large blood vessel damage. These complications include, e.g., cardiovascular disease and peripheral vascular disease. Cardiovascular disease refers to diseases of blood vessels of the heart. See. e.g., Kaplan, R.
- Cardiovascular disease is generally one of several forms, including, e.g., hypertension (also referred to as high blood pressure), coronary heart disease, stroke, and rheumatic heart disease.
- hypertension also referred to as high blood pressure
- coronary heart disease stroke
- rheumatic heart disease Peripheral vascular disease refers to diseases of any of the blood vessels outside of the heart. It is often a narrowing of the blood vessels that carry blood to leg and arm muscles.
- Hydrolysable gallotannin refers to a galloyl glucose compound which is an ester of glucose with one or more trihydroxybenzene carboxylic acids.
- the substantially pure hydrolysable gallotannin composition of the present invention comprises one or more alpha or beta anomers of hydrolysable gallotannins having 5, 6, 7, 8, 9, or 10 galloyl groups, or pharmaceutically acceptable salts thereof.
- the hexa, hepta, octa, nona, and deca forms of the hydrolysable gallotannins each have an initial set of galloyl groups attached to carbons 1, 2, 3, 4, and 6 of the glucose core and a second set of galloyl groups comprising from 1 to 5 additional galloyl groups, respectively.
- the galloyl groups of the second set are attached to separate galloyl groups in the first set.
- the substantially pure gallotannin composition of the present invention may also comprise 1,2,3,4-tetra-O-galloyl- ⁇ -D-glucose, 1,2,3,6-tetra-O- galloyl- ⁇ -D-glucose, 1 ,3 ,4,6-tetra-O-galloyl- ⁇ -D-glucose.
- the beta anomers of hydrolysable gallotannins are found in many plant-based foods including common fruits (berries, bananas, grapes, apples); grains (barley, sorghum); plant- derived beverages such as tea and wine.
- the beta anomers of hydrolysable gallotannins are also found in tannic acid mixtures which are commercially available.
- Commercial tannic acid mixtures also comprise varying amounts of methyl galloyl and galloyl glucose compounds that comprise 1, 2, 3, 11 and 12 galloyl groups.
- the substantially pure hydrolysable gallotannin compositions of the present invention comprise less than 5% by dry weight, preferably less than 3% by dry weight, more preferably less than 1% by dry weight, of one or a mixture of the following compounds: mono-O-galloyl- ⁇ -D-glucose, di-O- galloyl- ⁇ -D-glucose, tri-O-galloyl- ⁇ -D-glucose, tetra-O-galloyl- ⁇ -D-glucose, unadeca-O- galloyl- ⁇ -D-glucose, dodeca-O-galloyl- ⁇ -D-glucose or mixtures thereof.
- the substantially pure hydrolysable gallotannin compositions that are used in the present methods are different from commercially available mixtures of gallotannins.
- Gallotannin Variant refers to a compound that is similar to but not identical in structure to tetra-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D-glucose, hexa-O- galloyl- ⁇ -D-glucose, hepta-O-galloyl- ⁇ -D-glucose, octa-O-galloyl- ⁇ -D-glucose, nona-O- galloyl- ⁇ -D-glucose, deca-O-galloyl- ⁇ -D-glucose, unadeca-O-galloyl- ⁇ -D-glucose, and dodeca-O-galloyl- ⁇ -D-glucose.
- the variant has the following structure:
- R is selected from the group consisting of D-Glucose, L-Glucose, D-Mannose, L- Mannose, D-Galactose, L- Galactose, D-Allose, L-Allose, D-Altrose, L-Altrose D-Gulose, L- Gulose, D-Idose, L-Idose, D-Talose, L, Talose, D-Fructose, L-Fructose, ⁇ -D-Xylose, ⁇ -D Lyxose, ⁇ -D Lyxose, ⁇ -D Arabinose, ⁇ -D Arabinose, ⁇ -D Ribose, ⁇ -D Ribose, D-Trehalose, D-Maltose, D-Cellobiose, r ⁇ y ⁇ -Inositol, D-glucitol,
- X is an ester or ether linkage
- A is a trihydroxybenzoic acid selected from the group consisting of 3,4,5-trihydroxybenzoic acid, 2,3,4-trihydroxybenzoic acid 2,4,6-trihydroxybenzoic acid, or a dihydroxybenzoic acid selected from the group consisting of 2,3-dihydroxybenzoic acid, 2,4-dihydroxybenzoic acid, 3,4-dihydroxybenzoic acid, or a monohydroxybenzoic acids selected from the group consisting of 3-hydroxybenzoic acid and 4-hydroxybenzoic acid, wherein n is 5, q is 0, 1, 2, 3, 4, or 5, and z is 0 when R is D-Glucose, L-Glucose, D- Mannose, L-Mannose, D-Galactose, L- Galactose, D-Allose, L-Allose, D-Altrose, L-Altrose D-Gulose, L-Gulose, D-Idose, L-Idose, D-Talose, L, Talose, D-Fructo
- n 4, q is 0, 1 ,2, 3, or 4, and z is 0, 1, or 2 when R is ⁇ -D-Xylose, ⁇ -D Lyxose, ⁇ -D Lyxose, ⁇ -D Arabinose, ⁇ -D Arabinose, ⁇ -D Ribose, ⁇ -D Ribose;
- n 6
- q is 0, 1, 2, 3, 4, 5, or 6
- z is 0 when R is D-Glucitol or rayolnositol
- n 8
- q is 0, 1 , 2, 3, 4, 5, 6, 7, or 8
- z is 0 when R is D-Trehalose, D-Maltose, or D-Cellobiose.
- Adipocytes refers to fat cells. Morphologically, adipocytes are round- shaped, triglyceride (fat) vesicle-containing cells. Biochemically, adipocytes express high levels of insulin receptor on their cell surface and exhibit a highly active insulin-mediated glucose transport signaling pathway involving glucose transporter 4 (GLUT4). In vivo, adipocytes are involved in the synthesis and storage of fat (triglyceride) and glucose metabolism (uptake of glucose from blood and conversion of glucose into fat).
- fat triglyceride
- glucose metabolism uptake of glucose from blood and conversion of glucose into fat.
- Preadipocytes refers to adipocyte precursor cells that, under the action of hormones such as insulin and glucocorticoid, divide and differentiate into adipocytes. Morphologically, preadipocytes are fibroblast-looking (thin, and spindle-shaped) and devoid of triglyceride (fat) vesicles in their cytoplasm. As compared to adipocytes, preadipocytes contain low levels of insulin receptor and relatively high levels of insulin- like growth factor 1 (IGF-1) receptors for receiving mitogenic and differentiating signals.
- IGF-1 insulin- like growth factor 1
- preadipocytes do not express GLUT4 or other differentiation related genes such as PPAR- ⁇ , C/EBP- ⁇ or C/EBP- ⁇ .
- the intracellular glucose transport activity of preadipocytes is lower than that of adipoctyes.
- Adipogenesis refers to the process by which preadipocytes divide and differentiatiate into adipocytes.
- Lipogenesis refers to the process by which fat is synthesized and accumulated in adipocytes.
- mamal includes, without limitation, humans, domestic animals (e.g., dogs or cats), farm animals (cows, horses, or pigs), monkeys, rabbits, mice, and laboratory animals.
- the present invention provides methods for stimulating uptake of glucose in the cells of a mammal, particularly a mammal with diabetes, impaired glucose intolerance, insulin resistance or gestational diabetes.
- the present invention provides methods of inhibiting differentiation of pre-adipocytes to adipocytes in a mammal, particular a mammal that is obese, overweight, or who is exhibiting symptoms of diabetes mellitus, glucose intolerance, or gestational diabetes.
- the present methods are based in part on inventors' discovery that certain hydrolysable gallotannins and certain gallotannin variants are able to stimulate glucose transport into adipocytes and to inhibit differentiation of preadipocytes into adipoctyes.
- the present methods are also based in part on inventors' discovery that certain hydrolysable gallotannins lower blood glucose levels and blood insulin levels in mammals.
- the present methods are also based, at least in part, on inventors' discovery they certain hydrolysable gallotannins do not cause hypoglycemia. Accordingly, the present methods are useful for treating or preventing diabetes, impaired glucose tolerance, insulin resistance and gestational diabetes in a mammal.
- the present method for treating or preventing diabetes, impaired glucose tolerance, insulin resistance and gestational diabetes in a mammal comprises administering a therapeutically effective amount of a substantially pure hydrolysable gallotannin composition to the mammal.
- the substantially pure gallotannin composition comprises one or more hydrolysable gallotannins selected from the group consisting of 1,2,3,4-tetra-O-galloyl- ⁇ -D-glucose, 1,2,3,6-tetra-O-galloyl- ⁇ -D-glucose, 1,3,4,6-tetra-O- galloyl- ⁇ -D-glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D- glucose, 1,2,3,4,6-hexa-galloyl- ⁇ -D-glucose, 1,2,3,4,6-hexa-O-gall
- the substantially pure hydrolysable gallotannin composition comprises less than 5% by dry weight of one or more of the following compounds: mono-O- galloyl- ⁇ -D-glucose, di-O-galloyl- ⁇ -D-glucose, tri-O-galloyl- ⁇ -D-glucose, tetra-O-galloyl- ⁇ - D-glucose, unadeca-O-galloyl- ⁇ -D-glucose, dodeca-O-galloyl- ⁇ -D-glucose or mixtures thereof.
- the method for treating or preventing diabetes, impaired glucose tolerance, insulin resistance and gestational diabetes in a mammal comprises administering a therapeutically effective amount of a gallotannin variant composition comprising one or more gallotannin variant compounds to the patient.
- the method comprises administering both a substantially pure hydrolysable gallotannin composition of the present invention and a gallotannin variant composition to the patient.
- insulin other agents which are used to treat or prevent diabetes, including insulin,
- Sulfonylureas Meglitinides, biguanides (Glucophage or Metformin), Thiazolidinedione (TZDs), and alpha-glucosidase inhibitors, are administered to the mammal in combination with the present hydrolysable gallotannin or gallotannin variant composition.
- Glucophage or Metformin biguanides
- ZDs Thiazolidinedione
- alpha-glucosidase inhibitors are administered to the mammal in combination with the present hydrolysable gallotannin or gallotannin variant composition.
- insulin be administered in combination with the gallotannin composition and/or the gallotannin variant composition.
- the present methods are useful for treating mammals who have been diagnosed as having diabetes, gestational diabetes, insulin resistance or impaired glucose tolerance.
- the present methods are also useful for treating mammals exhibiting symptoms of diabetes, gestational diabetes, insulin resistance or impaired glucose tolerance, or mammals that have a genetic predisposition to diabetes, gestational diabetes, insulin resistance or impaired glucose tolerance.
- the present methods are also useful for preventing or treating weight gain in a subject, particularly in subjects who are obese or overweight.
- compositions are administered to the subject by injection, including subcutaneous, parenteral, and intravenous injection, or by oral administration. Because of its ease of administration, the preferred route of administration is oral administration.
- Gallotannin and gallotannin variant compositions for use in accordance with the present methods are formulated into pharmaceutical compositions using conventional methods.
- Such pharmaceutical preparations comprise one or more hydrolysable gallotannins of the present invention and/or one or more gallotannin variant compounds of the present invention.
- the pharmaceutical composition further comprises a pharmaceutically acceptable carrier or diluent.
- pharmaceutically acceptable means a non-toxic material that does not interfere with the effectiveness of the gallotannin or gallotannin variant composition. Many such carriers are routinely used and can be identified by reference to pharmaceutical texts. The characteristics of the carrier will depend on the route of administration and particular compound or combination of compounds in the composition. Preparation of such formulations is within the level of skill in the art.
- the preparation may further contain other agents that either enhance the activity of the gallotannin or gallotannin variant or complement its activity.
- the preparation may further comprise fillers, salts, buffers, stabilizers, solubilizers, and other materials well known in the art.
- the pharmaceutical composition may conveniently be presented in unit doesage form and may be prepared by any of the methods well known in the art of pharmacy.
- unit dosage means a predetermined amount of the gallotannin or gallotannin variant composition sufficient to be effective in treating the target disease or disorder . All methods include the step of bringing the gallotannin composition the gallotannin variant composition or both into contact with the carrier or diluent and any other optional accessory ingredients.
- the pharmaceutical compositions can take the form of, for example, tablets or capsules prepared by conventional means with pharmaceutically acceptable excipients such as binding agents (e.g., pregelatinised maize starch, polyvinylpyrrolidone or hydroxypropyl methylcellulose); fillers (e.g., lactose, microcrystalline cellulose or calcium hydrogen phosphate); lubricants (e.g., magnesium stearate or talc); disintegrants (e.g., potato starch or sodium starch glycolate); or wetting agents (e.g., sodium lauryl sulphate).
- binding agents e.g., pregelatinised maize starch, polyvinylpyrrolidone or hydroxypropyl methylcellulose
- fillers e.g., lactose, microcrystalline cellulose or calcium hydrogen phosphate
- lubricants e.g., magnesium stearate or talc
- disintegrants e.g., potato starch or sodium starch glycolate
- Liquid preparations for oral administration can take the form of, for example, aqueous solutions, syrups or suspensions, or they can be presented as a dry product for constitution with water or other suitable vehicle before use.
- Such liquid preparations can be prepared by conventional means with pharmaceutically acceptable additives such as suspending agents (e.g., sorbitol syrup, cellulose derivatives or hydrogenated edible fats); emulsifying agents (e.g., lecithin or acacia); non-aqueous vehicles (e.g., almond oil, oily esters, ethyl alcohol or fractionated vegetable oils); and preservatives (e.g., methyl or propyl-p-hydrobenzoates or sorbic acid).
- suspending agents e.g., sorbitol syrup, cellulose derivatives or hydrogenated edible fats
- emulsifying agents e.g., lecithin or acacia
- non-aqueous vehicles e.g., almond oil, oily esters
- the preparations can also contain buffer salts, flavoring, coloring and sweetening agents as appropriate.
- the preparations can also take the form of nutritional formulas.
- Preparations for oral administration can be formulated to give controlled release of the gallotannin composition. Because of the presence of high levels of proline containing proteins in the saliva, it is expected that the preferred oral formulation will be in the form of a capsule which comprises a coating to protect the gallotannin composition from interacting with the saliva
- the gallotannin and gallotannin variant compositions can be formulated for parenteral administration by injection, e.g., by bolus injection or continuous infusion.
- Formulations for injection can be presented in unit dosage form, e.g., in ampoules or in multi-dose containers, with an added preservative.
- the compositions can take such forms as suspensions, solutions or emulsions in oily or aqueous vehicles, and can contain formulatory agents such as suspending, stabilizing and/or dispersing agents.
- the active ingredient can be in powder form, tablets or capsules for constitution with a suitable vehicle, e.g., sterile pyrogen- free water, before use.
- the gallotannin and gallotannin variant compositions can also be formulated in rectal compositions such as suppositories or retention enemas, e.g., containing conventional suppository bases such as cocoa butter, other glycerides or carbowax.
- the gallotannin and gallotannin variant compositions can also be formulated as a depot preparation.
- Such long acting formulations can be administered by implantation (for example, subcutaneously or intramuscularly) or by intramuscular injection.
- the compounds can be formulated with suitable polymeric or hydrophobic materials (for example as an emulsion in an acceptable oil) or ion exchange resins, or as sparingly soluble derivatives, for example, as a sparingly soluble salt.
- the gallotannin or gallotannin variant composition is administered to the subject in a therapeutically effective amount.
- therapeutically effective amount means the total amount that is sufficient to show a meaningful benefit, e.g., reduction of hyperglycemia (reduction of blood glucose level), reduction of hyperinsulinemia (reduction of blood insulin level), improvement in glucose tolerance, prevention of weight gain and weight loss.
- the dosages of gallotannin compostion or gallotannin variant composition needed to obtain a meaningful result can be determined in view of this disclosure by one of ordinary skill in the art by running routine trials with appropriate controls. Comparison of the appropriate treatment groups to the controls will indicate whether a particular dosage is effective at reducing the subject's blood glucose levels or inhibiting adipogenesis.
- the amount of the gallotannin compositon required will depend upon the nature and severity of the condition being treated, and on the nature of prior treatments which the subject has undergone. Ultimately, the dosage will be determined using clinical trials. Initially, the clinician will administer doses that have been derived from animal studies. An effective amount can be achieved by one administration of the composition. Alternatively, an effective amount is achieved by multiple administration of the composition to the subject. In vitro, the biologically effective amount, i.e., the amount sufficient to induce glucose uptake, is administered in two-fold increments, to determine the full range of activity. The efficacy of oral, subcutaneous and intravenous administration is determined in clinical studies. Although a single administration of the gallotannin composition may be beneficial, it is expected that multiple doses will be preferred.
- Glucose uptake activity in cells may be analyzed by measuring the uptake of 2- deoxy-D- [ 3 H] glucose using a standard assay.
- Confluent 3T3-L1 adipocytes grown in 12- well plates are washed twice with serum-free DMEM and incubated with 1 mL of the same medium at 37°C for 2 h.
- the cells are washed 3 times with Krebs-Ringer-Hepes (KRP) buffer and incubated with 0.9 mL KRP buffer at 37°C for 30 min. Insulin (positive control) or the gallotannin or gallotannin variant (experimentals) are then added at pre-determined concentrations and adipocytes are incubated at 37°C for 15 min.
- KRP Krebs-Ringer-Hepes
- Glucose uptake is initiated by addition of 0.1 mL KRP buffer and 37 MBq/L 2-deoxy-D- [ 3 H] glucose and 1 mmol/L glucose as final concentrations. After 10 min, glucose uptake is terminated by washing the cells 3 times with cold PBS. The cells are lysed with 0.7 mL of 1% Triton X-100 at 37°C for 20 min. The radioactivity retained by the cell lysates is determined by a scintillation counter. The dosage that induces the maximal glucose uptake can be selected among the experimental samples.
- mice of 8 weeks of age may be used to determine in vivo dosages for simulating glucose uptake
- the mice are divided into three to four groups depending upon how many dosages are analyzed.
- Ten ⁇ l of a test solution with pre-determined concentrations of the test gallotannin composition is orally administered to the test mice.
- the negative control mice receive the same amount of water.
- blood is collected from the mouse tail at various times post oral administration.
- the blood glucose level of a mouse at a given time post administration is measured by applying six ⁇ l of blood on a One Touch Basic Complete Diabetes Monitoring System (from Lifescan).
- the effective dosage range and the optimal dosage can be determined by comparison of the reduction of blood glucose levels by different dosages relative to the glucose level of the negative (water) control group.
- the present invention provides methods for inhibiting differentiation of preadipocytes into adipocytes.
- the adipocytes may be in culture or in a mammalian subject.
- the method comprises contacting the preadipocytes with a biologically effective amount of hydrolysable gallotannin composition.
- the gallotannin composition is substantially pure and comprises
- the gallotannin composition comprises one or more hydrolysable gallotannins selected from the group consisting of 1,2,3,4-tetra-O-galloyl- ⁇ -D-glucose, 1,2,3,6-tetra-O-galloyl- ⁇ -D-glucose, 1,3,4,6-tetra-O- galloyl- ⁇ -D-glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D-glucose, 1,2,3,4,6-penta-O-galloyl- ⁇ -D- glucose, 1,2,3,4,6-hexa-galloyl- ⁇ -D-glucose, 1,2,3,4,6-hexa-O-galloyl- ⁇ -D-glucose,
- the method comprises contacting the preadipocytes with a biologically effective amount of a gallotannin variant composition comprising one or more gallotannin variants. In a further embodiment, the method comprises contacting the preadipocytes with both a hydrolysable gallotannin composition of the present invention and a gallotannin variant composition to the patient.
- undifferentiated preadipocytes are incubated either with a differentiation-induction cocktail, comprised of 3 -isobutyl- 1 -methylxanthine, dexamethasone, and insulin (MDI); or with MDI plus the gallotannin or gallotannin variant. After about 10 days MDI induces differentiation, which is clearly visible as the change from fibroblast-like preadipcytes to round-shaped, fat vesicle-containing adipocytes.
- a differentiation-induction cocktail comprised of 3 -isobutyl- 1 -methylxanthine, dexamethasone, and insulin (MDI); or with MDI plus the gallotannin or gallotannin variant.
- the degree of the differentiation of the cells is evaluated by microscopic observation of lipid accumulation and Oil Red O staining (only triglyceride containing vesicles can be stained red), as well as by the glucose uptake activities the treated cells exhibit at the end of the incubation period.
- the glucose uptake assay is chosen and performed here for determination of the degree of adipocyte differentiation based on the observation that differentiated adipocytes can be induced by insulin to take up glucose whereas preadipocytes cannot.
- mice Genetically diabetic female mice (Type II, KK-A y ) of five weeks of age are used.
- the gallotannin or gallotanin variant is either orally delivered or LP injected daily into the mice at various concentrations for 6 to 10 weeks.
- the food intake and body weight of the mice are monitored.
- the parametrial adipose tissues from the treated and control mice are removed, weighed, and compared.
- livers of the treated and the control mice are also removed, and the lipid contents of the livers are measured.
- the dosage that results in largest reduction in parametrial adipose tissue and hepatic lipid contents without significantly altering food intake is considered as optimal dosage for anti-adipogenic activity of the present gallotannin or gallotannin variant composition.
- HPLC system is Beckman System Gold consisting of a 125 solvent module, a 168 PDA detector and a 508 autosampler.
- a Beckman Ultrasphere C-18 reversed phase Semi-Prep column 10.0 mm x 250 mm I.D., 5 ⁇ m ) is used.
- the detection wavelength is set at 320 nm, or 330nm.
- Eluent A is water added 0.1% trifluoroacetic acid
- eluent B is acetonitrile with 0.1% trifluoroacetic acid.
- fraction collector from ISCO has been used to collect individual peaks in timed windows. The separation is achieved with isocratic gradients A:B 82:18 in 40 minutes at a flow rate of 3 mL/min. Under these conditions, the approximate retention time for the ⁇ forms of the gallotannins is as follows:
- the method for the chemical synthesis of the alpha and beta forms of PGG consists of four steps:
- Penta-O-(3,4,5-tri-O-benzylgalloyl)-D-glucopyranose is deprotected by hydrogenation in the presence of a palladium catalyst in tetrahydrofuran. Chromatotron separation of the ⁇ / ⁇ mix of PGG yields the individual clean anomers.
- Identities and purities of natural abundance intermediates and products are determined by 1H and C ⁇ H ⁇ NMR spectroscopy, electrospray mass spectrometry, and UV- visible spectra .
- the addition reaction of one or more gallic acid to ⁇ / ⁇ -penta-O- galloyl glucose is the same or very similar to the reaction steps for synthesis of ⁇ / ⁇ -penta-O- galloyl glucose as described above.
- This reaction will synthesize a mixture of galloyl glucose with 6, 7, 8, 9, or 10 gallic acids.
- These different compounds can be separated into single species by HPLC, and their individual structural identity confirmed by mass spectra and NMR analyses.
- ⁇ and ⁇ -tetra-O-galloyl glucose can be made by protecting one of the hydroxyl group on the glucose before addition of gallic acid, and deprotecting the hydroxyl after the addition reaction.
- the crude product of the previous step was suspended in 95% ethanol (300 mL) and sodium hydroxide pellets (3.54 g, 88.5 mmol) were added. The mixture was heated under reflux for 3 h. The hot solution was poured into a mixture of 500 mL water and 25 mL concentrated hydrochloric acid. After swirling the flask for 10 min, the product was filtered off and successively washed with water (100 mL), 95% ethanol (100 mL), methanol (100 mL), and methl tert-butyl ether (100 mL). The white solid was dried overnight at room temperature in an oil pump vacuum ( ⁇ 0.1 bar).
- the benzyl protected starting material (392 mg, 0.222 mmol) was dissolved in dry THF (50 mL). The solution was degassed by applying a water aspirator vacuum for about 30 seconds while stirring magnetically. The flask was then flushed with argon gas. Degasing and flushing were repeated two more times. 10% Palladium on charcoal (287 mg, 0.27 mmol) was added. The mixture was degassed and then flushed with hydrogen gas. The degassing and flushing was repeated two more times. The suspension was then stirred at maximum speed at 40°C under a hydrogen gas atmosphere at normal pressure for 5 h. The mixture was cooled, filtered through Celite, and the filtrate was evaporated.
- gallotannin variants that comprise a dihydroxybenzyloxybenzoyl moiety are made as described above except that a different ethyl dihydroxybenzoate is used as the starting material of step 1.
- the crude product of the previous step was suspended in 95% ethanol (300 mL) and sodium hydroxide pellets (3.54 g, 88.5 mmol) were added. The mixture was heated under reflux for 3 h. The hot solution was poured into a mixture of 500 mL water and 25 mL concentrated hydrochloric acid. After swirling the flask for 10 min, the product was filtered off and successively washed with water (100 mL), 95% ethanol (100 mL), methanol (100 mL), and methl tert-butyl ether (100 mL). The white solid was dried overnight at room temperature in an oil pump vacuum ( ⁇ 0.1 bar).
- Step 3 Tetrakis-0-(3,4,5-tribenzyloxybenzoyl)-D-xylopyranose
- Step 4 Tetrakis-O-(3,4,5-trihydroxybenzoyl)- ⁇ -D-glucopyranose
- the benzyl protected starting material (150 mg, 0.0815 mmol) was dissolved in dry THF (20 mL). The solution was degassed by applying a water aspirator vacuum for about 30 seconds while stirring magnetically. The flask was then flushed with argon gas. Degasing and flushing were repeated two more times. 10% Palladium on charcoal (120 mg, 0.113 mmol) was added. The mixture was degassed and then flushed with hydrogen gas. The degassing and flushing was repeated two more times. The suspension was then stirred at maximum speed at 40°C under a hydrogen gas atmosphere at normal pressure for 5 h. The mixture was cooled, filtered through Celite, and the filtrate was evaporated.
- gallotannin variants comprising a sugar core other than glucose, e.g. a galactose, mannose, trehalose, maltose, cellobiose, inositol, and glucitol, are made as described above except that the xylose that is added in step 3 is replaced with another sugar. 3) Replacing the ester linkage between gallic acid and glucose with an ether linkage:
- the first three steps of the synthesis are literature procedures (E.Eich, H.Pertz, M.Kaloga, J.Schulz, M.R.Fesen, A.Mazumder, Y.Pommier, (-)-Arctigenin as a Lead Structure for Inhibitors of Human Immunodeficiency Virus Type-1 Integrase, J. Med. Chem. 1996, 39, 86- 95).
- the subsequent steps are analogous to standard benzyl protection/deprotection chemistry of carbohydrates.
- the final hydrogenolysis will be much faster for the phenolic benzyl groups than for the carbohydrate bound trihydroxybenzyl groups. It is expected that the decreased sensitivity of the ether linkage to acid hydrolysis will increase the stability (half life) of the molecule, and hence the duration of action and overall apparent biological activity in vivo.
- EXAMPLE 1 Stimulation of Glucose Uptake in Cells by Penta-O-Galloyl-D-Glucose (PGG)
- a 50:50 mixture of ⁇ -PGG and ⁇ -PGG was synthesized as described above.
- the alpha and beta anomers were separated as described above.
- the glucose transport stimulatory activity of the two anomoers was compared to that of authentic plant derived ⁇ -
- 3T3-L1 adipocytes were purchased from ATCC, and maintained and passed as preadipocytes in DMEM supplemented with 10% calf serum in a 37 °C incubator with 10% CO2 as required by the cells.
- the cells were induced to differentiate into adipocytes by addition of MDI induction cocktail as described in Liu, F., Kim, J., Li, Y., Liu, X., Li, J. & Chen, X. (2001)
- An extract of Lagerstroemia speciosa L. has insulin-like glucose uptake- stimulatory and adipocyte differentiation-inhibitory activities in 3T3-L1 cells. J. Nutrition 131 : 2242-224, which is specifically incorporated herein by reference.
- Varying amounts of ⁇ - PGG and ⁇ -PGG were then added to the medium and the amount of glucose taken up by control and treated cells determined using a standard glucose uptake assay, as described in Liu et al. As shown in Fig. 2A chemically synthesized and plant derived ⁇ -PGG have similar glucose transport stimulatory (GTS). The GTS activity of ⁇ -PGG is consistently 10-20% higher than that of ⁇ -PGG (Fig 2).
- 3T3-L1 cells were incubated with a constant concentration of radioactive insulin plus increasing amounts of cold
- PGG or with radioactive PGG with increasing amounts of cold insulin.
- the binding assay results indicate that PGG does not compete with insulin for the insulin binding site located on
- a competitive binding assay using radiolabeled bovine serum albumin (BSA) as the tracer was used to determine whether PGG can bind proteins selectively.
- BSA radiolabeled bovine serum albumin
- the relative affinities of three standard proteins for PGG differ from one another by at least 10-fold (Fig 5), and the difference of the binding affinities of PGG to gelatin and ovalbumin is more than 100-fold. This indicates that PGG-protein interactions have specificity and that PGG could selectively act at a single biochemical target such as LR.
- HNMPA-(AM) 3 hydroxyl-2-naphthalenylmethylphosphonic acid tri- acetoxymethyl ester
- wortmannin a compound that specifically inhibits PI-3K (Saperstein, R., et al.
- HNMPA- (AM) 3 which is an inhibitor of the first enzyme in the insulin signaling pathway (LR tyrosine kinase,), also completely abolished the GTS activity of PGG, suggests that the molecular target of PGG is IR.
- PGG uses insulin-mediated GTS pathway was further supported by our Western blot analysis that shows Akt, a key protein kinase involved in the pathway (zz), is phosphorylated by PGG (Fig 7).
- 3T3-L1 adipocytes were purchased from ATCC, and maintained and passed as preadipocytes in DMEM supplemented with 10% calf serum in a 37 °C incubator with 10% CO2 as required by the cells.
- the preadipocytes were incubated either with a differentiation-induction cocktail comprised of 3-isobutyl-l- methylxanthine, dexamethasone( MDI), a cocktail comprised of 3 -isobutyl- 1-methylxanthine, dexamethasone (MD) and PGG; or with MDI plus PGG.
- MDI 3-isobutyl-l- methylxanthine
- MDI dexamethasone
- MD dexamethasone
- MD dexamethasone
- PGG dexamethasone
- a cell proliferation assay was used to determine if PGG inhibits adipocyte differentiation by blocking clonal expansion.
- the assay indicated that the first round of clonal expansion is not inhibited by either ⁇ - or ⁇ -PGG.
- the second round of clonal expansion is partially inhibited by ⁇ -PGG, and completely inhibited by ⁇ -PGG (Fig 10).
- the basis for the difference between the anomers in clonal expansion and differentiation is not known.
- MDI induces differentiation, which is clearly visible as the change from fibroblast- like preadipcytes to round-shaped, fat vesicle-containing adipocytes (Fig. 8 middle).
- preadipocytes treated with MDI plus PGG retain their fibroblast-like morphology and remain fat vesicle-free (Fig. 8 right).
- Northern blot analyses revealed that the expression of genes PPAR- ⁇ , c/EBP- ⁇ , which are required for the differentiation and are induced by MDI, were completely abolished by PGG (Fig. 9).
- Relatively consistent ⁇ -actin level in differentially treated cells indicates that other cell processes such as ⁇ -actin expression is not significantly affected by PGG (Fig. 9).
- EXAMPLE 3 Effect on PGG on Reducing Blood Glucose Levels in Diabetic Animals
- ⁇ -PGG in the form of an aqueous solution was orally delivered to 8-week old male fasting diabetic db/db mice. It was found that a single dose of ⁇ -PGG at a concentration of 25mg/kg body weight significantly reduced the blood glucose levels in db/db mice compared to the db/db mice received vehicle (same aqueous solution without ⁇ -PGG) (Fig 11 A). The reduction of the glucose level is about 15-20%) depending on the time post ⁇ -pGG administration (P ⁇ 0.01, Fig 11 A).
- ⁇ -PGG is also effective in improving glucose tolerance in diabetic and obese mice.
- Glucose or glucose plus ⁇ -PGG were orally delivered into male ob/ob mice, and blood glucose levels were measured at various times post glucose/PGG administration.
- the ob/ob mice receiving glucose plus ⁇ -PGG have significantly lower blood glucose levels compared to those mice treated with glucose alone (P ⁇ 0.001, Fig 11B).
- the improved blood glucose levels could still be observed 24 hrs after the ⁇ -PGG treatment, indicating the effect of ⁇ - PGG is relatively long-lasting.
- ⁇ -PGG not only protected ob/ob mice from extremely high glucose levels right after the glucose challenge (Fig 11B) but also protected these mice from suffering extremely low glucose levels 2-5 days later (Fig 12). Although the protection mechanisms are unknown at this time, it is very likely that ⁇ -PGG protected the ob/ob mice not only by its GTS activity, but also some other activity such as AD-related activity. No PGG-related toxic effects were observed in these mice.
- - ⁇ -D-xylopyranose -PGG's GTS activity is +++++
- ⁇ -PGG's activity is ++++
- ob/ob diabetic and obese mice were injected intraperitoneally. with either water or ⁇ - PGG. Plasma from each mouse was isolated at various times post injection and was measured for insulin levels. As shown in Fig. 15, ob/ob diabetic and obese mice treated with a single injection of ⁇ -PGG had significantly lower plasma insulin levels than ob/ob diabetic mice treated with water alone (negative controls). On the basis of these results and PGG's effect on glucose uptake, it is believed that, in vivo, PGG can enhance the glucose transport stimulatory activity of insulin. Thus, it is expected that PGG can be used therapeutically to improve insulin resistance in a mammalian subject
- Example 6 Effect of Pentakis-O-(3,4 dihydroxybenzoyl) -B-D-glucopyranose and Tetrakis-O-(3 A5, trihvdoxybenzoyl-a-D)xylopyranose on glucose uptake by adipocytes.
- Confluent 3T3-L1 adipocytes grown in 12- well plates were washed twice with serum- free DMEM and incubated with 1 mL of the same medium at 37°C for 2 h.
- the cells were washed 3 times with Krebs-Ringer-Hepes (KRP) buffer and incubated with 0.9 mL KRP buffer at 37°C for 30 min.
- KRP Krebs-Ringer-Hepes
- Glucose uptake was initiated by addition of 0.1 mL KRP buffer and 37 MBq/L 2-deoxy-D- [ 3 H] glucose and 1 mmol/L glucose as final concentrations. After 10 min, glucose uptake was terminated by washing the cells 3 times with cold PBS. The cells were lysed with 0.7 mL of 1% Triton X-
- mice Normal (healthy) mice were orally fed with 40 mg of glucose at time zero. After two hours (120 min) when blood glucose were at normal or basal levels, mice were orally fed with either PGG at various concentrations, or water (negative control), or were injected intraperitonealy with insulin. At various time intervals before and after administration of PGG or insulin, blood was collected from the control and treated animals and blood glucose levels determined. As shown in the figure 15, insulin injection resulted in a hypoglycemic condition in mice, whereas PGG administration did not. Thus, PGG reduces blood glucose level when it is higher than normal. However, PGG does not further reduce bood glucose levels beyond normal or basal levels.
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CA002496912A CA2496912A1 (en) | 2002-07-24 | 2002-07-24 | Methods and compositions for treating diabetes mellitis |
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JP2004522925A JP2005538987A (en) | 2002-07-24 | 2002-07-24 | Methods and compositions for treating diabetes mellitus |
US10/522,662 US20060058243A1 (en) | 2002-07-24 | 2002-07-24 | Methods and compositions for treating diabetes mellitis |
PCT/US2002/023523 WO2004009094A1 (en) | 2002-07-24 | 2002-07-24 | Methods and compositions for treating diabetes mellitis |
EP02756627A EP1545554A4 (en) | 2002-07-24 | 2002-07-24 | Methods and compositions for treating diabetes mellitis |
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WO2006022227A1 (en) * | 2004-08-23 | 2006-03-02 | Suntory Limited | Lipase inhibitor |
WO2006034468A2 (en) * | 2004-09-23 | 2006-03-30 | Ohio University | Methods and compositions for treating hyperglycemic, hyperlipidemic, or hyperinsulinemic disorders |
WO2009064082A1 (en) * | 2007-11-13 | 2009-05-22 | Igsbio | Composition comprising galla rhois extract for prevention and treatment of obesity by means of autophagic mechanism |
US8357796B2 (en) | 2004-01-23 | 2013-01-22 | Ohio University | PGG separation and purification |
KR101430576B1 (en) * | 2009-10-29 | 2014-08-14 | 밀란 그룹 | Gallotannic compounds for lithographic printing plate coating compositions |
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WO2013005836A1 (en) * | 2011-07-07 | 2013-01-10 | 長岡香料株式会社 | Fructose absorption inhibitor |
CN111465400A (en) * | 2017-12-07 | 2020-07-28 | 心悦生医股份有限公司 | Improved enrichment process for the preparation of tannic acid compositions |
US11154531B2 (en) | 2020-02-08 | 2021-10-26 | Syneurx International (Taiwan) Corp. | Compounds and pharmaceutical uses thereof |
KR20230004765A (en) | 2020-04-23 | 2023-01-06 | 신유알엑스 인터내셔널 (타이완) 코포레이션 | COMPOUNDS AND PHARMACEUTICAL USES THEREOF |
CN111905029A (en) * | 2020-08-26 | 2020-11-10 | 中国农业大学 | Medicinal composition containing gentisic acid and application thereof |
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US20030078212A1 (en) * | 1998-10-30 | 2003-04-24 | Jia-He Li | Pharmaceutical compositions containing poly(adp-ribose) glycohydrolase inhibitors and methods of using the same |
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Cited By (10)
Publication number | Priority date | Publication date | Assignee | Title |
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US8357796B2 (en) | 2004-01-23 | 2013-01-22 | Ohio University | PGG separation and purification |
WO2006022227A1 (en) * | 2004-08-23 | 2006-03-02 | Suntory Limited | Lipase inhibitor |
JP2006056850A (en) * | 2004-08-23 | 2006-03-02 | Suntory Ltd | Lipase inhibitor |
WO2006034468A2 (en) * | 2004-09-23 | 2006-03-30 | Ohio University | Methods and compositions for treating hyperglycemic, hyperlipidemic, or hyperinsulinemic disorders |
WO2006034468A3 (en) * | 2004-09-23 | 2006-04-20 | Univ Ohio | Methods and compositions for treating hyperglycemic, hyperlipidemic, or hyperinsulinemic disorders |
GB2433935A (en) * | 2004-09-23 | 2007-07-11 | Univ Ohio | Methods and compositions for treating hyperglycemic, hyperlipidemic, or hyperinsulinemic disorders |
GB2433935B (en) * | 2004-09-23 | 2009-04-08 | Univ Ohio | Compounds for treating diabetes and related disorders |
WO2009064082A1 (en) * | 2007-11-13 | 2009-05-22 | Igsbio | Composition comprising galla rhois extract for prevention and treatment of obesity by means of autophagic mechanism |
KR101430576B1 (en) * | 2009-10-29 | 2014-08-14 | 밀란 그룹 | Gallotannic compounds for lithographic printing plate coating compositions |
US8932398B2 (en) | 2009-10-29 | 2015-01-13 | Mylan Group | Gallotannic compounds for lithographic printing plate coating compositions |
Also Published As
Publication number | Publication date |
---|---|
CN1668311A (en) | 2005-09-14 |
EP1545554A1 (en) | 2005-06-29 |
EP1545554A4 (en) | 2006-06-14 |
JP2005538987A (en) | 2005-12-22 |
AU2002322623A1 (en) | 2004-02-09 |
CA2496912A1 (en) | 2004-01-29 |
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