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Biomedical subjects

William L Isley

Publications and source records attributed to William L Isley.

At least 19 recordsLinked to original sources

Rationale, design, and methods for glycemic control in the Bypass Angioplasty Revascularization Investigation 2 Diabetes (BARI 2D) Trial.

A major therapeutic question in considering accelerated atherogenesis in patients with type 2 diabetes mellitus is whether reducing insulin resistance, as a proximal defect of a host of proatherogenic abnormalities including hyperglycemia, will be superior for decreasing mortality and coronary artery disease (CAD) risk compared with treating hyperglycemia to overcome insulin resistance with insulin-providing agents. This question is highly relevant, since earlier targeted glycemic control trials utilizing conventional glucose-lowering strategies that increase insulin levels have generally failed to reduce CAD risk despite markedly reducing microvascular risk. The Bypass Angioplasty Revascularization Investigation 2 Diabetes (BARI 2D) trial seeks to determine whether primarily using an insulin-sensitizing strategy for treatment of type 2 diabetes is superior when compared with primarily using an insulin-providing strategy with regard to cardiovascular outcomes. This article presents the rationale, design, and methods being used to test the glycemic control hypothesis in BARI 2D.

Algorithms↗

Low-density lipoprotein cholesterol lowering in the prevention of CHD: how low should we go?

The past 12 years have seen the publication of numerous randomized placebo-controlled studies using statins to lower low-density lipoprotein cholesterol (LDLC) to assess the efficacy of cholesterol lowering on cardiovascular events. Initial studies predominantly evaluated mortality or nonfatal myocardial infarctions and coronary heart disease (CHD) death in patients with known or presumed established coronary disease and moderately elevated to very elevated serum cholesterol concentrations. Subsequent investigations studied a broader spectrum of cardiovascular events as a composite primary end point in both primary and secondary prevention strategies in subjects with lower mean entry serum LDLC concentrations. These studies have generally shown a reduction in a composite end point of cardiovascular events, although not necessarily the more restricted end points used in previous studies. Although the LDLC mantra "lower is better" has been popularized in advertising and continuing medical education and suggested as an option in "very high risk" patients by the National Cholesterol Education Program Adult Treatment Panel, the precise target level for LDLC for optimal treatment has not been rigorously defined. Serum LDLC less than 100 mg/dL seems reasonable for patients with known atherosclerosis or at high risk for atherosclerosis (diabetes or presence of multiple risk factors). Serum LDLC less than 70 mg/dL may be a reasonable goal in the setting of acute coronary syndromes, but there are many problems with the data on which this recommendation is made. Furthermore, many advocates of "lower is better" seem oblivious to the potential downsides of more aggressive lipid-lowering therapy. The LDLC target in lower risk primary prevention is less clear. What is obvious is that moderate-dose statin therapy can lower CHD risk in primary prevention and secondary prevention with minimal side effects, and with the imminent availability of several generic statins, with great cost-effectiveness.

Journal Article↗

The effect of high-dose simvastatin on free fatty acid metabolism in patients with type 2 diabetes mellitus.

Statins improve all major lipid fractions, reduce coronary heart disease risk, and may have a minor effect on glucose tolerance. A reduction in free fatty acid flux and concentrations could be partly responsible for these effects. We measured nocturnal and postprandial plasma palmitate concentrations and rate of appearance (R(a)) on 2 occasions in 12 obese dyslipidemic subjects with type 2 diabetes mellitus, using a single-blind, crossover format (placebo followed by simvastatin, 80 mg/d), and also on 1 occasion in 6 untreated control subjects. The diabetic subjects had increased average nocturnal (127+/-13 vs 80+/-10 micromol/L, P<.05) and 2-hour postprandial (49+/-6 vs 17+/-2 micromol/L, P<.001) palmitate concentrations, as well as increased nocturnal (31.6+/-3.7 vs 19.5+/-3.7 mmol/m(2) over 9 hours, P<.05) and postprandial (11.5+/-3.7 vs 5.5+/-3.7 mmol/m(2) every 4 hours, P<.005) integrated palmitate R(a) compared to normal controls. High-dose simvastatin reduced serum triglycerides by 35% but had no effect on plasma palmitate concentrations or R(a). These results suggest that the triglyceride-lowering effect of statins is not mediated through an effect on FFA metabolism.

Adult↗

The effect of high dose simvastatin on, platelet size in patients with, type 2 diabetes mellitus.

Statins reduce coronary heart disease risk by altering blood lipids and other mechanisms. One of the possible other mechanisms is through an effect on thrombosis. We assessed the effect of simvastatin 80 mg daily versus placebo given in a single blind crossover fashion on platelet size in response to standard ex vivo stimuli, a surrogate for platelet activation, in 12 subjects with type 2 diabetes and mixed dyslipidemia. Exposure to collagen, cold, and heat caused the expected changes in platelet volume. Contrary to our expectations, ex vivo platelet size during collagen and cold exposure increased by 2.6 and 1.7%, respectively (P < 0.05), during simvastatin treatment as opposed to the placebo period. We conclude that some of the effects of high dose simvastatin therapy on platelets may not necessarily be anti-atherogenic.

Blood Platelets↗

The effect of high-dose simvastatin on triglyceride-rich lipoprotein metabolism in patients with type 2 diabetes mellitus.

Statins decrease triglycerides (TGs) in addition to decreasing low density lipoprotein-cholesterol. Although the mechanism for the latter effect is well understood, it is still unclear how TG decrease is achieved with statin therapy. Because hypertriglyceridemia is common in obese patients with type 2 diabetes mellitus, we studied triglyceride-rich lipoprotein triglyceride (TRL-TG) turnover in 12 such subjects using stable isotopically labeled glycerol. The diabetic subjects were studied after 12 weeks of placebo and after a similar course of therapy with simvastatin (80 mg daily) in a single-blind design. The results were compared with those from six nonobese nondiabetic control subjects. Simvastatin therapy reduced serum TGs by 35% in the diabetic subjects. Compared with the control subjects, TRL-TG secretion was almost 2-fold higher in the diabetic subjects (45.4 +/- 4.9 vs. 24.4 +/- 1.9 micromol/min; P < 0.002) and was unaffected by simvastatin therapy. However, TRL-TG clearance was significantly increased in the diabetic subjects during simvastatin treatment compared with placebo (0.25 +/- 0.03 vs. 0.16 +/- 0.02 pools/h; P < 0.002). This change was accompanied by a 49% increase in preheparin plasma lipase activity (P < 0.03) and a 21% increase in postheparin LPL activity (P < 0.01). Together, these findings provide strong evidence that the effect of statins on serum TGs is related to an increase in LPL activity, resulting in accelerated delipidation of TRL particles. The effect of high-dose simvastatin on triglyceride-rich lipoprotein metabolism in patients with type 2 diabetes mellitus.

Adult↗

Genetic variants of ApoE account for variability of plasma low-density lipoprotein and apolipoprotein B levels in FHBL.

We report two novel APOB mutations causing short apolipoprotein B (apoB) truncations undetectable in plasma and familial hypobetalipoproteinemia (FHBL). In Family 56, a 5 bp deletion in APOB exon 7 (870_874del5) causes a frame shift, converting tyrosine to a stop codon (Y220X) and producing an apoB-5 truncation. In Family 59, a point mutation (1941G>T) in APOB exon 13 converts glutamic acid to stop codon (E578X), specifying apoB-13. A recurrent mutation in exon 26 (4432delT) produces apoB-30.9 in Family 58. In some members of these families, we observed that plasma low-density lipoprotein (LDL) cholesterol and apoB levels were unusually low even for subjects heterozygous for FHBL. To ascertain whether genetic variations in apolipoprotein E (apoE) would explain some of the variations of apoB and LDL cholesterol levels, apoE genotypes were assessed in affected subjects from a total of eight FHBL families with short apoB truncations. Heterozygous FHBL with the epsilon3/epsilon4 genotype had 10-1 5mg/dL higher plasma LDL cholesterol and apoB levels compared to subjects with the epsilon2/epsilon3 and epsilon3/epsilon3 genotypes. The apoE genotype has been reported to account for approximately 10% of the variation of LDL cholesterol in the general population. It accounted for 15-60% of the variability of plasma LDL cholesterol or apoB levels in our FHBL subjects. The physiologic bases for the greater effects of apoE in FHBL remain to be determined.

Adult↗

Randomized controlled clinical trial of glargine versus ultralente insulin in the treatment of type 1 diabetes.

OBJECTIVE: Multiple daily insulin injection programs are commonly accompanied by considerable glycemic variation and hypoglycemia. We conducted a randomized crossover design clinical trial to compare glargine with ultralente insulin as a basal insulin in type 1 diabetes. RESEARCH DESIGN AND METHODS: To determine whether the use of glargine insulin as a basal insulin would result in a comparable HbA1c and less glycemic variation and hypoglycemia than ultralente insulin, 22 individuals (aged 44 +/- 14 years [+/-SD], 55% men) with type 1 diabetes who were experienced with multiple daily insulin injections and had an HbA1c of <7.8% were randomized in a crossover design to receive either glargine or ultralente as the basal insulin for 4 months. Aspart insulin was used as the prandial insulin. Physicians providing insulin dose adjustment advice were masked to the type of basal insulin. RESULTS: Treatment with glargine resulted in lower mean HbA1c (6.82 +/- 0.13 vs. 7.02 +/- 0.13, difference: 0.2 +/- 0.08, P = 0.026), less nocturnal variability (plasma glucose 49.06 +/- 4.74 vs. 62.36 +/- 5.21 mg/dl, P = 0.04), and less hypoglycemia (24.5 +/- 2.99 vs. 31.3 +/- 4.04 events, P = 0.05), primarily due to less daytime hypoglycemia (P = 0.002). On the other hand, serious hypoglycemia and average glucose concentration measured with continuous subcutaneous glucose monitoring did not differ. CONCLUSIONS: We conclude that while use of either ultralente or glargine as a basal insulin can result in excellent glycemic control, treatment with glargine is associated with slightly but significantly lower HbA1c and less nocturnal glycemic variability and hypoglycemia.

Adult↗

Systemic and forearm triglyceride metabolism: fate of lipoprotein lipase-generated glycerol and free fatty acids.

Little is known about the fate of the lipolytic products produced by the action of lipoprotein lipase (LPL) on circulating triglyceride-rich lipoproteins in humans. We studied eight lean, healthy male subjects after an overnight fast. Subjects received infusions of lipid emulsions containing triolein labeled with (3)H on both the glycerol backbone and the fatty acid portion of the molecule; (14)C glycerol and (14)C oleate were coinfused to quantify the systemic and forearm release of (3)H glycerol and (3)H oleate resulting from LPL action. There was significant forearm uptake of both whole plasma triglyceride (presumed to represent primarily VLDL; extraction fraction 2.6 +/- 0.6%, P < 0.005 vs. zero) and radiolabeled triglyceride derived from the lipid emulsion (a surrogate for chylomicrons; extraction fraction 31 +/- 4%, P < 0.005 vs zero). Systemic clearance and forearm fractional extraction of glycerol was greater than that of oleate (P < 0.001 and P < 0.02, respectively). The systemic and forearm fractional release of LPL-generated glycerol were similar at 51 +/- 4 and 59 +/- 1%, respectively (NS). In contrast, the forearm fractional release of LPL-generated oleate was less than systemic fractional release (14 +/- 2 vs. 36 +/- 4%, P < 0.0001). These results indicate that there is escape, or spillover, of the lipolytic products of LPL action on triglyceride-rich lipoproteins in humans. They further suggest that LPL-mediated fatty acid uptake is an inefficient process, but may be more efficient in muscle than in adipose tissue.

Adipose Tissue↗

Cardiovascular disease and long-chain omega-3 fatty acids.

PURPOSE OF REVIEW: Of all known dietary factors, long-chain omega-3 fatty acids may be the most protective against death from coronary heart disease. New evidence has confirmed and refined the cardioprotective role of these fatty acids. RECENT FINDINGS: Omega-3 fatty acid supplementation reduces the risk of sudden cardiac death and death from any cause within 4 months in post-myocardial infarction patients. Evidence continues to accrue for benefits in the primary prevention of coronary heart disease and stroke, and an anti-arrhythmogenic mechanism is emerging as the most likely explanation. SUMMARY: Current evidence suggests that individuals with coronary artery disease may reduce their risk of sudden cardiac death by increasing their intake of long-chain omega-3 fatty acids by approximately 1 g per day.

Cardiovascular Diseases↗

Hepatotoxicity of thiazolidinediones.

Thiazolidinediones are insulin sensitisers now widely used for the treatment of Type 2 diabetes mellitus. The initial marketed drug in this class, troglitazone, was removed from the market worldwide after approximately 3 years of use due to rare but severe hepatotoxicity, which sometimes resulted in liver failure leading to the need for liver transplantation, or even death. The unpredictability of such liver toxicity made the use of troglitazone highly problematic. Fortunately, the two newer drugs in this class, rosiglitazone and pioglitazone, have a much larger margin of safety for liver toxicity. Very rare reports of liver toxicity, usually milder and reversible, have been seen with these drugs. Therefore, whilst pharmacovigilance for hepatotoxicity is probably still warranted, the practitioner and patient can be fairly confident that these drugs are safe from a liver standpoint. Finally, recent work would suggest that these agents may prove useful to reduce hepatic fat in patients with non-alcoholic steatohepatitis, and may possibly protect against adverse metabolic consequences and the ultimate development of cirrhosis in patients with fatty livers.

Chemical and Drug Induced Liver Injury↗

Nocturnal and postprandial free fatty acid kinetics in normal and type 2 diabetic subjects: effects of insulin sensitization therapy.

Whether free fatty acid (FFA) rate of appearance (R(a)) is increased in type 2 diabetes is controversial. To characterize nocturnal and postprandial abnormalities in FFA kinetics and to determine the effects of treatment with insulin sensitizers on lipolysis, we measured palmitate R(a) in control subjects (n = 6) and individuals with poorly controlled, sulfonylurea-treated type 2 diabetes (HbA(1c) = 8.7 +/- 0.2%, n = 20), the latter before and at the end of 12 weeks of treatment with troglitazone (600 mg/day, n = 4), metformin ( approximately 2,000 mg/day, n = 8), or placebo (n = 8). Subjects consumed a standard breakfast at 0800 h. Results in control subjects and type 2 diabetic subjects were compared at baseline. Integrated nocturnal FFA R(a) (AUC(1:00-8:00 A.M.)) was approximately 50% higher in type 2 diabetic subjects than in control subjects (29.4 +/- 3.0 vs. 19.4 +/- 3.9 mmol. m(-2). 7 h(-1), respectively, P < 0.05), whereas postprandial palmitate R(a) (AUC(0-240 min)) was almost threefold higher in type 2 diabetic subjects than in control subjects (14.2 +/- 1.7 vs. 5.3 +/- 1.0 mmol. m(-2). 4 h(-1), respectively, P < 0.01). After troglitazone treatment, nocturnal palmitate R(a) did not change, but postprandial palmitate R(a) decreased by approximately 30% (P < 0.05). Palmitate kinetics did not change with metformin or placebo treatment. In summary, nocturnal and postprandial FFA R(a) is increased in type 2 diabetes. Postprandial lipolysis appears to be preferentially improved by thiazolidinediones compared with nocturnal lipolysis.

Adult↗