PubMed Health⌕ Search

Biomedical subjects

J B Buse

Publications and source records attributed to J B Buse.

At least 19 recordsLinked to original sources

The effects of oral anti-hyperglycaemic medications on serum lipid profiles in patients with type 2 diabetes.

AIM: Patients with type 2 diabetes often have dyslipidaemia, putting them at risk of cardiovascular disease, and are frequently treated with oral anti-hyperglycaemic medications (OAMs). This review compares the effects of OAMs on serum lipids [total cholesterol (TC), low-density lipoprotein cholesterol (LDL-C), high-density lipoprotein cholesterol (HDL-C), triglycerides (TGs) and free fatty acids (FFAs)] in patients with type 2 diabetes. METHODS: medline was searched for entries indexed from January 1966 to November 2002; search terms included the names of OAMs and serum lipids, limited to English language and human subjects. We selected clinical studies in type 2 diabetes of OAM monotherapy that included serum lipid data, treated all patients in a treatment group with the same drug, used therapeutic OAM doses not higher than the maximum recommended in the USA, compared therapy with baseline or placebo and specified statistical tests used. One unblinded investigator selected studies for inclusion. Data reported include number of patients, study length, OAM dose, serum lipid data at baseline and endpoint, p-values and statistical tests. RESULTS: Data on the serum lipid effects of sulphonylureas, repaglinide, nateglinide and miglitol were inconclusive. Acarbose increased HDL-C and decreased LDL-C and voglibose reduced TC. Metformin at higher doses reduced TC; data on its effects on other lipids were inconclusive. Rosiglitazone increased LDL-C, HDL-C and TC and reduced FFAs but had no effect on TGs. Pioglitazone increased HDL-C and reduced TGs and FFAs but did not affect LDL-C or TC. CONCLUSIONS: Lipid changes as a result of improved glycaemic control are not uniform findings associated with anti-diabetic therapy. Only metformin, acarbose, voglibose, rosiglitazone and pioglitazone had significant effects on the lipid profile. These effects should be considered when selecting OAMs for patients with type 2 diabetes.

Administration, Oral↗

The use of insulin alone and in combination with oral agents in type 2 diabetes.

To achieve optimal outcomes in patients with type 2 diabetes, clinical trial data suggest that near normal glycemic control should be targeted. Insulin is arguably the most effective treatment available for diabetes and yet many patients remain poorly controlled without the benefit of insulin therapy. Discussion of its putative risks and benefits as well as the barriers to its wider use both in the context of monotherapy and in combination with oral antidiabetic agents is provided. Application of the strategies and principles of insulin therapy in type 2 diabetes should minimize the burden of complications in patients with the disease.

Acarbose↗

Management of glycemia in type 2 diabetes.

The management of type 2 diabetes has been revolutionized over the last 3 to 5 years as a result of dramatic changes in our health care system, new clinical trial data, novel pharmacologic agents, and a better understanding of appropriate methods for patient education regarding lifestyle issues. As a result, diabetes management has become much more heterogeneous, with dramatic differences in style and approach used by practitioners, whether diabetes specialists, primary care providers, or allied health professionals. Diabetes care has also become much more rewarding: The vast majority of patients can now achieve excellent glycemic control while leading full and unrestricted lives. In this article, a construct is reviewed by which comprehensive diabetes care may be approached in a primary care setting. The overall goal of diabetes management should be to provide an opportunity for patients to live out their normal life expectancies with minimal complications. In other articles, screening and treatment suggestions for diabetes complications are provided. Prospective interventional and epidemiologic studies demonstrate that glycemic control is critical to avoidance of complications; the methods to achieve glycemic control are the major focus of this chapter.

Biomarkers↗

Troglitazone use in insulin-treated type 2 diabetic patients. The Troglitazone Insulin Study Group.

OBJECTIVE: To determine the ability of troglitazone to reduce requirements for injected insulin while maintaining blood glucose levels in insulin-treated patients with type 2 diabetes. RESEARCH DESIGN AND METHODS: This 26-week double-blind study with open-label extension included patients who had failed previous oral antidiabetic medication and took > or =30 but <150 U of insulin daily The 222 patients in the double-blind study received 200 or 400 mg troglitazone once daily or matching placebo. The primary end point was the proportion of patients meeting the target of > or =50% reduction in injected insulin and either a 15% reduction in fasting blood glucose or a blood glucose <7.8 mmol/l. Insulin dose was reduced 25% based on a study-specific algorithm whenever fasting blood glucose was reduced 5% from baseline. Also of interest were changes in insulin dose and HbA1c. The open-label extension included 173 patients. They received 200 mg of troglitazone with optional titration to 400 mg, and insulin dose was adjusted based on investigators' standards of care. Open-label measures were change in insulin dose, HbA1c, and fasting serum glucose (FSG). RESULTS: In the double-blind phase, 22 and 27% of the 200- and 400-mg troglitazone groups, respectively, reached target, compared with placebo (7%) (P < 0.01). Insulin dose reductions of 13 +/- 3, 30 +/- 3, and 41 +/- 3 U were observed for placebo, 200-, and 400-mg troglitazone groups, respectively HbA1c decreased 0.09 +/- 0.14% for placebo, 0.13 +/- 0.14% for 200 mg, and 0.41 +/- 0.14% for 400 mg (P < 0.05) troglitazone. In the open-label extension, troglitazone treatment resulted in >50% reduction from baseline in daily insulin dose and decreases in HbA1c of 1% and in FSG of >17%. CONCLUSIONS: Troglitazone decreases daily injected insulin dose requirements and improves glycemic control in insulin-treated patients with type 2 diabetes.

Adult↗

The case for a role for postprandial glucose monitoring in diabetes management.

Strategies for the management of diabetes have evolved considerably over the last few years. We have moved from an era where glycemic control was aimed primarily at avoiding the symptoms associated with hyperglycemia (polyuria, polydipsia, weight loss, and fatigue) to an era where the primary objective is to attain near normal glycemic control in an effort to prevent or delay the microvascular and macrovascular complications of diabetes. This switch in emphasis--and the parallel developments in pharmacologic agents and lifestyle intervention techniques--translates into greater attention to glycemic control in the postprandial state. An important role for postprandial glucose monitoring with therapy aimed at achieving postprandial glucose targets is suggested by teleologic argument, biochemical information, epidemiologic study, and limited clinical trial data.

Blood Glucose↗

Peripheral blood mononuclear cell dihydropyrimidine dehydrogenase activity in volunteers with and without diabetes mellitus.

It has been reported that cancer patients with diabetes mellitus receiving a continuous infusion of 5-fluorouracil (5-FU) have more toxicity and higher plasma 5-FU levels that patients without diabetes mellitus. Dihydropyrimidine dehydrogenase (DPD) is the initial and rate-limiting enzyme in the catabolism of 5-FU. DPD activity in peripheral blood mononuclear cells has been reported to correlate inversely with 5-FU plasma levels in patients. We therefore undertook a study to compare the activity of DPD in peripheral blood mononuclear cells of human subjects with and without diabetes mellitus. The study groups comprised 43 volunteers with and 39 without diabetes mellitus, and peripheral blood mononuclear cell DPD activity was assayed on samples obtained between 8 a.m. and 11 a.m. DPD activity was not decreased in diabetic subjects. There was no relationship between DPD activity and gender body mass index, or race. There was a modest correlation between DPD activity and age (r=0.19, P =0.08). We conclude that increases in 5-FU-related toxicities in diabetics must be related to factors other than peripheral blood mononuclear cell DPD activity.

Adult↗

Small intestine hexose transport in experimental diabetes. Increased transporter mRNA and protein expression in enterocytes.

The effect of insulinopenic diabetes on the expression of glucose transporters in the small intestine was investigated. Enterocytes were sequentially isolated from jejunum and ileum of normal fed rats, streptozotocin-diabetic rats, and diabetic rats treated with insulin. Facilitative glucose transporter (GLUT) 2, GLUT5, and sodium-dependent glucose transporter 1 protein content was increased from 1.5- to 6-fold in enterocytes isolated from diabetic animals in both jejunum and ileum. Insulin was able to reverse the increase in transporter protein expression seen after induction of diabetes. There was a four- to eightfold increase in the amount of enterocyte glucose transporter mRNA after diabetes with greater changes in sodium-dependent glucose transporter 1 and GLUT2 than in GLUT5 levels. In situ hybridization showed that after the induction of diabetes there was new hybridization in lower villus and crypt enterocytes that was reversed by insulin treatment. Thus, the increase in total hexose transport caused by diabetes is due to a premature expression of hexose transporters by enterocytes along the crypt-villus axis, causing a cumulative increase in enterocyte transporter protein during maturation. These changes are likely to represent an adaptive response by the organism to increase nutrient absorption in a perceived state of tissue starvation. These adaptive changes may lead to exacerbation of hyperglycemia in uncontrolled diabetes.

Amino Acid Sequence↗

Hormonal/metabolic regulation of the human GLUT4/muscle-fat facilitative glucose transporter gene in transgenic mice.

To examine the hormonal/metabolic as well as tissue-specific expression of the GLUT4/muscle-fat facilitative glucose transporter gene, we have generated several transgenic mouse lines expressing a human GLUT4 mini-gene which extends 5.3 kilobases (kb) upstream of transcription start and terminates within exon 10. This construct (hGLUT4-11.5) was expressed in a tissue-specific pattern identical to the endogenous mouse GLUT4 gene. The transcription initiation sites of the transgenic construct were similar to the GLUT4 gene expressed in human tissues. To investigate the hormonal/metabolic-dependent regulation of GLUT4, the transgenic animals were made insulin-deficient by streptozotocin (STZ) treatment. In these animals, STZ-induced diabetes resulted in a parallel decrease in endogenous mouse GLUT4 mRNA and the transgenic human GLUT4 mRNA in white adipose tissue, brown adipose tissue, and cardiac muscle. Similarly, insulin treatment of the STZ-diabetic animals restored both the endogenous mouse and transgenic human GLUT4 mRNA levels. To further define cis-regulatory regions responsible for this hormonal/metabolic regulation, the same analysis was performed on transgenic animals which carry 2.4 kb of the human GLUT4 5'-flanking region fused to a CAT reporter gene (hGLUT4[2.4]-CAT). This reporter construct responded similarly to the human GLUT4 mini-gene demonstrating that the element(s) controlling hormonal/metabolic regulation and tissue specificity all reside exclusively within 2.4 kb of the transcriptional initiation site.

Adipose Tissue↗

Inhibition of glucose-stimulated insulin release from beta TC3 cells and rodent islets by an analog of FK506.

Immunosuppression is currently used for allotransplantation, and is being evaluated for the treatment of insulin-dependent diabetes mellitus and other autoimmune diseases. However, most available agents have a number of side effects that limit their use in clinical situations. It has been shown previously, for example, that cyclosporine may inhibit insulin release from islet tumor cells and rat islets. We have studied the effects of an analog of a newer agent (FK506) termed L-683,590 on insulin secretion by an islet tumor line, beta TC3, and rat islets, and compared the effects of this drug to those of cyclosporine, since both cause similar immunosuppression. L-683,590 and cyclosporine inhibited insulin release by beta TC3 cells by about 50% and 80%, respectively, at doses that inhibit lymphokine production by T cells. The inhibition by L-683,590 and cyclosporine was more pronounced at higher glucose levels, and was not simply attributable to a general toxic effect of the drugs on the cells. Insulin release during long-term (> 48 hr) cultures of isolated rat islets was also inhibited by the drugs. However, there was no effect of either agent on insulin release by islets during the first 4 hr following a glucose stimulus. Both drugs caused reduced levels of insulin mRNA (by 56 +/- 8.1% and 66 +/- 16% in the presence of L-683,590 and cyclosporine, respectively), accounting for reduced rates of insulin biosynthesis that were also seen. Our studies indicate that: (1) both cyclosporine and L-683,590 inhibit insulin release by beta TC3 cells and cultured rat islets after 48 hr (cyclosporine is a more potent inhibitor); (2) neither drug inhibits the release of insulin during the first 4 hr following a glucose stimulus; and (3) their mechanisms of action appear to be similar--both drugs cause reduced levels of insulin mRNA. Although the toxicity of FK506 on human islets in vivo is still unknown, it may be of particular importance in individuals with impaired beta cell function, such as patients with new-onset insulin-dependent diabetes or patients with non-insulin-dependent diabetes mellitus.

Actins↗

Expression and regulation of the human GLUT4/muscle-fat facilitative glucose transporter gene in transgenic mice.

To study the molecular basis of tissue-specific expression of the GLUT4/muscle-fat facilitative glucose transporter gene, we generated lines of transgenic mice carrying 2.4 kilobases of the 5'-flanking region of the human GLUT4 gene fused to a chloramphenicol acetyltransferase (CAT) reporter gene (hGLUT4[2.4]-CAT). This reporter gene construct was specifically expressed in tissues that normally express GLUT4 mRNA, which include both brown and white adipose tissues as well as cardiac, skeletal, and smooth muscle. In contrast, CAT reporter activity was not detected in brain or liver, two tissues that do not express the GLUT4 gene. In addition, the relative levels of CAT mRNA driven by the human GLUT4 promoter in various tissues of these transgenic animals mirrored those of the endogenous mouse GLUT4 mRNA. Since previous studies have observed alterations in GLUT4 mRNA levels induced by fasting and refeeding (Sivitz, W. I., DeSautel, S. L., Kayano, T., Bell, G. I., and Pessin, J. E. (1989) Nature 340, 72-74), the regulated expression the hGLUT4[2.4]-CAT transgene was also assessed in these animals. Fasting was observed to decrease CAT activity in white adipose tissue which was super-induced upon refeeding. These alterations in CAT expression occurred in parallel to the changes in endogenous mouse GLUT4 mRNA levels. Although CAT expression in skeletal muscle and brown adipose tissue was unaffected, the endogenous mouse GLUT4 mRNA was also refractory to the effects of fasting/refeeding in these tissues. These data demonstrate that 2.4 kilobases of the 5'-flanking region of the human GLUT4 gene contain all the necessary sequence elements to confer tissue-specific expression and at least some of the sequence elements controlling the hormonal/metabolic regulation of this gene.

Adipose Tissue↗

Human intestinal glucose transporter expression and localization of GLUT5.

We have studied the developmental and regional expression of mRNAs encoding sodium-dependent and facilitative glucose transporter proteins in human fetal and adult small intestine. The abundance of mRNAs encoding the Na(+)-glucose cotransporter isoform SGLT1 and the facilitative glucose transporter isoforms GLUT2 and GLUT5 is developmentally modulated with highest levels in adult small intestine. By contrast, the levels of GLUT1 mRNA are higher in fetal than adult small intestine. Immunohistochemical analysis of adult small intestine localized GLUT5 to the luminal surface of mature enterocytes, a finding confirmed by Western blot analysis of purified human jejunal brush-border membranes. By contrast, in the fetal small intestine, GLUT5 was localized along the intercellular junctions of the developing villus, indicating that both its expression and localization are developmentally regulated. The localization of GLUT5 to the luminal surface of mature absorptive epithelial cells implies that this protein participates in the uptake of dietary sugars.

Adult↗

Human GLUT4/muscle-fat glucose-transporter gene. Characterization and genetic variation.

Four overlapping DNA fragments spanning 32 kb containing the human GLUT4 facilitative glucose-transporter gene were isolated and characterized. The sequence of the GLUT4 gene (approximately 6.3 kb) and 2.0 kb of the promoter region was determined. The sequence of the promoter revealed potential binding sites for transcription factors known to regulate gene expression in muscle cells and adipocytes. However, transfection of constructs including 2 kb of the GLUT4 promoter fused to the bacterial CAT gene into 3T3-L1 adipocytes displayed only weak promoter activity. Because insulin resistance plays a prominent role in the development of NIDDM, genetic variation in the sequence of GLUT4 also was evaluated. Oligonucleotide primer pairs were selected that allowed the protein-coding region of the human GLUT4 gene to be amplified by PCR. The sequence of the protein-coding region of the GLUT4 gene and all intron-exon junctions was determined for a single diabetic Pima Indian and was identical to that of the cloned gene and cDNA. SSCP analysis was used to screen patients with diabetes mellitus and normal, healthy nondiabetic individuals for mutations at the GLUT4 locus. In addition to the silent substitution in the codon for Asn130 (AAC or AAT) and a Val383 (GTC)-->Ile(ATC) replacement described previously, two new variants were identified. One was a T-->A substitution in intron 1 that was found in 1 of 36 NIDDM patients who were typed for this variant. The second was a Ile385(ATT)-->Thr(ACT) replacement that occurred in 1 normal individual and was not found in any of 676 other normal and diabetic subjects. A large and racially diverse group of normal and diabetic individuals also was screened for the Ile383 polymorphism. It occurred in both diabetic and nondiabetic subjects. There is no indication from our data that these polymorphisms are associated with NIDDM.

3T3 Cells↗

Analysis of the gene sequences of the insulin receptor and the insulin-sensitive glucose transporter (GLUT-4) in patients with common-type non-insulin-dependent diabetes mellitus.

Insulin resistance is a common feature of non-insulin-dependent diabetes mellitus (NIDDM) and "diabetes susceptibility genes" may be involved in this abnormality. Two potential candidate genes are the insulin receptor (IR) and the insulin-sensitive glucose transporter (GLUT-4). To elucidate whether structural defects in the IR and/or GLUT-4 could be a primary cause of insulin resistance in NIDDM, we have sequenced the entire coding region of the GLUT-4 gene from DNA of six NIDDM patients. Since binding properties of the IRs from NIDDM subjects are normal, we also analyzed the sequence of exons 16-22 (encoding the entire cytoplasmic domain of the IR) of the IR gene from the same six patients. When compared with the normal IR sequence, no difference was found in the predicted amino acid sequence of the IR cytoplasmic domain derived from the NIDDM patients. Sequence analysis of the GLUT-4 gene revealed that one patient was heterozygous for a mutation in which isoleucine (ATC) was substituted for valine (GTC) at position 383. Consequently, the GLUT-4 sequence at position 383 was determined in 24 additional NIDDM patients and 30 nondiabetic controls and all showed only the normal sequence. From these studies, we conclude that the insulin resistance seen in the great majority of subjects with the common form of NIDDM is not due to genetic variation in the coding sequence of the IR beta subunit, nor to any single mutation in the GLUT-4 gene. Possibly, a subpopulation of NIDDM patients exists displaying variation in the GLUT-4 gene.

Aged↗

Molecular scanning of insulin-responsive glucose transporter (GLUT4) gene in NIDDM subjects.

We investigated the prevalence of mutations in the gene encoding the major insulin-responsive facilitative glucose transporter (GLUT4) in patients with non-insulin-dependent diabetes mellitus (NIDDM). All 11 exons of the GLUT4 gene from 30 British white subjects with NIDDM were amplified using the polymerase chain reaction and screened for nucleotide sequence variation using the single-stranded conformation polymorphism (SSCP) method. No variation between the study subjects was detected in exons 1-3, 4b-8, and 10. Variant SSCP patterns were detected in exons 4a and 9. SSCP variation in exon 4a was revealed by direct nucleotide sequencing to be due to a common silent polymorphism (AAC----AAT at Asn130). One NIDDM patient demonstrated a variant SSCP pattern in exon 9. This was caused by a point mutation (GTC----ATC) at codon 383, which leads to the conservative substitution of isoleucine for valine in the putative fifth extracellular loop of the transporter. Allele-specific oligonucleotide hybridization was used to examine the frequency of this mutation in 240 Welsh white subjects (160 with NIDDM and 80 controls). The Val----Ile383 mutation was found in the heterozygous state in two diabetic subjects and no control subjects. We conclude that mutations of the GLUT4 coding sequence are very uncommon in this population of subjects with typical NIDDM. Determining whether the Ile383 GLUT4 variant present in 3 diabetic subjects contributes in any way to their disease will require further study.

Alleles↗